1 /* 2 ** 2001 September 15 3 ** 4 ** The author disclaims copyright to this source code. In place of 5 ** a legal notice, here is a blessing: 6 ** 7 ** May you do good and not evil. 8 ** May you find forgiveness for yourself and forgive others. 9 ** May you share freely, never taking more than you give. 10 ** 11 ************************************************************************* 12 ** Main file for the SQLite library. The routines in this file 13 ** implement the programmer interface to the library. Routines in 14 ** other files are for internal use by SQLite and should not be 15 ** accessed by users of the library. 16 */ 17 #include "sqliteInt.h" 18 19 #ifdef SQLITE_ENABLE_FTS3 20 # include "fts3.h" 21 #endif 22 #ifdef SQLITE_ENABLE_RTREE 23 # include "rtree.h" 24 #endif 25 #if defined(SQLITE_ENABLE_ICU) || defined(SQLITE_ENABLE_ICU_COLLATIONS) 26 # include "sqliteicu.h" 27 #endif 28 29 /* 30 ** This is an extension initializer that is a no-op and always 31 ** succeeds, except that it fails if the fault-simulation is set 32 ** to 500. 33 */ 34 static int sqlite3TestExtInit(sqlite3 *db){ 35 (void)db; 36 return sqlite3FaultSim(500); 37 } 38 39 40 /* 41 ** Forward declarations of external module initializer functions 42 ** for modules that need them. 43 */ 44 #ifdef SQLITE_ENABLE_FTS1 45 int sqlite3Fts1Init(sqlite3*); 46 #endif 47 #ifdef SQLITE_ENABLE_FTS2 48 int sqlite3Fts2Init(sqlite3*); 49 #endif 50 #ifdef SQLITE_ENABLE_FTS5 51 int sqlite3Fts5Init(sqlite3*); 52 #endif 53 #ifdef SQLITE_ENABLE_JSON1 54 int sqlite3Json1Init(sqlite3*); 55 #endif 56 #ifdef SQLITE_ENABLE_STMTVTAB 57 int sqlite3StmtVtabInit(sqlite3*); 58 #endif 59 60 /* 61 ** An array of pointers to extension initializer functions for 62 ** built-in extensions. 63 */ 64 static int (*const sqlite3BuiltinExtensions[])(sqlite3*) = { 65 #ifdef SQLITE_ENABLE_FTS1 66 sqlite3Fts1Init, 67 #endif 68 #ifdef SQLITE_ENABLE_FTS2 69 sqlite3Fts2Init, 70 #endif 71 #ifdef SQLITE_ENABLE_FTS3 72 sqlite3Fts3Init, 73 #endif 74 #ifdef SQLITE_ENABLE_FTS5 75 sqlite3Fts5Init, 76 #endif 77 #if defined(SQLITE_ENABLE_ICU) || defined(SQLITE_ENABLE_ICU_COLLATIONS) 78 sqlite3IcuInit, 79 #endif 80 #ifdef SQLITE_ENABLE_RTREE 81 sqlite3RtreeInit, 82 #endif 83 #ifdef SQLITE_ENABLE_DBPAGE_VTAB 84 sqlite3DbpageRegister, 85 #endif 86 #ifdef SQLITE_ENABLE_DBSTAT_VTAB 87 sqlite3DbstatRegister, 88 #endif 89 sqlite3TestExtInit, 90 #ifdef SQLITE_ENABLE_JSON1 91 sqlite3Json1Init, 92 #endif 93 #ifdef SQLITE_ENABLE_STMTVTAB 94 sqlite3StmtVtabInit, 95 #endif 96 #ifdef SQLITE_ENABLE_BYTECODE_VTAB 97 sqlite3VdbeBytecodeVtabInit, 98 #endif 99 }; 100 101 #ifndef SQLITE_AMALGAMATION 102 /* IMPLEMENTATION-OF: R-46656-45156 The sqlite3_version[] string constant 103 ** contains the text of SQLITE_VERSION macro. 104 */ 105 const char sqlite3_version[] = SQLITE_VERSION; 106 #endif 107 108 /* IMPLEMENTATION-OF: R-53536-42575 The sqlite3_libversion() function returns 109 ** a pointer to the to the sqlite3_version[] string constant. 110 */ 111 const char *sqlite3_libversion(void){ return sqlite3_version; } 112 113 /* IMPLEMENTATION-OF: R-25063-23286 The sqlite3_sourceid() function returns a 114 ** pointer to a string constant whose value is the same as the 115 ** SQLITE_SOURCE_ID C preprocessor macro. Except if SQLite is built using 116 ** an edited copy of the amalgamation, then the last four characters of 117 ** the hash might be different from SQLITE_SOURCE_ID. 118 */ 119 const char *sqlite3_sourceid(void){ return SQLITE_SOURCE_ID; } 120 121 /* IMPLEMENTATION-OF: R-35210-63508 The sqlite3_libversion_number() function 122 ** returns an integer equal to SQLITE_VERSION_NUMBER. 123 */ 124 int sqlite3_libversion_number(void){ return SQLITE_VERSION_NUMBER; } 125 126 /* IMPLEMENTATION-OF: R-20790-14025 The sqlite3_threadsafe() function returns 127 ** zero if and only if SQLite was compiled with mutexing code omitted due to 128 ** the SQLITE_THREADSAFE compile-time option being set to 0. 129 */ 130 int sqlite3_threadsafe(void){ return SQLITE_THREADSAFE; } 131 132 /* 133 ** When compiling the test fixture or with debugging enabled (on Win32), 134 ** this variable being set to non-zero will cause OSTRACE macros to emit 135 ** extra diagnostic information. 136 */ 137 #ifdef SQLITE_HAVE_OS_TRACE 138 # ifndef SQLITE_DEBUG_OS_TRACE 139 # define SQLITE_DEBUG_OS_TRACE 0 140 # endif 141 int sqlite3OSTrace = SQLITE_DEBUG_OS_TRACE; 142 #endif 143 144 #if !defined(SQLITE_OMIT_TRACE) && defined(SQLITE_ENABLE_IOTRACE) 145 /* 146 ** If the following function pointer is not NULL and if 147 ** SQLITE_ENABLE_IOTRACE is enabled, then messages describing 148 ** I/O active are written using this function. These messages 149 ** are intended for debugging activity only. 150 */ 151 SQLITE_API void (SQLITE_CDECL *sqlite3IoTrace)(const char*, ...) = 0; 152 #endif 153 154 /* 155 ** If the following global variable points to a string which is the 156 ** name of a directory, then that directory will be used to store 157 ** temporary files. 158 ** 159 ** See also the "PRAGMA temp_store_directory" SQL command. 160 */ 161 char *sqlite3_temp_directory = 0; 162 163 /* 164 ** If the following global variable points to a string which is the 165 ** name of a directory, then that directory will be used to store 166 ** all database files specified with a relative pathname. 167 ** 168 ** See also the "PRAGMA data_store_directory" SQL command. 169 */ 170 char *sqlite3_data_directory = 0; 171 172 /* 173 ** Initialize SQLite. 174 ** 175 ** This routine must be called to initialize the memory allocation, 176 ** VFS, and mutex subsystems prior to doing any serious work with 177 ** SQLite. But as long as you do not compile with SQLITE_OMIT_AUTOINIT 178 ** this routine will be called automatically by key routines such as 179 ** sqlite3_open(). 180 ** 181 ** This routine is a no-op except on its very first call for the process, 182 ** or for the first call after a call to sqlite3_shutdown. 183 ** 184 ** The first thread to call this routine runs the initialization to 185 ** completion. If subsequent threads call this routine before the first 186 ** thread has finished the initialization process, then the subsequent 187 ** threads must block until the first thread finishes with the initialization. 188 ** 189 ** The first thread might call this routine recursively. Recursive 190 ** calls to this routine should not block, of course. Otherwise the 191 ** initialization process would never complete. 192 ** 193 ** Let X be the first thread to enter this routine. Let Y be some other 194 ** thread. Then while the initial invocation of this routine by X is 195 ** incomplete, it is required that: 196 ** 197 ** * Calls to this routine from Y must block until the outer-most 198 ** call by X completes. 199 ** 200 ** * Recursive calls to this routine from thread X return immediately 201 ** without blocking. 202 */ 203 int sqlite3_initialize(void){ 204 MUTEX_LOGIC( sqlite3_mutex *pMainMtx; ) /* The main static mutex */ 205 int rc; /* Result code */ 206 #ifdef SQLITE_EXTRA_INIT 207 int bRunExtraInit = 0; /* Extra initialization needed */ 208 #endif 209 210 #ifdef SQLITE_OMIT_WSD 211 rc = sqlite3_wsd_init(4096, 24); 212 if( rc!=SQLITE_OK ){ 213 return rc; 214 } 215 #endif 216 217 /* If the following assert() fails on some obscure processor/compiler 218 ** combination, the work-around is to set the correct pointer 219 ** size at compile-time using -DSQLITE_PTRSIZE=n compile-time option */ 220 assert( SQLITE_PTRSIZE==sizeof(char*) ); 221 222 /* If SQLite is already completely initialized, then this call 223 ** to sqlite3_initialize() should be a no-op. But the initialization 224 ** must be complete. So isInit must not be set until the very end 225 ** of this routine. 226 */ 227 if( sqlite3GlobalConfig.isInit ){ 228 sqlite3MemoryBarrier(); 229 return SQLITE_OK; 230 } 231 232 /* Make sure the mutex subsystem is initialized. If unable to 233 ** initialize the mutex subsystem, return early with the error. 234 ** If the system is so sick that we are unable to allocate a mutex, 235 ** there is not much SQLite is going to be able to do. 236 ** 237 ** The mutex subsystem must take care of serializing its own 238 ** initialization. 239 */ 240 rc = sqlite3MutexInit(); 241 if( rc ) return rc; 242 243 /* Initialize the malloc() system and the recursive pInitMutex mutex. 244 ** This operation is protected by the STATIC_MAIN mutex. Note that 245 ** MutexAlloc() is called for a static mutex prior to initializing the 246 ** malloc subsystem - this implies that the allocation of a static 247 ** mutex must not require support from the malloc subsystem. 248 */ 249 MUTEX_LOGIC( pMainMtx = sqlite3MutexAlloc(SQLITE_MUTEX_STATIC_MAIN); ) 250 sqlite3_mutex_enter(pMainMtx); 251 sqlite3GlobalConfig.isMutexInit = 1; 252 if( !sqlite3GlobalConfig.isMallocInit ){ 253 rc = sqlite3MallocInit(); 254 } 255 if( rc==SQLITE_OK ){ 256 sqlite3GlobalConfig.isMallocInit = 1; 257 if( !sqlite3GlobalConfig.pInitMutex ){ 258 sqlite3GlobalConfig.pInitMutex = 259 sqlite3MutexAlloc(SQLITE_MUTEX_RECURSIVE); 260 if( sqlite3GlobalConfig.bCoreMutex && !sqlite3GlobalConfig.pInitMutex ){ 261 rc = SQLITE_NOMEM_BKPT; 262 } 263 } 264 } 265 if( rc==SQLITE_OK ){ 266 sqlite3GlobalConfig.nRefInitMutex++; 267 } 268 sqlite3_mutex_leave(pMainMtx); 269 270 /* If rc is not SQLITE_OK at this point, then either the malloc 271 ** subsystem could not be initialized or the system failed to allocate 272 ** the pInitMutex mutex. Return an error in either case. */ 273 if( rc!=SQLITE_OK ){ 274 return rc; 275 } 276 277 /* Do the rest of the initialization under the recursive mutex so 278 ** that we will be able to handle recursive calls into 279 ** sqlite3_initialize(). The recursive calls normally come through 280 ** sqlite3_os_init() when it invokes sqlite3_vfs_register(), but other 281 ** recursive calls might also be possible. 282 ** 283 ** IMPLEMENTATION-OF: R-00140-37445 SQLite automatically serializes calls 284 ** to the xInit method, so the xInit method need not be threadsafe. 285 ** 286 ** The following mutex is what serializes access to the appdef pcache xInit 287 ** methods. The sqlite3_pcache_methods.xInit() all is embedded in the 288 ** call to sqlite3PcacheInitialize(). 289 */ 290 sqlite3_mutex_enter(sqlite3GlobalConfig.pInitMutex); 291 if( sqlite3GlobalConfig.isInit==0 && sqlite3GlobalConfig.inProgress==0 ){ 292 sqlite3GlobalConfig.inProgress = 1; 293 #ifdef SQLITE_ENABLE_SQLLOG 294 { 295 extern void sqlite3_init_sqllog(void); 296 sqlite3_init_sqllog(); 297 } 298 #endif 299 memset(&sqlite3BuiltinFunctions, 0, sizeof(sqlite3BuiltinFunctions)); 300 sqlite3RegisterBuiltinFunctions(); 301 if( sqlite3GlobalConfig.isPCacheInit==0 ){ 302 rc = sqlite3PcacheInitialize(); 303 } 304 if( rc==SQLITE_OK ){ 305 sqlite3GlobalConfig.isPCacheInit = 1; 306 rc = sqlite3OsInit(); 307 } 308 #ifndef SQLITE_OMIT_DESERIALIZE 309 if( rc==SQLITE_OK ){ 310 rc = sqlite3MemdbInit(); 311 } 312 #endif 313 if( rc==SQLITE_OK ){ 314 sqlite3PCacheBufferSetup( sqlite3GlobalConfig.pPage, 315 sqlite3GlobalConfig.szPage, sqlite3GlobalConfig.nPage); 316 sqlite3MemoryBarrier(); 317 sqlite3GlobalConfig.isInit = 1; 318 #ifdef SQLITE_EXTRA_INIT 319 bRunExtraInit = 1; 320 #endif 321 } 322 sqlite3GlobalConfig.inProgress = 0; 323 } 324 sqlite3_mutex_leave(sqlite3GlobalConfig.pInitMutex); 325 326 /* Go back under the static mutex and clean up the recursive 327 ** mutex to prevent a resource leak. 328 */ 329 sqlite3_mutex_enter(pMainMtx); 330 sqlite3GlobalConfig.nRefInitMutex--; 331 if( sqlite3GlobalConfig.nRefInitMutex<=0 ){ 332 assert( sqlite3GlobalConfig.nRefInitMutex==0 ); 333 sqlite3_mutex_free(sqlite3GlobalConfig.pInitMutex); 334 sqlite3GlobalConfig.pInitMutex = 0; 335 } 336 sqlite3_mutex_leave(pMainMtx); 337 338 /* The following is just a sanity check to make sure SQLite has 339 ** been compiled correctly. It is important to run this code, but 340 ** we don't want to run it too often and soak up CPU cycles for no 341 ** reason. So we run it once during initialization. 342 */ 343 #ifndef NDEBUG 344 #ifndef SQLITE_OMIT_FLOATING_POINT 345 /* This section of code's only "output" is via assert() statements. */ 346 if( rc==SQLITE_OK ){ 347 u64 x = (((u64)1)<<63)-1; 348 double y; 349 assert(sizeof(x)==8); 350 assert(sizeof(x)==sizeof(y)); 351 memcpy(&y, &x, 8); 352 assert( sqlite3IsNaN(y) ); 353 } 354 #endif 355 #endif 356 357 /* Do extra initialization steps requested by the SQLITE_EXTRA_INIT 358 ** compile-time option. 359 */ 360 #ifdef SQLITE_EXTRA_INIT 361 if( bRunExtraInit ){ 362 int SQLITE_EXTRA_INIT(const char*); 363 rc = SQLITE_EXTRA_INIT(0); 364 } 365 #endif 366 367 return rc; 368 } 369 370 /* 371 ** Undo the effects of sqlite3_initialize(). Must not be called while 372 ** there are outstanding database connections or memory allocations or 373 ** while any part of SQLite is otherwise in use in any thread. This 374 ** routine is not threadsafe. But it is safe to invoke this routine 375 ** on when SQLite is already shut down. If SQLite is already shut down 376 ** when this routine is invoked, then this routine is a harmless no-op. 377 */ 378 int sqlite3_shutdown(void){ 379 #ifdef SQLITE_OMIT_WSD 380 int rc = sqlite3_wsd_init(4096, 24); 381 if( rc!=SQLITE_OK ){ 382 return rc; 383 } 384 #endif 385 386 if( sqlite3GlobalConfig.isInit ){ 387 #ifdef SQLITE_EXTRA_SHUTDOWN 388 void SQLITE_EXTRA_SHUTDOWN(void); 389 SQLITE_EXTRA_SHUTDOWN(); 390 #endif 391 sqlite3_os_end(); 392 sqlite3_reset_auto_extension(); 393 sqlite3GlobalConfig.isInit = 0; 394 } 395 if( sqlite3GlobalConfig.isPCacheInit ){ 396 sqlite3PcacheShutdown(); 397 sqlite3GlobalConfig.isPCacheInit = 0; 398 } 399 if( sqlite3GlobalConfig.isMallocInit ){ 400 sqlite3MallocEnd(); 401 sqlite3GlobalConfig.isMallocInit = 0; 402 403 #ifndef SQLITE_OMIT_SHUTDOWN_DIRECTORIES 404 /* The heap subsystem has now been shutdown and these values are supposed 405 ** to be NULL or point to memory that was obtained from sqlite3_malloc(), 406 ** which would rely on that heap subsystem; therefore, make sure these 407 ** values cannot refer to heap memory that was just invalidated when the 408 ** heap subsystem was shutdown. This is only done if the current call to 409 ** this function resulted in the heap subsystem actually being shutdown. 410 */ 411 sqlite3_data_directory = 0; 412 sqlite3_temp_directory = 0; 413 #endif 414 } 415 if( sqlite3GlobalConfig.isMutexInit ){ 416 sqlite3MutexEnd(); 417 sqlite3GlobalConfig.isMutexInit = 0; 418 } 419 420 return SQLITE_OK; 421 } 422 423 /* 424 ** This API allows applications to modify the global configuration of 425 ** the SQLite library at run-time. 426 ** 427 ** This routine should only be called when there are no outstanding 428 ** database connections or memory allocations. This routine is not 429 ** threadsafe. Failure to heed these warnings can lead to unpredictable 430 ** behavior. 431 */ 432 int sqlite3_config(int op, ...){ 433 va_list ap; 434 int rc = SQLITE_OK; 435 436 /* sqlite3_config() shall return SQLITE_MISUSE if it is invoked while 437 ** the SQLite library is in use. */ 438 if( sqlite3GlobalConfig.isInit ) return SQLITE_MISUSE_BKPT; 439 440 va_start(ap, op); 441 switch( op ){ 442 443 /* Mutex configuration options are only available in a threadsafe 444 ** compile. 445 */ 446 #if defined(SQLITE_THREADSAFE) && SQLITE_THREADSAFE>0 /* IMP: R-54466-46756 */ 447 case SQLITE_CONFIG_SINGLETHREAD: { 448 /* EVIDENCE-OF: R-02748-19096 This option sets the threading mode to 449 ** Single-thread. */ 450 sqlite3GlobalConfig.bCoreMutex = 0; /* Disable mutex on core */ 451 sqlite3GlobalConfig.bFullMutex = 0; /* Disable mutex on connections */ 452 break; 453 } 454 #endif 455 #if defined(SQLITE_THREADSAFE) && SQLITE_THREADSAFE>0 /* IMP: R-20520-54086 */ 456 case SQLITE_CONFIG_MULTITHREAD: { 457 /* EVIDENCE-OF: R-14374-42468 This option sets the threading mode to 458 ** Multi-thread. */ 459 sqlite3GlobalConfig.bCoreMutex = 1; /* Enable mutex on core */ 460 sqlite3GlobalConfig.bFullMutex = 0; /* Disable mutex on connections */ 461 break; 462 } 463 #endif 464 #if defined(SQLITE_THREADSAFE) && SQLITE_THREADSAFE>0 /* IMP: R-59593-21810 */ 465 case SQLITE_CONFIG_SERIALIZED: { 466 /* EVIDENCE-OF: R-41220-51800 This option sets the threading mode to 467 ** Serialized. */ 468 sqlite3GlobalConfig.bCoreMutex = 1; /* Enable mutex on core */ 469 sqlite3GlobalConfig.bFullMutex = 1; /* Enable mutex on connections */ 470 break; 471 } 472 #endif 473 #if defined(SQLITE_THREADSAFE) && SQLITE_THREADSAFE>0 /* IMP: R-63666-48755 */ 474 case SQLITE_CONFIG_MUTEX: { 475 /* Specify an alternative mutex implementation */ 476 sqlite3GlobalConfig.mutex = *va_arg(ap, sqlite3_mutex_methods*); 477 break; 478 } 479 #endif 480 #if defined(SQLITE_THREADSAFE) && SQLITE_THREADSAFE>0 /* IMP: R-14450-37597 */ 481 case SQLITE_CONFIG_GETMUTEX: { 482 /* Retrieve the current mutex implementation */ 483 *va_arg(ap, sqlite3_mutex_methods*) = sqlite3GlobalConfig.mutex; 484 break; 485 } 486 #endif 487 488 case SQLITE_CONFIG_MALLOC: { 489 /* EVIDENCE-OF: R-55594-21030 The SQLITE_CONFIG_MALLOC option takes a 490 ** single argument which is a pointer to an instance of the 491 ** sqlite3_mem_methods structure. The argument specifies alternative 492 ** low-level memory allocation routines to be used in place of the memory 493 ** allocation routines built into SQLite. */ 494 sqlite3GlobalConfig.m = *va_arg(ap, sqlite3_mem_methods*); 495 break; 496 } 497 case SQLITE_CONFIG_GETMALLOC: { 498 /* EVIDENCE-OF: R-51213-46414 The SQLITE_CONFIG_GETMALLOC option takes a 499 ** single argument which is a pointer to an instance of the 500 ** sqlite3_mem_methods structure. The sqlite3_mem_methods structure is 501 ** filled with the currently defined memory allocation routines. */ 502 if( sqlite3GlobalConfig.m.xMalloc==0 ) sqlite3MemSetDefault(); 503 *va_arg(ap, sqlite3_mem_methods*) = sqlite3GlobalConfig.m; 504 break; 505 } 506 case SQLITE_CONFIG_MEMSTATUS: { 507 /* EVIDENCE-OF: R-61275-35157 The SQLITE_CONFIG_MEMSTATUS option takes 508 ** single argument of type int, interpreted as a boolean, which enables 509 ** or disables the collection of memory allocation statistics. */ 510 sqlite3GlobalConfig.bMemstat = va_arg(ap, int); 511 break; 512 } 513 case SQLITE_CONFIG_SMALL_MALLOC: { 514 sqlite3GlobalConfig.bSmallMalloc = va_arg(ap, int); 515 break; 516 } 517 case SQLITE_CONFIG_PAGECACHE: { 518 /* EVIDENCE-OF: R-18761-36601 There are three arguments to 519 ** SQLITE_CONFIG_PAGECACHE: A pointer to 8-byte aligned memory (pMem), 520 ** the size of each page cache line (sz), and the number of cache lines 521 ** (N). */ 522 sqlite3GlobalConfig.pPage = va_arg(ap, void*); 523 sqlite3GlobalConfig.szPage = va_arg(ap, int); 524 sqlite3GlobalConfig.nPage = va_arg(ap, int); 525 break; 526 } 527 case SQLITE_CONFIG_PCACHE_HDRSZ: { 528 /* EVIDENCE-OF: R-39100-27317 The SQLITE_CONFIG_PCACHE_HDRSZ option takes 529 ** a single parameter which is a pointer to an integer and writes into 530 ** that integer the number of extra bytes per page required for each page 531 ** in SQLITE_CONFIG_PAGECACHE. */ 532 *va_arg(ap, int*) = 533 sqlite3HeaderSizeBtree() + 534 sqlite3HeaderSizePcache() + 535 sqlite3HeaderSizePcache1(); 536 break; 537 } 538 539 case SQLITE_CONFIG_PCACHE: { 540 /* no-op */ 541 break; 542 } 543 case SQLITE_CONFIG_GETPCACHE: { 544 /* now an error */ 545 rc = SQLITE_ERROR; 546 break; 547 } 548 549 case SQLITE_CONFIG_PCACHE2: { 550 /* EVIDENCE-OF: R-63325-48378 The SQLITE_CONFIG_PCACHE2 option takes a 551 ** single argument which is a pointer to an sqlite3_pcache_methods2 552 ** object. This object specifies the interface to a custom page cache 553 ** implementation. */ 554 sqlite3GlobalConfig.pcache2 = *va_arg(ap, sqlite3_pcache_methods2*); 555 break; 556 } 557 case SQLITE_CONFIG_GETPCACHE2: { 558 /* EVIDENCE-OF: R-22035-46182 The SQLITE_CONFIG_GETPCACHE2 option takes a 559 ** single argument which is a pointer to an sqlite3_pcache_methods2 560 ** object. SQLite copies of the current page cache implementation into 561 ** that object. */ 562 if( sqlite3GlobalConfig.pcache2.xInit==0 ){ 563 sqlite3PCacheSetDefault(); 564 } 565 *va_arg(ap, sqlite3_pcache_methods2*) = sqlite3GlobalConfig.pcache2; 566 break; 567 } 568 569 /* EVIDENCE-OF: R-06626-12911 The SQLITE_CONFIG_HEAP option is only 570 ** available if SQLite is compiled with either SQLITE_ENABLE_MEMSYS3 or 571 ** SQLITE_ENABLE_MEMSYS5 and returns SQLITE_ERROR if invoked otherwise. */ 572 #if defined(SQLITE_ENABLE_MEMSYS3) || defined(SQLITE_ENABLE_MEMSYS5) 573 case SQLITE_CONFIG_HEAP: { 574 /* EVIDENCE-OF: R-19854-42126 There are three arguments to 575 ** SQLITE_CONFIG_HEAP: An 8-byte aligned pointer to the memory, the 576 ** number of bytes in the memory buffer, and the minimum allocation size. 577 */ 578 sqlite3GlobalConfig.pHeap = va_arg(ap, void*); 579 sqlite3GlobalConfig.nHeap = va_arg(ap, int); 580 sqlite3GlobalConfig.mnReq = va_arg(ap, int); 581 582 if( sqlite3GlobalConfig.mnReq<1 ){ 583 sqlite3GlobalConfig.mnReq = 1; 584 }else if( sqlite3GlobalConfig.mnReq>(1<<12) ){ 585 /* cap min request size at 2^12 */ 586 sqlite3GlobalConfig.mnReq = (1<<12); 587 } 588 589 if( sqlite3GlobalConfig.pHeap==0 ){ 590 /* EVIDENCE-OF: R-49920-60189 If the first pointer (the memory pointer) 591 ** is NULL, then SQLite reverts to using its default memory allocator 592 ** (the system malloc() implementation), undoing any prior invocation of 593 ** SQLITE_CONFIG_MALLOC. 594 ** 595 ** Setting sqlite3GlobalConfig.m to all zeros will cause malloc to 596 ** revert to its default implementation when sqlite3_initialize() is run 597 */ 598 memset(&sqlite3GlobalConfig.m, 0, sizeof(sqlite3GlobalConfig.m)); 599 }else{ 600 /* EVIDENCE-OF: R-61006-08918 If the memory pointer is not NULL then the 601 ** alternative memory allocator is engaged to handle all of SQLites 602 ** memory allocation needs. */ 603 #ifdef SQLITE_ENABLE_MEMSYS3 604 sqlite3GlobalConfig.m = *sqlite3MemGetMemsys3(); 605 #endif 606 #ifdef SQLITE_ENABLE_MEMSYS5 607 sqlite3GlobalConfig.m = *sqlite3MemGetMemsys5(); 608 #endif 609 } 610 break; 611 } 612 #endif 613 614 case SQLITE_CONFIG_LOOKASIDE: { 615 sqlite3GlobalConfig.szLookaside = va_arg(ap, int); 616 sqlite3GlobalConfig.nLookaside = va_arg(ap, int); 617 break; 618 } 619 620 /* Record a pointer to the logger function and its first argument. 621 ** The default is NULL. Logging is disabled if the function pointer is 622 ** NULL. 623 */ 624 case SQLITE_CONFIG_LOG: { 625 /* MSVC is picky about pulling func ptrs from va lists. 626 ** http://support.microsoft.com/kb/47961 627 ** sqlite3GlobalConfig.xLog = va_arg(ap, void(*)(void*,int,const char*)); 628 */ 629 typedef void(*LOGFUNC_t)(void*,int,const char*); 630 sqlite3GlobalConfig.xLog = va_arg(ap, LOGFUNC_t); 631 sqlite3GlobalConfig.pLogArg = va_arg(ap, void*); 632 break; 633 } 634 635 /* EVIDENCE-OF: R-55548-33817 The compile-time setting for URI filenames 636 ** can be changed at start-time using the 637 ** sqlite3_config(SQLITE_CONFIG_URI,1) or 638 ** sqlite3_config(SQLITE_CONFIG_URI,0) configuration calls. 639 */ 640 case SQLITE_CONFIG_URI: { 641 /* EVIDENCE-OF: R-25451-61125 The SQLITE_CONFIG_URI option takes a single 642 ** argument of type int. If non-zero, then URI handling is globally 643 ** enabled. If the parameter is zero, then URI handling is globally 644 ** disabled. */ 645 sqlite3GlobalConfig.bOpenUri = va_arg(ap, int); 646 break; 647 } 648 649 case SQLITE_CONFIG_COVERING_INDEX_SCAN: { 650 /* EVIDENCE-OF: R-36592-02772 The SQLITE_CONFIG_COVERING_INDEX_SCAN 651 ** option takes a single integer argument which is interpreted as a 652 ** boolean in order to enable or disable the use of covering indices for 653 ** full table scans in the query optimizer. */ 654 sqlite3GlobalConfig.bUseCis = va_arg(ap, int); 655 break; 656 } 657 658 #ifdef SQLITE_ENABLE_SQLLOG 659 case SQLITE_CONFIG_SQLLOG: { 660 typedef void(*SQLLOGFUNC_t)(void*, sqlite3*, const char*, int); 661 sqlite3GlobalConfig.xSqllog = va_arg(ap, SQLLOGFUNC_t); 662 sqlite3GlobalConfig.pSqllogArg = va_arg(ap, void *); 663 break; 664 } 665 #endif 666 667 case SQLITE_CONFIG_MMAP_SIZE: { 668 /* EVIDENCE-OF: R-58063-38258 SQLITE_CONFIG_MMAP_SIZE takes two 64-bit 669 ** integer (sqlite3_int64) values that are the default mmap size limit 670 ** (the default setting for PRAGMA mmap_size) and the maximum allowed 671 ** mmap size limit. */ 672 sqlite3_int64 szMmap = va_arg(ap, sqlite3_int64); 673 sqlite3_int64 mxMmap = va_arg(ap, sqlite3_int64); 674 /* EVIDENCE-OF: R-53367-43190 If either argument to this option is 675 ** negative, then that argument is changed to its compile-time default. 676 ** 677 ** EVIDENCE-OF: R-34993-45031 The maximum allowed mmap size will be 678 ** silently truncated if necessary so that it does not exceed the 679 ** compile-time maximum mmap size set by the SQLITE_MAX_MMAP_SIZE 680 ** compile-time option. 681 */ 682 if( mxMmap<0 || mxMmap>SQLITE_MAX_MMAP_SIZE ){ 683 mxMmap = SQLITE_MAX_MMAP_SIZE; 684 } 685 if( szMmap<0 ) szMmap = SQLITE_DEFAULT_MMAP_SIZE; 686 if( szMmap>mxMmap) szMmap = mxMmap; 687 sqlite3GlobalConfig.mxMmap = mxMmap; 688 sqlite3GlobalConfig.szMmap = szMmap; 689 break; 690 } 691 692 #if SQLITE_OS_WIN && defined(SQLITE_WIN32_MALLOC) /* IMP: R-04780-55815 */ 693 case SQLITE_CONFIG_WIN32_HEAPSIZE: { 694 /* EVIDENCE-OF: R-34926-03360 SQLITE_CONFIG_WIN32_HEAPSIZE takes a 32-bit 695 ** unsigned integer value that specifies the maximum size of the created 696 ** heap. */ 697 sqlite3GlobalConfig.nHeap = va_arg(ap, int); 698 break; 699 } 700 #endif 701 702 case SQLITE_CONFIG_PMASZ: { 703 sqlite3GlobalConfig.szPma = va_arg(ap, unsigned int); 704 break; 705 } 706 707 case SQLITE_CONFIG_STMTJRNL_SPILL: { 708 sqlite3GlobalConfig.nStmtSpill = va_arg(ap, int); 709 break; 710 } 711 712 #ifdef SQLITE_ENABLE_SORTER_REFERENCES 713 case SQLITE_CONFIG_SORTERREF_SIZE: { 714 int iVal = va_arg(ap, int); 715 if( iVal<0 ){ 716 iVal = SQLITE_DEFAULT_SORTERREF_SIZE; 717 } 718 sqlite3GlobalConfig.szSorterRef = (u32)iVal; 719 break; 720 } 721 #endif /* SQLITE_ENABLE_SORTER_REFERENCES */ 722 723 #ifndef SQLITE_OMIT_DESERIALIZE 724 case SQLITE_CONFIG_MEMDB_MAXSIZE: { 725 sqlite3GlobalConfig.mxMemdbSize = va_arg(ap, sqlite3_int64); 726 break; 727 } 728 #endif /* SQLITE_OMIT_DESERIALIZE */ 729 730 default: { 731 rc = SQLITE_ERROR; 732 break; 733 } 734 } 735 va_end(ap); 736 return rc; 737 } 738 739 /* 740 ** Set up the lookaside buffers for a database connection. 741 ** Return SQLITE_OK on success. 742 ** If lookaside is already active, return SQLITE_BUSY. 743 ** 744 ** The sz parameter is the number of bytes in each lookaside slot. 745 ** The cnt parameter is the number of slots. If pStart is NULL the 746 ** space for the lookaside memory is obtained from sqlite3_malloc(). 747 ** If pStart is not NULL then it is sz*cnt bytes of memory to use for 748 ** the lookaside memory. 749 */ 750 static int setupLookaside(sqlite3 *db, void *pBuf, int sz, int cnt){ 751 #ifndef SQLITE_OMIT_LOOKASIDE 752 void *pStart; 753 sqlite3_int64 szAlloc = sz*(sqlite3_int64)cnt; 754 int nBig; /* Number of full-size slots */ 755 int nSm; /* Number smaller LOOKASIDE_SMALL-byte slots */ 756 757 if( sqlite3LookasideUsed(db,0)>0 ){ 758 return SQLITE_BUSY; 759 } 760 /* Free any existing lookaside buffer for this handle before 761 ** allocating a new one so we don't have to have space for 762 ** both at the same time. 763 */ 764 if( db->lookaside.bMalloced ){ 765 sqlite3_free(db->lookaside.pStart); 766 } 767 /* The size of a lookaside slot after ROUNDDOWN8 needs to be larger 768 ** than a pointer to be useful. 769 */ 770 sz = ROUNDDOWN8(sz); /* IMP: R-33038-09382 */ 771 if( sz<=(int)sizeof(LookasideSlot*) ) sz = 0; 772 if( cnt<0 ) cnt = 0; 773 if( sz==0 || cnt==0 ){ 774 sz = 0; 775 pStart = 0; 776 }else if( pBuf==0 ){ 777 sqlite3BeginBenignMalloc(); 778 pStart = sqlite3Malloc( szAlloc ); /* IMP: R-61949-35727 */ 779 sqlite3EndBenignMalloc(); 780 if( pStart ) szAlloc = sqlite3MallocSize(pStart); 781 }else{ 782 pStart = pBuf; 783 } 784 #ifndef SQLITE_OMIT_TWOSIZE_LOOKASIDE 785 if( sz>=LOOKASIDE_SMALL*3 ){ 786 nBig = szAlloc/(3*LOOKASIDE_SMALL+sz); 787 nSm = (szAlloc - sz*nBig)/LOOKASIDE_SMALL; 788 }else if( sz>=LOOKASIDE_SMALL*2 ){ 789 nBig = szAlloc/(LOOKASIDE_SMALL+sz); 790 nSm = (szAlloc - sz*nBig)/LOOKASIDE_SMALL; 791 }else 792 #endif /* SQLITE_OMIT_TWOSIZE_LOOKASIDE */ 793 if( sz>0 ){ 794 nBig = szAlloc/sz; 795 nSm = 0; 796 }else{ 797 nBig = nSm = 0; 798 } 799 db->lookaside.pStart = pStart; 800 db->lookaside.pInit = 0; 801 db->lookaside.pFree = 0; 802 db->lookaside.sz = (u16)sz; 803 db->lookaside.szTrue = (u16)sz; 804 if( pStart ){ 805 int i; 806 LookasideSlot *p; 807 assert( sz > (int)sizeof(LookasideSlot*) ); 808 p = (LookasideSlot*)pStart; 809 for(i=0; i<nBig; i++){ 810 p->pNext = db->lookaside.pInit; 811 db->lookaside.pInit = p; 812 p = (LookasideSlot*)&((u8*)p)[sz]; 813 } 814 #ifndef SQLITE_OMIT_TWOSIZE_LOOKASIDE 815 db->lookaside.pSmallInit = 0; 816 db->lookaside.pSmallFree = 0; 817 db->lookaside.pMiddle = p; 818 for(i=0; i<nSm; i++){ 819 p->pNext = db->lookaside.pSmallInit; 820 db->lookaside.pSmallInit = p; 821 p = (LookasideSlot*)&((u8*)p)[LOOKASIDE_SMALL]; 822 } 823 #endif /* SQLITE_OMIT_TWOSIZE_LOOKASIDE */ 824 assert( ((uptr)p)<=szAlloc + (uptr)pStart ); 825 db->lookaside.pEnd = p; 826 db->lookaside.bDisable = 0; 827 db->lookaside.bMalloced = pBuf==0 ?1:0; 828 db->lookaside.nSlot = nBig+nSm; 829 }else{ 830 db->lookaside.pStart = db; 831 #ifndef SQLITE_OMIT_TWOSIZE_LOOKASIDE 832 db->lookaside.pSmallInit = 0; 833 db->lookaside.pSmallFree = 0; 834 db->lookaside.pMiddle = db; 835 #endif /* SQLITE_OMIT_TWOSIZE_LOOKASIDE */ 836 db->lookaside.pEnd = db; 837 db->lookaside.bDisable = 1; 838 db->lookaside.sz = 0; 839 db->lookaside.bMalloced = 0; 840 db->lookaside.nSlot = 0; 841 } 842 assert( sqlite3LookasideUsed(db,0)==0 ); 843 #endif /* SQLITE_OMIT_LOOKASIDE */ 844 return SQLITE_OK; 845 } 846 847 /* 848 ** Return the mutex associated with a database connection. 849 */ 850 sqlite3_mutex *sqlite3_db_mutex(sqlite3 *db){ 851 #ifdef SQLITE_ENABLE_API_ARMOR 852 if( !sqlite3SafetyCheckOk(db) ){ 853 (void)SQLITE_MISUSE_BKPT; 854 return 0; 855 } 856 #endif 857 return db->mutex; 858 } 859 860 /* 861 ** Free up as much memory as we can from the given database 862 ** connection. 863 */ 864 int sqlite3_db_release_memory(sqlite3 *db){ 865 int i; 866 867 #ifdef SQLITE_ENABLE_API_ARMOR 868 if( !sqlite3SafetyCheckOk(db) ) return SQLITE_MISUSE_BKPT; 869 #endif 870 sqlite3_mutex_enter(db->mutex); 871 sqlite3BtreeEnterAll(db); 872 for(i=0; i<db->nDb; i++){ 873 Btree *pBt = db->aDb[i].pBt; 874 if( pBt ){ 875 Pager *pPager = sqlite3BtreePager(pBt); 876 sqlite3PagerShrink(pPager); 877 } 878 } 879 sqlite3BtreeLeaveAll(db); 880 sqlite3_mutex_leave(db->mutex); 881 return SQLITE_OK; 882 } 883 884 /* 885 ** Flush any dirty pages in the pager-cache for any attached database 886 ** to disk. 887 */ 888 int sqlite3_db_cacheflush(sqlite3 *db){ 889 int i; 890 int rc = SQLITE_OK; 891 int bSeenBusy = 0; 892 893 #ifdef SQLITE_ENABLE_API_ARMOR 894 if( !sqlite3SafetyCheckOk(db) ) return SQLITE_MISUSE_BKPT; 895 #endif 896 sqlite3_mutex_enter(db->mutex); 897 sqlite3BtreeEnterAll(db); 898 for(i=0; rc==SQLITE_OK && i<db->nDb; i++){ 899 Btree *pBt = db->aDb[i].pBt; 900 if( pBt && sqlite3BtreeTxnState(pBt)==SQLITE_TXN_WRITE ){ 901 Pager *pPager = sqlite3BtreePager(pBt); 902 rc = sqlite3PagerFlush(pPager); 903 if( rc==SQLITE_BUSY ){ 904 bSeenBusy = 1; 905 rc = SQLITE_OK; 906 } 907 } 908 } 909 sqlite3BtreeLeaveAll(db); 910 sqlite3_mutex_leave(db->mutex); 911 return ((rc==SQLITE_OK && bSeenBusy) ? SQLITE_BUSY : rc); 912 } 913 914 /* 915 ** Configuration settings for an individual database connection 916 */ 917 int sqlite3_db_config(sqlite3 *db, int op, ...){ 918 va_list ap; 919 int rc; 920 va_start(ap, op); 921 switch( op ){ 922 case SQLITE_DBCONFIG_MAINDBNAME: { 923 /* IMP: R-06824-28531 */ 924 /* IMP: R-36257-52125 */ 925 db->aDb[0].zDbSName = va_arg(ap,char*); 926 rc = SQLITE_OK; 927 break; 928 } 929 case SQLITE_DBCONFIG_LOOKASIDE: { 930 void *pBuf = va_arg(ap, void*); /* IMP: R-26835-10964 */ 931 int sz = va_arg(ap, int); /* IMP: R-47871-25994 */ 932 int cnt = va_arg(ap, int); /* IMP: R-04460-53386 */ 933 rc = setupLookaside(db, pBuf, sz, cnt); 934 break; 935 } 936 default: { 937 static const struct { 938 int op; /* The opcode */ 939 u32 mask; /* Mask of the bit in sqlite3.flags to set/clear */ 940 } aFlagOp[] = { 941 { SQLITE_DBCONFIG_ENABLE_FKEY, SQLITE_ForeignKeys }, 942 { SQLITE_DBCONFIG_ENABLE_TRIGGER, SQLITE_EnableTrigger }, 943 { SQLITE_DBCONFIG_ENABLE_VIEW, SQLITE_EnableView }, 944 { SQLITE_DBCONFIG_ENABLE_FTS3_TOKENIZER, SQLITE_Fts3Tokenizer }, 945 { SQLITE_DBCONFIG_ENABLE_LOAD_EXTENSION, SQLITE_LoadExtension }, 946 { SQLITE_DBCONFIG_NO_CKPT_ON_CLOSE, SQLITE_NoCkptOnClose }, 947 { SQLITE_DBCONFIG_ENABLE_QPSG, SQLITE_EnableQPSG }, 948 { SQLITE_DBCONFIG_TRIGGER_EQP, SQLITE_TriggerEQP }, 949 { SQLITE_DBCONFIG_RESET_DATABASE, SQLITE_ResetDatabase }, 950 { SQLITE_DBCONFIG_DEFENSIVE, SQLITE_Defensive }, 951 { SQLITE_DBCONFIG_WRITABLE_SCHEMA, SQLITE_WriteSchema| 952 SQLITE_NoSchemaError }, 953 { SQLITE_DBCONFIG_LEGACY_ALTER_TABLE, SQLITE_LegacyAlter }, 954 { SQLITE_DBCONFIG_DQS_DDL, SQLITE_DqsDDL }, 955 { SQLITE_DBCONFIG_DQS_DML, SQLITE_DqsDML }, 956 { SQLITE_DBCONFIG_LEGACY_FILE_FORMAT, SQLITE_LegacyFileFmt }, 957 { SQLITE_DBCONFIG_TRUSTED_SCHEMA, SQLITE_TrustedSchema }, 958 }; 959 unsigned int i; 960 rc = SQLITE_ERROR; /* IMP: R-42790-23372 */ 961 for(i=0; i<ArraySize(aFlagOp); i++){ 962 if( aFlagOp[i].op==op ){ 963 int onoff = va_arg(ap, int); 964 int *pRes = va_arg(ap, int*); 965 u64 oldFlags = db->flags; 966 if( onoff>0 ){ 967 db->flags |= aFlagOp[i].mask; 968 }else if( onoff==0 ){ 969 db->flags &= ~(u64)aFlagOp[i].mask; 970 } 971 if( oldFlags!=db->flags ){ 972 sqlite3ExpirePreparedStatements(db, 0); 973 } 974 if( pRes ){ 975 *pRes = (db->flags & aFlagOp[i].mask)!=0; 976 } 977 rc = SQLITE_OK; 978 break; 979 } 980 } 981 break; 982 } 983 } 984 va_end(ap); 985 return rc; 986 } 987 988 /* 989 ** This is the default collating function named "BINARY" which is always 990 ** available. 991 */ 992 static int binCollFunc( 993 void *NotUsed, 994 int nKey1, const void *pKey1, 995 int nKey2, const void *pKey2 996 ){ 997 int rc, n; 998 UNUSED_PARAMETER(NotUsed); 999 n = nKey1<nKey2 ? nKey1 : nKey2; 1000 /* EVIDENCE-OF: R-65033-28449 The built-in BINARY collation compares 1001 ** strings byte by byte using the memcmp() function from the standard C 1002 ** library. */ 1003 assert( pKey1 && pKey2 ); 1004 rc = memcmp(pKey1, pKey2, n); 1005 if( rc==0 ){ 1006 rc = nKey1 - nKey2; 1007 } 1008 return rc; 1009 } 1010 1011 /* 1012 ** This is the collating function named "RTRIM" which is always 1013 ** available. Ignore trailing spaces. 1014 */ 1015 static int rtrimCollFunc( 1016 void *pUser, 1017 int nKey1, const void *pKey1, 1018 int nKey2, const void *pKey2 1019 ){ 1020 const u8 *pK1 = (const u8*)pKey1; 1021 const u8 *pK2 = (const u8*)pKey2; 1022 while( nKey1 && pK1[nKey1-1]==' ' ) nKey1--; 1023 while( nKey2 && pK2[nKey2-1]==' ' ) nKey2--; 1024 return binCollFunc(pUser, nKey1, pKey1, nKey2, pKey2); 1025 } 1026 1027 /* 1028 ** Return true if CollSeq is the default built-in BINARY. 1029 */ 1030 int sqlite3IsBinary(const CollSeq *p){ 1031 assert( p==0 || p->xCmp!=binCollFunc || strcmp(p->zName,"BINARY")==0 ); 1032 return p==0 || p->xCmp==binCollFunc; 1033 } 1034 1035 /* 1036 ** Another built-in collating sequence: NOCASE. 1037 ** 1038 ** This collating sequence is intended to be used for "case independent 1039 ** comparison". SQLite's knowledge of upper and lower case equivalents 1040 ** extends only to the 26 characters used in the English language. 1041 ** 1042 ** At the moment there is only a UTF-8 implementation. 1043 */ 1044 static int nocaseCollatingFunc( 1045 void *NotUsed, 1046 int nKey1, const void *pKey1, 1047 int nKey2, const void *pKey2 1048 ){ 1049 int r = sqlite3StrNICmp( 1050 (const char *)pKey1, (const char *)pKey2, (nKey1<nKey2)?nKey1:nKey2); 1051 UNUSED_PARAMETER(NotUsed); 1052 if( 0==r ){ 1053 r = nKey1-nKey2; 1054 } 1055 return r; 1056 } 1057 1058 /* 1059 ** Return the ROWID of the most recent insert 1060 */ 1061 sqlite_int64 sqlite3_last_insert_rowid(sqlite3 *db){ 1062 #ifdef SQLITE_ENABLE_API_ARMOR 1063 if( !sqlite3SafetyCheckOk(db) ){ 1064 (void)SQLITE_MISUSE_BKPT; 1065 return 0; 1066 } 1067 #endif 1068 return db->lastRowid; 1069 } 1070 1071 /* 1072 ** Set the value returned by the sqlite3_last_insert_rowid() API function. 1073 */ 1074 void sqlite3_set_last_insert_rowid(sqlite3 *db, sqlite3_int64 iRowid){ 1075 #ifdef SQLITE_ENABLE_API_ARMOR 1076 if( !sqlite3SafetyCheckOk(db) ){ 1077 (void)SQLITE_MISUSE_BKPT; 1078 return; 1079 } 1080 #endif 1081 sqlite3_mutex_enter(db->mutex); 1082 db->lastRowid = iRowid; 1083 sqlite3_mutex_leave(db->mutex); 1084 } 1085 1086 /* 1087 ** Return the number of changes in the most recent call to sqlite3_exec(). 1088 */ 1089 sqlite3_int64 sqlite3_changes64(sqlite3 *db){ 1090 #ifdef SQLITE_ENABLE_API_ARMOR 1091 if( !sqlite3SafetyCheckOk(db) ){ 1092 (void)SQLITE_MISUSE_BKPT; 1093 return 0; 1094 } 1095 #endif 1096 return db->nChange; 1097 } 1098 int sqlite3_changes(sqlite3 *db){ 1099 return (int)sqlite3_changes64(db); 1100 } 1101 1102 /* 1103 ** Return the number of changes since the database handle was opened. 1104 */ 1105 sqlite3_int64 sqlite3_total_changes64(sqlite3 *db){ 1106 #ifdef SQLITE_ENABLE_API_ARMOR 1107 if( !sqlite3SafetyCheckOk(db) ){ 1108 (void)SQLITE_MISUSE_BKPT; 1109 return 0; 1110 } 1111 #endif 1112 return db->nTotalChange; 1113 } 1114 int sqlite3_total_changes(sqlite3 *db){ 1115 return (int)sqlite3_total_changes64(db); 1116 } 1117 1118 /* 1119 ** Close all open savepoints. This function only manipulates fields of the 1120 ** database handle object, it does not close any savepoints that may be open 1121 ** at the b-tree/pager level. 1122 */ 1123 void sqlite3CloseSavepoints(sqlite3 *db){ 1124 while( db->pSavepoint ){ 1125 Savepoint *pTmp = db->pSavepoint; 1126 db->pSavepoint = pTmp->pNext; 1127 sqlite3DbFree(db, pTmp); 1128 } 1129 db->nSavepoint = 0; 1130 db->nStatement = 0; 1131 db->isTransactionSavepoint = 0; 1132 } 1133 1134 /* 1135 ** Invoke the destructor function associated with FuncDef p, if any. Except, 1136 ** if this is not the last copy of the function, do not invoke it. Multiple 1137 ** copies of a single function are created when create_function() is called 1138 ** with SQLITE_ANY as the encoding. 1139 */ 1140 static void functionDestroy(sqlite3 *db, FuncDef *p){ 1141 FuncDestructor *pDestructor; 1142 assert( (p->funcFlags & SQLITE_FUNC_BUILTIN)==0 ); 1143 pDestructor = p->u.pDestructor; 1144 if( pDestructor ){ 1145 pDestructor->nRef--; 1146 if( pDestructor->nRef==0 ){ 1147 pDestructor->xDestroy(pDestructor->pUserData); 1148 sqlite3DbFree(db, pDestructor); 1149 } 1150 } 1151 } 1152 1153 /* 1154 ** Disconnect all sqlite3_vtab objects that belong to database connection 1155 ** db. This is called when db is being closed. 1156 */ 1157 static void disconnectAllVtab(sqlite3 *db){ 1158 #ifndef SQLITE_OMIT_VIRTUALTABLE 1159 int i; 1160 HashElem *p; 1161 sqlite3BtreeEnterAll(db); 1162 for(i=0; i<db->nDb; i++){ 1163 Schema *pSchema = db->aDb[i].pSchema; 1164 if( pSchema ){ 1165 for(p=sqliteHashFirst(&pSchema->tblHash); p; p=sqliteHashNext(p)){ 1166 Table *pTab = (Table *)sqliteHashData(p); 1167 if( IsVirtual(pTab) ) sqlite3VtabDisconnect(db, pTab); 1168 } 1169 } 1170 } 1171 for(p=sqliteHashFirst(&db->aModule); p; p=sqliteHashNext(p)){ 1172 Module *pMod = (Module *)sqliteHashData(p); 1173 if( pMod->pEpoTab ){ 1174 sqlite3VtabDisconnect(db, pMod->pEpoTab); 1175 } 1176 } 1177 sqlite3VtabUnlockList(db); 1178 sqlite3BtreeLeaveAll(db); 1179 #else 1180 UNUSED_PARAMETER(db); 1181 #endif 1182 } 1183 1184 /* 1185 ** Return TRUE if database connection db has unfinalized prepared 1186 ** statements or unfinished sqlite3_backup objects. 1187 */ 1188 static int connectionIsBusy(sqlite3 *db){ 1189 int j; 1190 assert( sqlite3_mutex_held(db->mutex) ); 1191 if( db->pVdbe ) return 1; 1192 for(j=0; j<db->nDb; j++){ 1193 Btree *pBt = db->aDb[j].pBt; 1194 if( pBt && sqlite3BtreeIsInBackup(pBt) ) return 1; 1195 } 1196 return 0; 1197 } 1198 1199 /* 1200 ** Close an existing SQLite database 1201 */ 1202 static int sqlite3Close(sqlite3 *db, int forceZombie){ 1203 if( !db ){ 1204 /* EVIDENCE-OF: R-63257-11740 Calling sqlite3_close() or 1205 ** sqlite3_close_v2() with a NULL pointer argument is a harmless no-op. */ 1206 return SQLITE_OK; 1207 } 1208 if( !sqlite3SafetyCheckSickOrOk(db) ){ 1209 return SQLITE_MISUSE_BKPT; 1210 } 1211 sqlite3_mutex_enter(db->mutex); 1212 if( db->mTrace & SQLITE_TRACE_CLOSE ){ 1213 db->trace.xV2(SQLITE_TRACE_CLOSE, db->pTraceArg, db, 0); 1214 } 1215 1216 /* Force xDisconnect calls on all virtual tables */ 1217 disconnectAllVtab(db); 1218 1219 /* If a transaction is open, the disconnectAllVtab() call above 1220 ** will not have called the xDisconnect() method on any virtual 1221 ** tables in the db->aVTrans[] array. The following sqlite3VtabRollback() 1222 ** call will do so. We need to do this before the check for active 1223 ** SQL statements below, as the v-table implementation may be storing 1224 ** some prepared statements internally. 1225 */ 1226 sqlite3VtabRollback(db); 1227 1228 /* Legacy behavior (sqlite3_close() behavior) is to return 1229 ** SQLITE_BUSY if the connection can not be closed immediately. 1230 */ 1231 if( !forceZombie && connectionIsBusy(db) ){ 1232 sqlite3ErrorWithMsg(db, SQLITE_BUSY, "unable to close due to unfinalized " 1233 "statements or unfinished backups"); 1234 sqlite3_mutex_leave(db->mutex); 1235 return SQLITE_BUSY; 1236 } 1237 1238 #ifdef SQLITE_ENABLE_SQLLOG 1239 if( sqlite3GlobalConfig.xSqllog ){ 1240 /* Closing the handle. Fourth parameter is passed the value 2. */ 1241 sqlite3GlobalConfig.xSqllog(sqlite3GlobalConfig.pSqllogArg, db, 0, 2); 1242 } 1243 #endif 1244 1245 /* Convert the connection into a zombie and then close it. 1246 */ 1247 db->eOpenState = SQLITE_STATE_ZOMBIE; 1248 sqlite3LeaveMutexAndCloseZombie(db); 1249 return SQLITE_OK; 1250 } 1251 1252 /* 1253 ** Return the transaction state for a single databse, or the maximum 1254 ** transaction state over all attached databases if zSchema is null. 1255 */ 1256 int sqlite3_txn_state(sqlite3 *db, const char *zSchema){ 1257 int iDb, nDb; 1258 int iTxn = -1; 1259 #ifdef SQLITE_ENABLE_API_ARMOR 1260 if( !sqlite3SafetyCheckOk(db) ){ 1261 (void)SQLITE_MISUSE_BKPT; 1262 return -1; 1263 } 1264 #endif 1265 sqlite3_mutex_enter(db->mutex); 1266 if( zSchema ){ 1267 nDb = iDb = sqlite3FindDbName(db, zSchema); 1268 if( iDb<0 ) nDb--; 1269 }else{ 1270 iDb = 0; 1271 nDb = db->nDb-1; 1272 } 1273 for(; iDb<=nDb; iDb++){ 1274 Btree *pBt = db->aDb[iDb].pBt; 1275 int x = pBt!=0 ? sqlite3BtreeTxnState(pBt) : SQLITE_TXN_NONE; 1276 if( x>iTxn ) iTxn = x; 1277 } 1278 sqlite3_mutex_leave(db->mutex); 1279 return iTxn; 1280 } 1281 1282 /* 1283 ** Two variations on the public interface for closing a database 1284 ** connection. The sqlite3_close() version returns SQLITE_BUSY and 1285 ** leaves the connection open if there are unfinalized prepared 1286 ** statements or unfinished sqlite3_backups. The sqlite3_close_v2() 1287 ** version forces the connection to become a zombie if there are 1288 ** unclosed resources, and arranges for deallocation when the last 1289 ** prepare statement or sqlite3_backup closes. 1290 */ 1291 int sqlite3_close(sqlite3 *db){ return sqlite3Close(db,0); } 1292 int sqlite3_close_v2(sqlite3 *db){ return sqlite3Close(db,1); } 1293 1294 1295 /* 1296 ** Close the mutex on database connection db. 1297 ** 1298 ** Furthermore, if database connection db is a zombie (meaning that there 1299 ** has been a prior call to sqlite3_close(db) or sqlite3_close_v2(db)) and 1300 ** every sqlite3_stmt has now been finalized and every sqlite3_backup has 1301 ** finished, then free all resources. 1302 */ 1303 void sqlite3LeaveMutexAndCloseZombie(sqlite3 *db){ 1304 HashElem *i; /* Hash table iterator */ 1305 int j; 1306 1307 /* If there are outstanding sqlite3_stmt or sqlite3_backup objects 1308 ** or if the connection has not yet been closed by sqlite3_close_v2(), 1309 ** then just leave the mutex and return. 1310 */ 1311 if( db->eOpenState!=SQLITE_STATE_ZOMBIE || connectionIsBusy(db) ){ 1312 sqlite3_mutex_leave(db->mutex); 1313 return; 1314 } 1315 1316 /* If we reach this point, it means that the database connection has 1317 ** closed all sqlite3_stmt and sqlite3_backup objects and has been 1318 ** passed to sqlite3_close (meaning that it is a zombie). Therefore, 1319 ** go ahead and free all resources. 1320 */ 1321 1322 /* If a transaction is open, roll it back. This also ensures that if 1323 ** any database schemas have been modified by an uncommitted transaction 1324 ** they are reset. And that the required b-tree mutex is held to make 1325 ** the pager rollback and schema reset an atomic operation. */ 1326 sqlite3RollbackAll(db, SQLITE_OK); 1327 1328 /* Free any outstanding Savepoint structures. */ 1329 sqlite3CloseSavepoints(db); 1330 1331 /* Close all database connections */ 1332 for(j=0; j<db->nDb; j++){ 1333 struct Db *pDb = &db->aDb[j]; 1334 if( pDb->pBt ){ 1335 sqlite3BtreeClose(pDb->pBt); 1336 pDb->pBt = 0; 1337 if( j!=1 ){ 1338 pDb->pSchema = 0; 1339 } 1340 } 1341 } 1342 /* Clear the TEMP schema separately and last */ 1343 if( db->aDb[1].pSchema ){ 1344 sqlite3SchemaClear(db->aDb[1].pSchema); 1345 } 1346 sqlite3VtabUnlockList(db); 1347 1348 /* Free up the array of auxiliary databases */ 1349 sqlite3CollapseDatabaseArray(db); 1350 assert( db->nDb<=2 ); 1351 assert( db->aDb==db->aDbStatic ); 1352 1353 /* Tell the code in notify.c that the connection no longer holds any 1354 ** locks and does not require any further unlock-notify callbacks. 1355 */ 1356 sqlite3ConnectionClosed(db); 1357 1358 for(i=sqliteHashFirst(&db->aFunc); i; i=sqliteHashNext(i)){ 1359 FuncDef *pNext, *p; 1360 p = sqliteHashData(i); 1361 do{ 1362 functionDestroy(db, p); 1363 pNext = p->pNext; 1364 sqlite3DbFree(db, p); 1365 p = pNext; 1366 }while( p ); 1367 } 1368 sqlite3HashClear(&db->aFunc); 1369 for(i=sqliteHashFirst(&db->aCollSeq); i; i=sqliteHashNext(i)){ 1370 CollSeq *pColl = (CollSeq *)sqliteHashData(i); 1371 /* Invoke any destructors registered for collation sequence user data. */ 1372 for(j=0; j<3; j++){ 1373 if( pColl[j].xDel ){ 1374 pColl[j].xDel(pColl[j].pUser); 1375 } 1376 } 1377 sqlite3DbFree(db, pColl); 1378 } 1379 sqlite3HashClear(&db->aCollSeq); 1380 #ifndef SQLITE_OMIT_VIRTUALTABLE 1381 for(i=sqliteHashFirst(&db->aModule); i; i=sqliteHashNext(i)){ 1382 Module *pMod = (Module *)sqliteHashData(i); 1383 sqlite3VtabEponymousTableClear(db, pMod); 1384 sqlite3VtabModuleUnref(db, pMod); 1385 } 1386 sqlite3HashClear(&db->aModule); 1387 #endif 1388 1389 sqlite3Error(db, SQLITE_OK); /* Deallocates any cached error strings. */ 1390 sqlite3ValueFree(db->pErr); 1391 sqlite3CloseExtensions(db); 1392 #if SQLITE_USER_AUTHENTICATION 1393 sqlite3_free(db->auth.zAuthUser); 1394 sqlite3_free(db->auth.zAuthPW); 1395 #endif 1396 1397 db->eOpenState = SQLITE_STATE_ERROR; 1398 1399 /* The temp-database schema is allocated differently from the other schema 1400 ** objects (using sqliteMalloc() directly, instead of sqlite3BtreeSchema()). 1401 ** So it needs to be freed here. Todo: Why not roll the temp schema into 1402 ** the same sqliteMalloc() as the one that allocates the database 1403 ** structure? 1404 */ 1405 sqlite3DbFree(db, db->aDb[1].pSchema); 1406 if( db->xAutovacDestr ){ 1407 db->xAutovacDestr(db->pAutovacPagesArg); 1408 } 1409 sqlite3_mutex_leave(db->mutex); 1410 db->eOpenState = SQLITE_STATE_CLOSED; 1411 sqlite3_mutex_free(db->mutex); 1412 assert( sqlite3LookasideUsed(db,0)==0 ); 1413 if( db->lookaside.bMalloced ){ 1414 sqlite3_free(db->lookaside.pStart); 1415 } 1416 sqlite3_free(db); 1417 } 1418 1419 /* 1420 ** Rollback all database files. If tripCode is not SQLITE_OK, then 1421 ** any write cursors are invalidated ("tripped" - as in "tripping a circuit 1422 ** breaker") and made to return tripCode if there are any further 1423 ** attempts to use that cursor. Read cursors remain open and valid 1424 ** but are "saved" in case the table pages are moved around. 1425 */ 1426 void sqlite3RollbackAll(sqlite3 *db, int tripCode){ 1427 int i; 1428 int inTrans = 0; 1429 int schemaChange; 1430 assert( sqlite3_mutex_held(db->mutex) ); 1431 sqlite3BeginBenignMalloc(); 1432 1433 /* Obtain all b-tree mutexes before making any calls to BtreeRollback(). 1434 ** This is important in case the transaction being rolled back has 1435 ** modified the database schema. If the b-tree mutexes are not taken 1436 ** here, then another shared-cache connection might sneak in between 1437 ** the database rollback and schema reset, which can cause false 1438 ** corruption reports in some cases. */ 1439 sqlite3BtreeEnterAll(db); 1440 schemaChange = (db->mDbFlags & DBFLAG_SchemaChange)!=0 && db->init.busy==0; 1441 1442 for(i=0; i<db->nDb; i++){ 1443 Btree *p = db->aDb[i].pBt; 1444 if( p ){ 1445 if( sqlite3BtreeTxnState(p)==SQLITE_TXN_WRITE ){ 1446 inTrans = 1; 1447 } 1448 sqlite3BtreeRollback(p, tripCode, !schemaChange); 1449 } 1450 } 1451 sqlite3VtabRollback(db); 1452 sqlite3EndBenignMalloc(); 1453 1454 if( schemaChange ){ 1455 sqlite3ExpirePreparedStatements(db, 0); 1456 sqlite3ResetAllSchemasOfConnection(db); 1457 } 1458 sqlite3BtreeLeaveAll(db); 1459 1460 /* Any deferred constraint violations have now been resolved. */ 1461 db->nDeferredCons = 0; 1462 db->nDeferredImmCons = 0; 1463 db->flags &= ~(u64)(SQLITE_DeferFKs|SQLITE_CorruptRdOnly); 1464 1465 /* If one has been configured, invoke the rollback-hook callback */ 1466 if( db->xRollbackCallback && (inTrans || !db->autoCommit) ){ 1467 db->xRollbackCallback(db->pRollbackArg); 1468 } 1469 } 1470 1471 /* 1472 ** Return a static string containing the name corresponding to the error code 1473 ** specified in the argument. 1474 */ 1475 #if defined(SQLITE_NEED_ERR_NAME) 1476 const char *sqlite3ErrName(int rc){ 1477 const char *zName = 0; 1478 int i, origRc = rc; 1479 for(i=0; i<2 && zName==0; i++, rc &= 0xff){ 1480 switch( rc ){ 1481 case SQLITE_OK: zName = "SQLITE_OK"; break; 1482 case SQLITE_ERROR: zName = "SQLITE_ERROR"; break; 1483 case SQLITE_ERROR_SNAPSHOT: zName = "SQLITE_ERROR_SNAPSHOT"; break; 1484 case SQLITE_INTERNAL: zName = "SQLITE_INTERNAL"; break; 1485 case SQLITE_PERM: zName = "SQLITE_PERM"; break; 1486 case SQLITE_ABORT: zName = "SQLITE_ABORT"; break; 1487 case SQLITE_ABORT_ROLLBACK: zName = "SQLITE_ABORT_ROLLBACK"; break; 1488 case SQLITE_BUSY: zName = "SQLITE_BUSY"; break; 1489 case SQLITE_BUSY_RECOVERY: zName = "SQLITE_BUSY_RECOVERY"; break; 1490 case SQLITE_BUSY_SNAPSHOT: zName = "SQLITE_BUSY_SNAPSHOT"; break; 1491 case SQLITE_LOCKED: zName = "SQLITE_LOCKED"; break; 1492 case SQLITE_LOCKED_SHAREDCACHE: zName = "SQLITE_LOCKED_SHAREDCACHE";break; 1493 case SQLITE_NOMEM: zName = "SQLITE_NOMEM"; break; 1494 case SQLITE_READONLY: zName = "SQLITE_READONLY"; break; 1495 case SQLITE_READONLY_RECOVERY: zName = "SQLITE_READONLY_RECOVERY"; break; 1496 case SQLITE_READONLY_CANTINIT: zName = "SQLITE_READONLY_CANTINIT"; break; 1497 case SQLITE_READONLY_ROLLBACK: zName = "SQLITE_READONLY_ROLLBACK"; break; 1498 case SQLITE_READONLY_DBMOVED: zName = "SQLITE_READONLY_DBMOVED"; break; 1499 case SQLITE_READONLY_DIRECTORY: zName = "SQLITE_READONLY_DIRECTORY";break; 1500 case SQLITE_INTERRUPT: zName = "SQLITE_INTERRUPT"; break; 1501 case SQLITE_IOERR: zName = "SQLITE_IOERR"; break; 1502 case SQLITE_IOERR_READ: zName = "SQLITE_IOERR_READ"; break; 1503 case SQLITE_IOERR_SHORT_READ: zName = "SQLITE_IOERR_SHORT_READ"; break; 1504 case SQLITE_IOERR_WRITE: zName = "SQLITE_IOERR_WRITE"; break; 1505 case SQLITE_IOERR_FSYNC: zName = "SQLITE_IOERR_FSYNC"; break; 1506 case SQLITE_IOERR_DIR_FSYNC: zName = "SQLITE_IOERR_DIR_FSYNC"; break; 1507 case SQLITE_IOERR_TRUNCATE: zName = "SQLITE_IOERR_TRUNCATE"; break; 1508 case SQLITE_IOERR_FSTAT: zName = "SQLITE_IOERR_FSTAT"; break; 1509 case SQLITE_IOERR_UNLOCK: zName = "SQLITE_IOERR_UNLOCK"; break; 1510 case SQLITE_IOERR_RDLOCK: zName = "SQLITE_IOERR_RDLOCK"; break; 1511 case SQLITE_IOERR_DELETE: zName = "SQLITE_IOERR_DELETE"; break; 1512 case SQLITE_IOERR_NOMEM: zName = "SQLITE_IOERR_NOMEM"; break; 1513 case SQLITE_IOERR_ACCESS: zName = "SQLITE_IOERR_ACCESS"; break; 1514 case SQLITE_IOERR_CHECKRESERVEDLOCK: 1515 zName = "SQLITE_IOERR_CHECKRESERVEDLOCK"; break; 1516 case SQLITE_IOERR_LOCK: zName = "SQLITE_IOERR_LOCK"; break; 1517 case SQLITE_IOERR_CLOSE: zName = "SQLITE_IOERR_CLOSE"; break; 1518 case SQLITE_IOERR_DIR_CLOSE: zName = "SQLITE_IOERR_DIR_CLOSE"; break; 1519 case SQLITE_IOERR_SHMOPEN: zName = "SQLITE_IOERR_SHMOPEN"; break; 1520 case SQLITE_IOERR_SHMSIZE: zName = "SQLITE_IOERR_SHMSIZE"; break; 1521 case SQLITE_IOERR_SHMLOCK: zName = "SQLITE_IOERR_SHMLOCK"; break; 1522 case SQLITE_IOERR_SHMMAP: zName = "SQLITE_IOERR_SHMMAP"; break; 1523 case SQLITE_IOERR_SEEK: zName = "SQLITE_IOERR_SEEK"; break; 1524 case SQLITE_IOERR_DELETE_NOENT: zName = "SQLITE_IOERR_DELETE_NOENT";break; 1525 case SQLITE_IOERR_MMAP: zName = "SQLITE_IOERR_MMAP"; break; 1526 case SQLITE_IOERR_GETTEMPPATH: zName = "SQLITE_IOERR_GETTEMPPATH"; break; 1527 case SQLITE_IOERR_CONVPATH: zName = "SQLITE_IOERR_CONVPATH"; break; 1528 case SQLITE_CORRUPT: zName = "SQLITE_CORRUPT"; break; 1529 case SQLITE_CORRUPT_VTAB: zName = "SQLITE_CORRUPT_VTAB"; break; 1530 case SQLITE_NOTFOUND: zName = "SQLITE_NOTFOUND"; break; 1531 case SQLITE_FULL: zName = "SQLITE_FULL"; break; 1532 case SQLITE_CANTOPEN: zName = "SQLITE_CANTOPEN"; break; 1533 case SQLITE_CANTOPEN_NOTEMPDIR: zName = "SQLITE_CANTOPEN_NOTEMPDIR";break; 1534 case SQLITE_CANTOPEN_ISDIR: zName = "SQLITE_CANTOPEN_ISDIR"; break; 1535 case SQLITE_CANTOPEN_FULLPATH: zName = "SQLITE_CANTOPEN_FULLPATH"; break; 1536 case SQLITE_CANTOPEN_CONVPATH: zName = "SQLITE_CANTOPEN_CONVPATH"; break; 1537 case SQLITE_CANTOPEN_SYMLINK: zName = "SQLITE_CANTOPEN_SYMLINK"; break; 1538 case SQLITE_PROTOCOL: zName = "SQLITE_PROTOCOL"; break; 1539 case SQLITE_EMPTY: zName = "SQLITE_EMPTY"; break; 1540 case SQLITE_SCHEMA: zName = "SQLITE_SCHEMA"; break; 1541 case SQLITE_TOOBIG: zName = "SQLITE_TOOBIG"; break; 1542 case SQLITE_CONSTRAINT: zName = "SQLITE_CONSTRAINT"; break; 1543 case SQLITE_CONSTRAINT_UNIQUE: zName = "SQLITE_CONSTRAINT_UNIQUE"; break; 1544 case SQLITE_CONSTRAINT_TRIGGER: zName = "SQLITE_CONSTRAINT_TRIGGER";break; 1545 case SQLITE_CONSTRAINT_FOREIGNKEY: 1546 zName = "SQLITE_CONSTRAINT_FOREIGNKEY"; break; 1547 case SQLITE_CONSTRAINT_CHECK: zName = "SQLITE_CONSTRAINT_CHECK"; break; 1548 case SQLITE_CONSTRAINT_PRIMARYKEY: 1549 zName = "SQLITE_CONSTRAINT_PRIMARYKEY"; break; 1550 case SQLITE_CONSTRAINT_NOTNULL: zName = "SQLITE_CONSTRAINT_NOTNULL";break; 1551 case SQLITE_CONSTRAINT_COMMITHOOK: 1552 zName = "SQLITE_CONSTRAINT_COMMITHOOK"; break; 1553 case SQLITE_CONSTRAINT_VTAB: zName = "SQLITE_CONSTRAINT_VTAB"; break; 1554 case SQLITE_CONSTRAINT_FUNCTION: 1555 zName = "SQLITE_CONSTRAINT_FUNCTION"; break; 1556 case SQLITE_CONSTRAINT_ROWID: zName = "SQLITE_CONSTRAINT_ROWID"; break; 1557 case SQLITE_MISMATCH: zName = "SQLITE_MISMATCH"; break; 1558 case SQLITE_MISUSE: zName = "SQLITE_MISUSE"; break; 1559 case SQLITE_NOLFS: zName = "SQLITE_NOLFS"; break; 1560 case SQLITE_AUTH: zName = "SQLITE_AUTH"; break; 1561 case SQLITE_FORMAT: zName = "SQLITE_FORMAT"; break; 1562 case SQLITE_RANGE: zName = "SQLITE_RANGE"; break; 1563 case SQLITE_NOTADB: zName = "SQLITE_NOTADB"; break; 1564 case SQLITE_ROW: zName = "SQLITE_ROW"; break; 1565 case SQLITE_NOTICE: zName = "SQLITE_NOTICE"; break; 1566 case SQLITE_NOTICE_RECOVER_WAL: zName = "SQLITE_NOTICE_RECOVER_WAL";break; 1567 case SQLITE_NOTICE_RECOVER_ROLLBACK: 1568 zName = "SQLITE_NOTICE_RECOVER_ROLLBACK"; break; 1569 case SQLITE_WARNING: zName = "SQLITE_WARNING"; break; 1570 case SQLITE_WARNING_AUTOINDEX: zName = "SQLITE_WARNING_AUTOINDEX"; break; 1571 case SQLITE_DONE: zName = "SQLITE_DONE"; break; 1572 } 1573 } 1574 if( zName==0 ){ 1575 static char zBuf[50]; 1576 sqlite3_snprintf(sizeof(zBuf), zBuf, "SQLITE_UNKNOWN(%d)", origRc); 1577 zName = zBuf; 1578 } 1579 return zName; 1580 } 1581 #endif 1582 1583 /* 1584 ** Return a static string that describes the kind of error specified in the 1585 ** argument. 1586 */ 1587 const char *sqlite3ErrStr(int rc){ 1588 static const char* const aMsg[] = { 1589 /* SQLITE_OK */ "not an error", 1590 /* SQLITE_ERROR */ "SQL logic error", 1591 /* SQLITE_INTERNAL */ 0, 1592 /* SQLITE_PERM */ "access permission denied", 1593 /* SQLITE_ABORT */ "query aborted", 1594 /* SQLITE_BUSY */ "database is locked", 1595 /* SQLITE_LOCKED */ "database table is locked", 1596 /* SQLITE_NOMEM */ "out of memory", 1597 /* SQLITE_READONLY */ "attempt to write a readonly database", 1598 /* SQLITE_INTERRUPT */ "interrupted", 1599 /* SQLITE_IOERR */ "disk I/O error", 1600 /* SQLITE_CORRUPT */ "database disk image is malformed", 1601 /* SQLITE_NOTFOUND */ "unknown operation", 1602 /* SQLITE_FULL */ "database or disk is full", 1603 /* SQLITE_CANTOPEN */ "unable to open database file", 1604 /* SQLITE_PROTOCOL */ "locking protocol", 1605 /* SQLITE_EMPTY */ 0, 1606 /* SQLITE_SCHEMA */ "database schema has changed", 1607 /* SQLITE_TOOBIG */ "string or blob too big", 1608 /* SQLITE_CONSTRAINT */ "constraint failed", 1609 /* SQLITE_MISMATCH */ "datatype mismatch", 1610 /* SQLITE_MISUSE */ "bad parameter or other API misuse", 1611 #ifdef SQLITE_DISABLE_LFS 1612 /* SQLITE_NOLFS */ "large file support is disabled", 1613 #else 1614 /* SQLITE_NOLFS */ 0, 1615 #endif 1616 /* SQLITE_AUTH */ "authorization denied", 1617 /* SQLITE_FORMAT */ 0, 1618 /* SQLITE_RANGE */ "column index out of range", 1619 /* SQLITE_NOTADB */ "file is not a database", 1620 /* SQLITE_NOTICE */ "notification message", 1621 /* SQLITE_WARNING */ "warning message", 1622 }; 1623 const char *zErr = "unknown error"; 1624 switch( rc ){ 1625 case SQLITE_ABORT_ROLLBACK: { 1626 zErr = "abort due to ROLLBACK"; 1627 break; 1628 } 1629 case SQLITE_ROW: { 1630 zErr = "another row available"; 1631 break; 1632 } 1633 case SQLITE_DONE: { 1634 zErr = "no more rows available"; 1635 break; 1636 } 1637 default: { 1638 rc &= 0xff; 1639 if( ALWAYS(rc>=0) && rc<ArraySize(aMsg) && aMsg[rc]!=0 ){ 1640 zErr = aMsg[rc]; 1641 } 1642 break; 1643 } 1644 } 1645 return zErr; 1646 } 1647 1648 /* 1649 ** This routine implements a busy callback that sleeps and tries 1650 ** again until a timeout value is reached. The timeout value is 1651 ** an integer number of milliseconds passed in as the first 1652 ** argument. 1653 ** 1654 ** Return non-zero to retry the lock. Return zero to stop trying 1655 ** and cause SQLite to return SQLITE_BUSY. 1656 */ 1657 static int sqliteDefaultBusyCallback( 1658 void *ptr, /* Database connection */ 1659 int count /* Number of times table has been busy */ 1660 ){ 1661 #if SQLITE_OS_WIN || HAVE_USLEEP 1662 /* This case is for systems that have support for sleeping for fractions of 1663 ** a second. Examples: All windows systems, unix systems with usleep() */ 1664 static const u8 delays[] = 1665 { 1, 2, 5, 10, 15, 20, 25, 25, 25, 50, 50, 100 }; 1666 static const u8 totals[] = 1667 { 0, 1, 3, 8, 18, 33, 53, 78, 103, 128, 178, 228 }; 1668 # define NDELAY ArraySize(delays) 1669 sqlite3 *db = (sqlite3 *)ptr; 1670 int tmout = db->busyTimeout; 1671 int delay, prior; 1672 1673 assert( count>=0 ); 1674 if( count < NDELAY ){ 1675 delay = delays[count]; 1676 prior = totals[count]; 1677 }else{ 1678 delay = delays[NDELAY-1]; 1679 prior = totals[NDELAY-1] + delay*(count-(NDELAY-1)); 1680 } 1681 if( prior + delay > tmout ){ 1682 delay = tmout - prior; 1683 if( delay<=0 ) return 0; 1684 } 1685 sqlite3OsSleep(db->pVfs, delay*1000); 1686 return 1; 1687 #else 1688 /* This case for unix systems that lack usleep() support. Sleeping 1689 ** must be done in increments of whole seconds */ 1690 sqlite3 *db = (sqlite3 *)ptr; 1691 int tmout = ((sqlite3 *)ptr)->busyTimeout; 1692 if( (count+1)*1000 > tmout ){ 1693 return 0; 1694 } 1695 sqlite3OsSleep(db->pVfs, 1000000); 1696 return 1; 1697 #endif 1698 } 1699 1700 /* 1701 ** Invoke the given busy handler. 1702 ** 1703 ** This routine is called when an operation failed to acquire a 1704 ** lock on VFS file pFile. 1705 ** 1706 ** If this routine returns non-zero, the lock is retried. If it 1707 ** returns 0, the operation aborts with an SQLITE_BUSY error. 1708 */ 1709 int sqlite3InvokeBusyHandler(BusyHandler *p){ 1710 int rc; 1711 if( p->xBusyHandler==0 || p->nBusy<0 ) return 0; 1712 rc = p->xBusyHandler(p->pBusyArg, p->nBusy); 1713 if( rc==0 ){ 1714 p->nBusy = -1; 1715 }else{ 1716 p->nBusy++; 1717 } 1718 return rc; 1719 } 1720 1721 /* 1722 ** This routine sets the busy callback for an Sqlite database to the 1723 ** given callback function with the given argument. 1724 */ 1725 int sqlite3_busy_handler( 1726 sqlite3 *db, 1727 int (*xBusy)(void*,int), 1728 void *pArg 1729 ){ 1730 #ifdef SQLITE_ENABLE_API_ARMOR 1731 if( !sqlite3SafetyCheckOk(db) ) return SQLITE_MISUSE_BKPT; 1732 #endif 1733 sqlite3_mutex_enter(db->mutex); 1734 db->busyHandler.xBusyHandler = xBusy; 1735 db->busyHandler.pBusyArg = pArg; 1736 db->busyHandler.nBusy = 0; 1737 db->busyTimeout = 0; 1738 sqlite3_mutex_leave(db->mutex); 1739 return SQLITE_OK; 1740 } 1741 1742 #ifndef SQLITE_OMIT_PROGRESS_CALLBACK 1743 /* 1744 ** This routine sets the progress callback for an Sqlite database to the 1745 ** given callback function with the given argument. The progress callback will 1746 ** be invoked every nOps opcodes. 1747 */ 1748 void sqlite3_progress_handler( 1749 sqlite3 *db, 1750 int nOps, 1751 int (*xProgress)(void*), 1752 void *pArg 1753 ){ 1754 #ifdef SQLITE_ENABLE_API_ARMOR 1755 if( !sqlite3SafetyCheckOk(db) ){ 1756 (void)SQLITE_MISUSE_BKPT; 1757 return; 1758 } 1759 #endif 1760 sqlite3_mutex_enter(db->mutex); 1761 if( nOps>0 ){ 1762 db->xProgress = xProgress; 1763 db->nProgressOps = (unsigned)nOps; 1764 db->pProgressArg = pArg; 1765 }else{ 1766 db->xProgress = 0; 1767 db->nProgressOps = 0; 1768 db->pProgressArg = 0; 1769 } 1770 sqlite3_mutex_leave(db->mutex); 1771 } 1772 #endif 1773 1774 1775 /* 1776 ** This routine installs a default busy handler that waits for the 1777 ** specified number of milliseconds before returning 0. 1778 */ 1779 int sqlite3_busy_timeout(sqlite3 *db, int ms){ 1780 #ifdef SQLITE_ENABLE_API_ARMOR 1781 if( !sqlite3SafetyCheckOk(db) ) return SQLITE_MISUSE_BKPT; 1782 #endif 1783 if( ms>0 ){ 1784 sqlite3_busy_handler(db, (int(*)(void*,int))sqliteDefaultBusyCallback, 1785 (void*)db); 1786 db->busyTimeout = ms; 1787 }else{ 1788 sqlite3_busy_handler(db, 0, 0); 1789 } 1790 return SQLITE_OK; 1791 } 1792 1793 /* 1794 ** Cause any pending operation to stop at its earliest opportunity. 1795 */ 1796 void sqlite3_interrupt(sqlite3 *db){ 1797 #ifdef SQLITE_ENABLE_API_ARMOR 1798 if( !sqlite3SafetyCheckOk(db) && (db==0 || db->eOpenState!=SQLITE_STATE_ZOMBIE) ){ 1799 (void)SQLITE_MISUSE_BKPT; 1800 return; 1801 } 1802 #endif 1803 AtomicStore(&db->u1.isInterrupted, 1); 1804 } 1805 1806 1807 /* 1808 ** This function is exactly the same as sqlite3_create_function(), except 1809 ** that it is designed to be called by internal code. The difference is 1810 ** that if a malloc() fails in sqlite3_create_function(), an error code 1811 ** is returned and the mallocFailed flag cleared. 1812 */ 1813 int sqlite3CreateFunc( 1814 sqlite3 *db, 1815 const char *zFunctionName, 1816 int nArg, 1817 int enc, 1818 void *pUserData, 1819 void (*xSFunc)(sqlite3_context*,int,sqlite3_value **), 1820 void (*xStep)(sqlite3_context*,int,sqlite3_value **), 1821 void (*xFinal)(sqlite3_context*), 1822 void (*xValue)(sqlite3_context*), 1823 void (*xInverse)(sqlite3_context*,int,sqlite3_value **), 1824 FuncDestructor *pDestructor 1825 ){ 1826 FuncDef *p; 1827 int extraFlags; 1828 1829 assert( sqlite3_mutex_held(db->mutex) ); 1830 assert( xValue==0 || xSFunc==0 ); 1831 if( zFunctionName==0 /* Must have a valid name */ 1832 || (xSFunc!=0 && xFinal!=0) /* Not both xSFunc and xFinal */ 1833 || ((xFinal==0)!=(xStep==0)) /* Both or neither of xFinal and xStep */ 1834 || ((xValue==0)!=(xInverse==0)) /* Both or neither of xValue, xInverse */ 1835 || (nArg<-1 || nArg>SQLITE_MAX_FUNCTION_ARG) 1836 || (255<sqlite3Strlen30(zFunctionName)) 1837 ){ 1838 return SQLITE_MISUSE_BKPT; 1839 } 1840 1841 assert( SQLITE_FUNC_CONSTANT==SQLITE_DETERMINISTIC ); 1842 assert( SQLITE_FUNC_DIRECT==SQLITE_DIRECTONLY ); 1843 extraFlags = enc & (SQLITE_DETERMINISTIC|SQLITE_DIRECTONLY| 1844 SQLITE_SUBTYPE|SQLITE_INNOCUOUS); 1845 enc &= (SQLITE_FUNC_ENCMASK|SQLITE_ANY); 1846 1847 /* The SQLITE_INNOCUOUS flag is the same bit as SQLITE_FUNC_UNSAFE. But 1848 ** the meaning is inverted. So flip the bit. */ 1849 assert( SQLITE_FUNC_UNSAFE==SQLITE_INNOCUOUS ); 1850 extraFlags ^= SQLITE_FUNC_UNSAFE; 1851 1852 1853 #ifndef SQLITE_OMIT_UTF16 1854 /* If SQLITE_UTF16 is specified as the encoding type, transform this 1855 ** to one of SQLITE_UTF16LE or SQLITE_UTF16BE using the 1856 ** SQLITE_UTF16NATIVE macro. SQLITE_UTF16 is not used internally. 1857 ** 1858 ** If SQLITE_ANY is specified, add three versions of the function 1859 ** to the hash table. 1860 */ 1861 switch( enc ){ 1862 case SQLITE_UTF16: 1863 enc = SQLITE_UTF16NATIVE; 1864 break; 1865 case SQLITE_ANY: { 1866 int rc; 1867 rc = sqlite3CreateFunc(db, zFunctionName, nArg, 1868 (SQLITE_UTF8|extraFlags)^SQLITE_FUNC_UNSAFE, 1869 pUserData, xSFunc, xStep, xFinal, xValue, xInverse, pDestructor); 1870 if( rc==SQLITE_OK ){ 1871 rc = sqlite3CreateFunc(db, zFunctionName, nArg, 1872 (SQLITE_UTF16LE|extraFlags)^SQLITE_FUNC_UNSAFE, 1873 pUserData, xSFunc, xStep, xFinal, xValue, xInverse, pDestructor); 1874 } 1875 if( rc!=SQLITE_OK ){ 1876 return rc; 1877 } 1878 enc = SQLITE_UTF16BE; 1879 break; 1880 } 1881 case SQLITE_UTF8: 1882 case SQLITE_UTF16LE: 1883 case SQLITE_UTF16BE: 1884 break; 1885 default: 1886 enc = SQLITE_UTF8; 1887 break; 1888 } 1889 #else 1890 enc = SQLITE_UTF8; 1891 #endif 1892 1893 /* Check if an existing function is being overridden or deleted. If so, 1894 ** and there are active VMs, then return SQLITE_BUSY. If a function 1895 ** is being overridden/deleted but there are no active VMs, allow the 1896 ** operation to continue but invalidate all precompiled statements. 1897 */ 1898 p = sqlite3FindFunction(db, zFunctionName, nArg, (u8)enc, 0); 1899 if( p && (p->funcFlags & SQLITE_FUNC_ENCMASK)==(u32)enc && p->nArg==nArg ){ 1900 if( db->nVdbeActive ){ 1901 sqlite3ErrorWithMsg(db, SQLITE_BUSY, 1902 "unable to delete/modify user-function due to active statements"); 1903 assert( !db->mallocFailed ); 1904 return SQLITE_BUSY; 1905 }else{ 1906 sqlite3ExpirePreparedStatements(db, 0); 1907 } 1908 }else if( xSFunc==0 && xFinal==0 ){ 1909 /* Trying to delete a function that does not exist. This is a no-op. 1910 ** https://sqlite.org/forum/forumpost/726219164b */ 1911 return SQLITE_OK; 1912 } 1913 1914 p = sqlite3FindFunction(db, zFunctionName, nArg, (u8)enc, 1); 1915 assert(p || db->mallocFailed); 1916 if( !p ){ 1917 return SQLITE_NOMEM_BKPT; 1918 } 1919 1920 /* If an older version of the function with a configured destructor is 1921 ** being replaced invoke the destructor function here. */ 1922 functionDestroy(db, p); 1923 1924 if( pDestructor ){ 1925 pDestructor->nRef++; 1926 } 1927 p->u.pDestructor = pDestructor; 1928 p->funcFlags = (p->funcFlags & SQLITE_FUNC_ENCMASK) | extraFlags; 1929 testcase( p->funcFlags & SQLITE_DETERMINISTIC ); 1930 testcase( p->funcFlags & SQLITE_DIRECTONLY ); 1931 p->xSFunc = xSFunc ? xSFunc : xStep; 1932 p->xFinalize = xFinal; 1933 p->xValue = xValue; 1934 p->xInverse = xInverse; 1935 p->pUserData = pUserData; 1936 p->nArg = (u16)nArg; 1937 return SQLITE_OK; 1938 } 1939 1940 /* 1941 ** Worker function used by utf-8 APIs that create new functions: 1942 ** 1943 ** sqlite3_create_function() 1944 ** sqlite3_create_function_v2() 1945 ** sqlite3_create_window_function() 1946 */ 1947 static int createFunctionApi( 1948 sqlite3 *db, 1949 const char *zFunc, 1950 int nArg, 1951 int enc, 1952 void *p, 1953 void (*xSFunc)(sqlite3_context*,int,sqlite3_value**), 1954 void (*xStep)(sqlite3_context*,int,sqlite3_value**), 1955 void (*xFinal)(sqlite3_context*), 1956 void (*xValue)(sqlite3_context*), 1957 void (*xInverse)(sqlite3_context*,int,sqlite3_value**), 1958 void(*xDestroy)(void*) 1959 ){ 1960 int rc = SQLITE_ERROR; 1961 FuncDestructor *pArg = 0; 1962 1963 #ifdef SQLITE_ENABLE_API_ARMOR 1964 if( !sqlite3SafetyCheckOk(db) ){ 1965 return SQLITE_MISUSE_BKPT; 1966 } 1967 #endif 1968 sqlite3_mutex_enter(db->mutex); 1969 if( xDestroy ){ 1970 pArg = (FuncDestructor *)sqlite3Malloc(sizeof(FuncDestructor)); 1971 if( !pArg ){ 1972 sqlite3OomFault(db); 1973 xDestroy(p); 1974 goto out; 1975 } 1976 pArg->nRef = 0; 1977 pArg->xDestroy = xDestroy; 1978 pArg->pUserData = p; 1979 } 1980 rc = sqlite3CreateFunc(db, zFunc, nArg, enc, p, 1981 xSFunc, xStep, xFinal, xValue, xInverse, pArg 1982 ); 1983 if( pArg && pArg->nRef==0 ){ 1984 assert( rc!=SQLITE_OK || (xStep==0 && xFinal==0) ); 1985 xDestroy(p); 1986 sqlite3_free(pArg); 1987 } 1988 1989 out: 1990 rc = sqlite3ApiExit(db, rc); 1991 sqlite3_mutex_leave(db->mutex); 1992 return rc; 1993 } 1994 1995 /* 1996 ** Create new user functions. 1997 */ 1998 int sqlite3_create_function( 1999 sqlite3 *db, 2000 const char *zFunc, 2001 int nArg, 2002 int enc, 2003 void *p, 2004 void (*xSFunc)(sqlite3_context*,int,sqlite3_value **), 2005 void (*xStep)(sqlite3_context*,int,sqlite3_value **), 2006 void (*xFinal)(sqlite3_context*) 2007 ){ 2008 return createFunctionApi(db, zFunc, nArg, enc, p, xSFunc, xStep, 2009 xFinal, 0, 0, 0); 2010 } 2011 int sqlite3_create_function_v2( 2012 sqlite3 *db, 2013 const char *zFunc, 2014 int nArg, 2015 int enc, 2016 void *p, 2017 void (*xSFunc)(sqlite3_context*,int,sqlite3_value **), 2018 void (*xStep)(sqlite3_context*,int,sqlite3_value **), 2019 void (*xFinal)(sqlite3_context*), 2020 void (*xDestroy)(void *) 2021 ){ 2022 return createFunctionApi(db, zFunc, nArg, enc, p, xSFunc, xStep, 2023 xFinal, 0, 0, xDestroy); 2024 } 2025 int sqlite3_create_window_function( 2026 sqlite3 *db, 2027 const char *zFunc, 2028 int nArg, 2029 int enc, 2030 void *p, 2031 void (*xStep)(sqlite3_context*,int,sqlite3_value **), 2032 void (*xFinal)(sqlite3_context*), 2033 void (*xValue)(sqlite3_context*), 2034 void (*xInverse)(sqlite3_context*,int,sqlite3_value **), 2035 void (*xDestroy)(void *) 2036 ){ 2037 return createFunctionApi(db, zFunc, nArg, enc, p, 0, xStep, 2038 xFinal, xValue, xInverse, xDestroy); 2039 } 2040 2041 #ifndef SQLITE_OMIT_UTF16 2042 int sqlite3_create_function16( 2043 sqlite3 *db, 2044 const void *zFunctionName, 2045 int nArg, 2046 int eTextRep, 2047 void *p, 2048 void (*xSFunc)(sqlite3_context*,int,sqlite3_value**), 2049 void (*xStep)(sqlite3_context*,int,sqlite3_value**), 2050 void (*xFinal)(sqlite3_context*) 2051 ){ 2052 int rc; 2053 char *zFunc8; 2054 2055 #ifdef SQLITE_ENABLE_API_ARMOR 2056 if( !sqlite3SafetyCheckOk(db) || zFunctionName==0 ) return SQLITE_MISUSE_BKPT; 2057 #endif 2058 sqlite3_mutex_enter(db->mutex); 2059 assert( !db->mallocFailed ); 2060 zFunc8 = sqlite3Utf16to8(db, zFunctionName, -1, SQLITE_UTF16NATIVE); 2061 rc = sqlite3CreateFunc(db, zFunc8, nArg, eTextRep, p, xSFunc,xStep,xFinal,0,0,0); 2062 sqlite3DbFree(db, zFunc8); 2063 rc = sqlite3ApiExit(db, rc); 2064 sqlite3_mutex_leave(db->mutex); 2065 return rc; 2066 } 2067 #endif 2068 2069 2070 /* 2071 ** The following is the implementation of an SQL function that always 2072 ** fails with an error message stating that the function is used in the 2073 ** wrong context. The sqlite3_overload_function() API might construct 2074 ** SQL function that use this routine so that the functions will exist 2075 ** for name resolution but are actually overloaded by the xFindFunction 2076 ** method of virtual tables. 2077 */ 2078 static void sqlite3InvalidFunction( 2079 sqlite3_context *context, /* The function calling context */ 2080 int NotUsed, /* Number of arguments to the function */ 2081 sqlite3_value **NotUsed2 /* Value of each argument */ 2082 ){ 2083 const char *zName = (const char*)sqlite3_user_data(context); 2084 char *zErr; 2085 UNUSED_PARAMETER2(NotUsed, NotUsed2); 2086 zErr = sqlite3_mprintf( 2087 "unable to use function %s in the requested context", zName); 2088 sqlite3_result_error(context, zErr, -1); 2089 sqlite3_free(zErr); 2090 } 2091 2092 /* 2093 ** Declare that a function has been overloaded by a virtual table. 2094 ** 2095 ** If the function already exists as a regular global function, then 2096 ** this routine is a no-op. If the function does not exist, then create 2097 ** a new one that always throws a run-time error. 2098 ** 2099 ** When virtual tables intend to provide an overloaded function, they 2100 ** should call this routine to make sure the global function exists. 2101 ** A global function must exist in order for name resolution to work 2102 ** properly. 2103 */ 2104 int sqlite3_overload_function( 2105 sqlite3 *db, 2106 const char *zName, 2107 int nArg 2108 ){ 2109 int rc; 2110 char *zCopy; 2111 2112 #ifdef SQLITE_ENABLE_API_ARMOR 2113 if( !sqlite3SafetyCheckOk(db) || zName==0 || nArg<-2 ){ 2114 return SQLITE_MISUSE_BKPT; 2115 } 2116 #endif 2117 sqlite3_mutex_enter(db->mutex); 2118 rc = sqlite3FindFunction(db, zName, nArg, SQLITE_UTF8, 0)!=0; 2119 sqlite3_mutex_leave(db->mutex); 2120 if( rc ) return SQLITE_OK; 2121 zCopy = sqlite3_mprintf(zName); 2122 if( zCopy==0 ) return SQLITE_NOMEM; 2123 return sqlite3_create_function_v2(db, zName, nArg, SQLITE_UTF8, 2124 zCopy, sqlite3InvalidFunction, 0, 0, sqlite3_free); 2125 } 2126 2127 #ifndef SQLITE_OMIT_TRACE 2128 /* 2129 ** Register a trace function. The pArg from the previously registered trace 2130 ** is returned. 2131 ** 2132 ** A NULL trace function means that no tracing is executes. A non-NULL 2133 ** trace is a pointer to a function that is invoked at the start of each 2134 ** SQL statement. 2135 */ 2136 #ifndef SQLITE_OMIT_DEPRECATED 2137 void *sqlite3_trace(sqlite3 *db, void(*xTrace)(void*,const char*), void *pArg){ 2138 void *pOld; 2139 2140 #ifdef SQLITE_ENABLE_API_ARMOR 2141 if( !sqlite3SafetyCheckOk(db) ){ 2142 (void)SQLITE_MISUSE_BKPT; 2143 return 0; 2144 } 2145 #endif 2146 sqlite3_mutex_enter(db->mutex); 2147 pOld = db->pTraceArg; 2148 db->mTrace = xTrace ? SQLITE_TRACE_LEGACY : 0; 2149 db->trace.xLegacy = xTrace; 2150 db->pTraceArg = pArg; 2151 sqlite3_mutex_leave(db->mutex); 2152 return pOld; 2153 } 2154 #endif /* SQLITE_OMIT_DEPRECATED */ 2155 2156 /* Register a trace callback using the version-2 interface. 2157 */ 2158 int sqlite3_trace_v2( 2159 sqlite3 *db, /* Trace this connection */ 2160 unsigned mTrace, /* Mask of events to be traced */ 2161 int(*xTrace)(unsigned,void*,void*,void*), /* Callback to invoke */ 2162 void *pArg /* Context */ 2163 ){ 2164 #ifdef SQLITE_ENABLE_API_ARMOR 2165 if( !sqlite3SafetyCheckOk(db) ){ 2166 return SQLITE_MISUSE_BKPT; 2167 } 2168 #endif 2169 sqlite3_mutex_enter(db->mutex); 2170 if( mTrace==0 ) xTrace = 0; 2171 if( xTrace==0 ) mTrace = 0; 2172 db->mTrace = mTrace; 2173 db->trace.xV2 = xTrace; 2174 db->pTraceArg = pArg; 2175 sqlite3_mutex_leave(db->mutex); 2176 return SQLITE_OK; 2177 } 2178 2179 #ifndef SQLITE_OMIT_DEPRECATED 2180 /* 2181 ** Register a profile function. The pArg from the previously registered 2182 ** profile function is returned. 2183 ** 2184 ** A NULL profile function means that no profiling is executes. A non-NULL 2185 ** profile is a pointer to a function that is invoked at the conclusion of 2186 ** each SQL statement that is run. 2187 */ 2188 void *sqlite3_profile( 2189 sqlite3 *db, 2190 void (*xProfile)(void*,const char*,sqlite_uint64), 2191 void *pArg 2192 ){ 2193 void *pOld; 2194 2195 #ifdef SQLITE_ENABLE_API_ARMOR 2196 if( !sqlite3SafetyCheckOk(db) ){ 2197 (void)SQLITE_MISUSE_BKPT; 2198 return 0; 2199 } 2200 #endif 2201 sqlite3_mutex_enter(db->mutex); 2202 pOld = db->pProfileArg; 2203 db->xProfile = xProfile; 2204 db->pProfileArg = pArg; 2205 db->mTrace &= SQLITE_TRACE_NONLEGACY_MASK; 2206 if( db->xProfile ) db->mTrace |= SQLITE_TRACE_XPROFILE; 2207 sqlite3_mutex_leave(db->mutex); 2208 return pOld; 2209 } 2210 #endif /* SQLITE_OMIT_DEPRECATED */ 2211 #endif /* SQLITE_OMIT_TRACE */ 2212 2213 /* 2214 ** Register a function to be invoked when a transaction commits. 2215 ** If the invoked function returns non-zero, then the commit becomes a 2216 ** rollback. 2217 */ 2218 void *sqlite3_commit_hook( 2219 sqlite3 *db, /* Attach the hook to this database */ 2220 int (*xCallback)(void*), /* Function to invoke on each commit */ 2221 void *pArg /* Argument to the function */ 2222 ){ 2223 void *pOld; 2224 2225 #ifdef SQLITE_ENABLE_API_ARMOR 2226 if( !sqlite3SafetyCheckOk(db) ){ 2227 (void)SQLITE_MISUSE_BKPT; 2228 return 0; 2229 } 2230 #endif 2231 sqlite3_mutex_enter(db->mutex); 2232 pOld = db->pCommitArg; 2233 db->xCommitCallback = xCallback; 2234 db->pCommitArg = pArg; 2235 sqlite3_mutex_leave(db->mutex); 2236 return pOld; 2237 } 2238 2239 /* 2240 ** Register a callback to be invoked each time a row is updated, 2241 ** inserted or deleted using this database connection. 2242 */ 2243 void *sqlite3_update_hook( 2244 sqlite3 *db, /* Attach the hook to this database */ 2245 void (*xCallback)(void*,int,char const *,char const *,sqlite_int64), 2246 void *pArg /* Argument to the function */ 2247 ){ 2248 void *pRet; 2249 2250 #ifdef SQLITE_ENABLE_API_ARMOR 2251 if( !sqlite3SafetyCheckOk(db) ){ 2252 (void)SQLITE_MISUSE_BKPT; 2253 return 0; 2254 } 2255 #endif 2256 sqlite3_mutex_enter(db->mutex); 2257 pRet = db->pUpdateArg; 2258 db->xUpdateCallback = xCallback; 2259 db->pUpdateArg = pArg; 2260 sqlite3_mutex_leave(db->mutex); 2261 return pRet; 2262 } 2263 2264 /* 2265 ** Register a callback to be invoked each time a transaction is rolled 2266 ** back by this database connection. 2267 */ 2268 void *sqlite3_rollback_hook( 2269 sqlite3 *db, /* Attach the hook to this database */ 2270 void (*xCallback)(void*), /* Callback function */ 2271 void *pArg /* Argument to the function */ 2272 ){ 2273 void *pRet; 2274 2275 #ifdef SQLITE_ENABLE_API_ARMOR 2276 if( !sqlite3SafetyCheckOk(db) ){ 2277 (void)SQLITE_MISUSE_BKPT; 2278 return 0; 2279 } 2280 #endif 2281 sqlite3_mutex_enter(db->mutex); 2282 pRet = db->pRollbackArg; 2283 db->xRollbackCallback = xCallback; 2284 db->pRollbackArg = pArg; 2285 sqlite3_mutex_leave(db->mutex); 2286 return pRet; 2287 } 2288 2289 #ifdef SQLITE_ENABLE_PREUPDATE_HOOK 2290 /* 2291 ** Register a callback to be invoked each time a row is updated, 2292 ** inserted or deleted using this database connection. 2293 */ 2294 void *sqlite3_preupdate_hook( 2295 sqlite3 *db, /* Attach the hook to this database */ 2296 void(*xCallback)( /* Callback function */ 2297 void*,sqlite3*,int,char const*,char const*,sqlite3_int64,sqlite3_int64), 2298 void *pArg /* First callback argument */ 2299 ){ 2300 void *pRet; 2301 sqlite3_mutex_enter(db->mutex); 2302 pRet = db->pPreUpdateArg; 2303 db->xPreUpdateCallback = xCallback; 2304 db->pPreUpdateArg = pArg; 2305 sqlite3_mutex_leave(db->mutex); 2306 return pRet; 2307 } 2308 #endif /* SQLITE_ENABLE_PREUPDATE_HOOK */ 2309 2310 /* 2311 ** Register a function to be invoked prior to each autovacuum that 2312 ** determines the number of pages to vacuum. 2313 */ 2314 int sqlite3_autovacuum_pages( 2315 sqlite3 *db, /* Attach the hook to this database */ 2316 unsigned int (*xCallback)(void*,const char*,u32,u32,u32), 2317 void *pArg, /* Argument to the function */ 2318 void (*xDestructor)(void*) /* Destructor for pArg */ 2319 ){ 2320 #ifdef SQLITE_ENABLE_API_ARMOR 2321 if( !sqlite3SafetyCheckOk(db) ){ 2322 if( xDestructor ) xDestructor(pArg); 2323 return SQLITE_MISUSE_BKPT; 2324 } 2325 #endif 2326 sqlite3_mutex_enter(db->mutex); 2327 if( db->xAutovacDestr ){ 2328 db->xAutovacDestr(db->pAutovacPagesArg); 2329 } 2330 db->xAutovacPages = xCallback; 2331 db->pAutovacPagesArg = pArg; 2332 db->xAutovacDestr = xDestructor; 2333 sqlite3_mutex_leave(db->mutex); 2334 return SQLITE_OK; 2335 } 2336 2337 2338 #ifndef SQLITE_OMIT_WAL 2339 /* 2340 ** The sqlite3_wal_hook() callback registered by sqlite3_wal_autocheckpoint(). 2341 ** Invoke sqlite3_wal_checkpoint if the number of frames in the log file 2342 ** is greater than sqlite3.pWalArg cast to an integer (the value configured by 2343 ** wal_autocheckpoint()). 2344 */ 2345 int sqlite3WalDefaultHook( 2346 void *pClientData, /* Argument */ 2347 sqlite3 *db, /* Connection */ 2348 const char *zDb, /* Database */ 2349 int nFrame /* Size of WAL */ 2350 ){ 2351 if( nFrame>=SQLITE_PTR_TO_INT(pClientData) ){ 2352 sqlite3BeginBenignMalloc(); 2353 sqlite3_wal_checkpoint(db, zDb); 2354 sqlite3EndBenignMalloc(); 2355 } 2356 return SQLITE_OK; 2357 } 2358 #endif /* SQLITE_OMIT_WAL */ 2359 2360 /* 2361 ** Configure an sqlite3_wal_hook() callback to automatically checkpoint 2362 ** a database after committing a transaction if there are nFrame or 2363 ** more frames in the log file. Passing zero or a negative value as the 2364 ** nFrame parameter disables automatic checkpoints entirely. 2365 ** 2366 ** The callback registered by this function replaces any existing callback 2367 ** registered using sqlite3_wal_hook(). Likewise, registering a callback 2368 ** using sqlite3_wal_hook() disables the automatic checkpoint mechanism 2369 ** configured by this function. 2370 */ 2371 int sqlite3_wal_autocheckpoint(sqlite3 *db, int nFrame){ 2372 #ifdef SQLITE_OMIT_WAL 2373 UNUSED_PARAMETER(db); 2374 UNUSED_PARAMETER(nFrame); 2375 #else 2376 #ifdef SQLITE_ENABLE_API_ARMOR 2377 if( !sqlite3SafetyCheckOk(db) ) return SQLITE_MISUSE_BKPT; 2378 #endif 2379 if( nFrame>0 ){ 2380 sqlite3_wal_hook(db, sqlite3WalDefaultHook, SQLITE_INT_TO_PTR(nFrame)); 2381 }else{ 2382 sqlite3_wal_hook(db, 0, 0); 2383 } 2384 #endif 2385 return SQLITE_OK; 2386 } 2387 2388 /* 2389 ** Register a callback to be invoked each time a transaction is written 2390 ** into the write-ahead-log by this database connection. 2391 */ 2392 void *sqlite3_wal_hook( 2393 sqlite3 *db, /* Attach the hook to this db handle */ 2394 int(*xCallback)(void *, sqlite3*, const char*, int), 2395 void *pArg /* First argument passed to xCallback() */ 2396 ){ 2397 #ifndef SQLITE_OMIT_WAL 2398 void *pRet; 2399 #ifdef SQLITE_ENABLE_API_ARMOR 2400 if( !sqlite3SafetyCheckOk(db) ){ 2401 (void)SQLITE_MISUSE_BKPT; 2402 return 0; 2403 } 2404 #endif 2405 sqlite3_mutex_enter(db->mutex); 2406 pRet = db->pWalArg; 2407 db->xWalCallback = xCallback; 2408 db->pWalArg = pArg; 2409 sqlite3_mutex_leave(db->mutex); 2410 return pRet; 2411 #else 2412 return 0; 2413 #endif 2414 } 2415 2416 /* 2417 ** Checkpoint database zDb. 2418 */ 2419 int sqlite3_wal_checkpoint_v2( 2420 sqlite3 *db, /* Database handle */ 2421 const char *zDb, /* Name of attached database (or NULL) */ 2422 int eMode, /* SQLITE_CHECKPOINT_* value */ 2423 int *pnLog, /* OUT: Size of WAL log in frames */ 2424 int *pnCkpt /* OUT: Total number of frames checkpointed */ 2425 ){ 2426 #ifdef SQLITE_OMIT_WAL 2427 return SQLITE_OK; 2428 #else 2429 int rc; /* Return code */ 2430 int iDb; /* Schema to checkpoint */ 2431 2432 #ifdef SQLITE_ENABLE_API_ARMOR 2433 if( !sqlite3SafetyCheckOk(db) ) return SQLITE_MISUSE_BKPT; 2434 #endif 2435 2436 /* Initialize the output variables to -1 in case an error occurs. */ 2437 if( pnLog ) *pnLog = -1; 2438 if( pnCkpt ) *pnCkpt = -1; 2439 2440 assert( SQLITE_CHECKPOINT_PASSIVE==0 ); 2441 assert( SQLITE_CHECKPOINT_FULL==1 ); 2442 assert( SQLITE_CHECKPOINT_RESTART==2 ); 2443 assert( SQLITE_CHECKPOINT_TRUNCATE==3 ); 2444 if( eMode<SQLITE_CHECKPOINT_PASSIVE || eMode>SQLITE_CHECKPOINT_TRUNCATE ){ 2445 /* EVIDENCE-OF: R-03996-12088 The M parameter must be a valid checkpoint 2446 ** mode: */ 2447 return SQLITE_MISUSE; 2448 } 2449 2450 sqlite3_mutex_enter(db->mutex); 2451 if( zDb && zDb[0] ){ 2452 iDb = sqlite3FindDbName(db, zDb); 2453 }else{ 2454 iDb = SQLITE_MAX_DB; /* This means process all schemas */ 2455 } 2456 if( iDb<0 ){ 2457 rc = SQLITE_ERROR; 2458 sqlite3ErrorWithMsg(db, SQLITE_ERROR, "unknown database: %s", zDb); 2459 }else{ 2460 db->busyHandler.nBusy = 0; 2461 rc = sqlite3Checkpoint(db, iDb, eMode, pnLog, pnCkpt); 2462 sqlite3Error(db, rc); 2463 } 2464 rc = sqlite3ApiExit(db, rc); 2465 2466 /* If there are no active statements, clear the interrupt flag at this 2467 ** point. */ 2468 if( db->nVdbeActive==0 ){ 2469 AtomicStore(&db->u1.isInterrupted, 0); 2470 } 2471 2472 sqlite3_mutex_leave(db->mutex); 2473 return rc; 2474 #endif 2475 } 2476 2477 2478 /* 2479 ** Checkpoint database zDb. If zDb is NULL, or if the buffer zDb points 2480 ** to contains a zero-length string, all attached databases are 2481 ** checkpointed. 2482 */ 2483 int sqlite3_wal_checkpoint(sqlite3 *db, const char *zDb){ 2484 /* EVIDENCE-OF: R-41613-20553 The sqlite3_wal_checkpoint(D,X) is equivalent to 2485 ** sqlite3_wal_checkpoint_v2(D,X,SQLITE_CHECKPOINT_PASSIVE,0,0). */ 2486 return sqlite3_wal_checkpoint_v2(db,zDb,SQLITE_CHECKPOINT_PASSIVE,0,0); 2487 } 2488 2489 #ifndef SQLITE_OMIT_WAL 2490 /* 2491 ** Run a checkpoint on database iDb. This is a no-op if database iDb is 2492 ** not currently open in WAL mode. 2493 ** 2494 ** If a transaction is open on the database being checkpointed, this 2495 ** function returns SQLITE_LOCKED and a checkpoint is not attempted. If 2496 ** an error occurs while running the checkpoint, an SQLite error code is 2497 ** returned (i.e. SQLITE_IOERR). Otherwise, SQLITE_OK. 2498 ** 2499 ** The mutex on database handle db should be held by the caller. The mutex 2500 ** associated with the specific b-tree being checkpointed is taken by 2501 ** this function while the checkpoint is running. 2502 ** 2503 ** If iDb is passed SQLITE_MAX_DB then all attached databases are 2504 ** checkpointed. If an error is encountered it is returned immediately - 2505 ** no attempt is made to checkpoint any remaining databases. 2506 ** 2507 ** Parameter eMode is one of SQLITE_CHECKPOINT_PASSIVE, FULL, RESTART 2508 ** or TRUNCATE. 2509 */ 2510 int sqlite3Checkpoint(sqlite3 *db, int iDb, int eMode, int *pnLog, int *pnCkpt){ 2511 int rc = SQLITE_OK; /* Return code */ 2512 int i; /* Used to iterate through attached dbs */ 2513 int bBusy = 0; /* True if SQLITE_BUSY has been encountered */ 2514 2515 assert( sqlite3_mutex_held(db->mutex) ); 2516 assert( !pnLog || *pnLog==-1 ); 2517 assert( !pnCkpt || *pnCkpt==-1 ); 2518 testcase( iDb==SQLITE_MAX_ATTACHED ); /* See forum post a006d86f72 */ 2519 testcase( iDb==SQLITE_MAX_DB ); 2520 2521 for(i=0; i<db->nDb && rc==SQLITE_OK; i++){ 2522 if( i==iDb || iDb==SQLITE_MAX_DB ){ 2523 rc = sqlite3BtreeCheckpoint(db->aDb[i].pBt, eMode, pnLog, pnCkpt); 2524 pnLog = 0; 2525 pnCkpt = 0; 2526 if( rc==SQLITE_BUSY ){ 2527 bBusy = 1; 2528 rc = SQLITE_OK; 2529 } 2530 } 2531 } 2532 2533 return (rc==SQLITE_OK && bBusy) ? SQLITE_BUSY : rc; 2534 } 2535 #endif /* SQLITE_OMIT_WAL */ 2536 2537 /* 2538 ** This function returns true if main-memory should be used instead of 2539 ** a temporary file for transient pager files and statement journals. 2540 ** The value returned depends on the value of db->temp_store (runtime 2541 ** parameter) and the compile time value of SQLITE_TEMP_STORE. The 2542 ** following table describes the relationship between these two values 2543 ** and this functions return value. 2544 ** 2545 ** SQLITE_TEMP_STORE db->temp_store Location of temporary database 2546 ** ----------------- -------------- ------------------------------ 2547 ** 0 any file (return 0) 2548 ** 1 1 file (return 0) 2549 ** 1 2 memory (return 1) 2550 ** 1 0 file (return 0) 2551 ** 2 1 file (return 0) 2552 ** 2 2 memory (return 1) 2553 ** 2 0 memory (return 1) 2554 ** 3 any memory (return 1) 2555 */ 2556 int sqlite3TempInMemory(const sqlite3 *db){ 2557 #if SQLITE_TEMP_STORE==1 2558 return ( db->temp_store==2 ); 2559 #endif 2560 #if SQLITE_TEMP_STORE==2 2561 return ( db->temp_store!=1 ); 2562 #endif 2563 #if SQLITE_TEMP_STORE==3 2564 UNUSED_PARAMETER(db); 2565 return 1; 2566 #endif 2567 #if SQLITE_TEMP_STORE<1 || SQLITE_TEMP_STORE>3 2568 UNUSED_PARAMETER(db); 2569 return 0; 2570 #endif 2571 } 2572 2573 /* 2574 ** Return UTF-8 encoded English language explanation of the most recent 2575 ** error. 2576 */ 2577 const char *sqlite3_errmsg(sqlite3 *db){ 2578 const char *z; 2579 if( !db ){ 2580 return sqlite3ErrStr(SQLITE_NOMEM_BKPT); 2581 } 2582 if( !sqlite3SafetyCheckSickOrOk(db) ){ 2583 return sqlite3ErrStr(SQLITE_MISUSE_BKPT); 2584 } 2585 sqlite3_mutex_enter(db->mutex); 2586 if( db->mallocFailed ){ 2587 z = sqlite3ErrStr(SQLITE_NOMEM_BKPT); 2588 }else{ 2589 testcase( db->pErr==0 ); 2590 z = db->errCode ? (char*)sqlite3_value_text(db->pErr) : 0; 2591 assert( !db->mallocFailed ); 2592 if( z==0 ){ 2593 z = sqlite3ErrStr(db->errCode); 2594 } 2595 } 2596 sqlite3_mutex_leave(db->mutex); 2597 return z; 2598 } 2599 2600 #ifndef SQLITE_OMIT_UTF16 2601 /* 2602 ** Return UTF-16 encoded English language explanation of the most recent 2603 ** error. 2604 */ 2605 const void *sqlite3_errmsg16(sqlite3 *db){ 2606 static const u16 outOfMem[] = { 2607 'o', 'u', 't', ' ', 'o', 'f', ' ', 'm', 'e', 'm', 'o', 'r', 'y', 0 2608 }; 2609 static const u16 misuse[] = { 2610 'b', 'a', 'd', ' ', 'p', 'a', 'r', 'a', 'm', 'e', 't', 'e', 'r', ' ', 2611 'o', 'r', ' ', 'o', 't', 'h', 'e', 'r', ' ', 'A', 'P', 'I', ' ', 2612 'm', 'i', 's', 'u', 's', 'e', 0 2613 }; 2614 2615 const void *z; 2616 if( !db ){ 2617 return (void *)outOfMem; 2618 } 2619 if( !sqlite3SafetyCheckSickOrOk(db) ){ 2620 return (void *)misuse; 2621 } 2622 sqlite3_mutex_enter(db->mutex); 2623 if( db->mallocFailed ){ 2624 z = (void *)outOfMem; 2625 }else{ 2626 z = sqlite3_value_text16(db->pErr); 2627 if( z==0 ){ 2628 sqlite3ErrorWithMsg(db, db->errCode, sqlite3ErrStr(db->errCode)); 2629 z = sqlite3_value_text16(db->pErr); 2630 } 2631 /* A malloc() may have failed within the call to sqlite3_value_text16() 2632 ** above. If this is the case, then the db->mallocFailed flag needs to 2633 ** be cleared before returning. Do this directly, instead of via 2634 ** sqlite3ApiExit(), to avoid setting the database handle error message. 2635 */ 2636 sqlite3OomClear(db); 2637 } 2638 sqlite3_mutex_leave(db->mutex); 2639 return z; 2640 } 2641 #endif /* SQLITE_OMIT_UTF16 */ 2642 2643 /* 2644 ** Return the most recent error code generated by an SQLite routine. If NULL is 2645 ** passed to this function, we assume a malloc() failed during sqlite3_open(). 2646 */ 2647 int sqlite3_errcode(sqlite3 *db){ 2648 if( db && !sqlite3SafetyCheckSickOrOk(db) ){ 2649 return SQLITE_MISUSE_BKPT; 2650 } 2651 if( !db || db->mallocFailed ){ 2652 return SQLITE_NOMEM_BKPT; 2653 } 2654 return db->errCode & db->errMask; 2655 } 2656 int sqlite3_extended_errcode(sqlite3 *db){ 2657 if( db && !sqlite3SafetyCheckSickOrOk(db) ){ 2658 return SQLITE_MISUSE_BKPT; 2659 } 2660 if( !db || db->mallocFailed ){ 2661 return SQLITE_NOMEM_BKPT; 2662 } 2663 return db->errCode; 2664 } 2665 int sqlite3_system_errno(sqlite3 *db){ 2666 return db ? db->iSysErrno : 0; 2667 } 2668 2669 /* 2670 ** Return a string that describes the kind of error specified in the 2671 ** argument. For now, this simply calls the internal sqlite3ErrStr() 2672 ** function. 2673 */ 2674 const char *sqlite3_errstr(int rc){ 2675 return sqlite3ErrStr(rc); 2676 } 2677 2678 /* 2679 ** Create a new collating function for database "db". The name is zName 2680 ** and the encoding is enc. 2681 */ 2682 static int createCollation( 2683 sqlite3* db, 2684 const char *zName, 2685 u8 enc, 2686 void* pCtx, 2687 int(*xCompare)(void*,int,const void*,int,const void*), 2688 void(*xDel)(void*) 2689 ){ 2690 CollSeq *pColl; 2691 int enc2; 2692 2693 assert( sqlite3_mutex_held(db->mutex) ); 2694 2695 /* If SQLITE_UTF16 is specified as the encoding type, transform this 2696 ** to one of SQLITE_UTF16LE or SQLITE_UTF16BE using the 2697 ** SQLITE_UTF16NATIVE macro. SQLITE_UTF16 is not used internally. 2698 */ 2699 enc2 = enc; 2700 testcase( enc2==SQLITE_UTF16 ); 2701 testcase( enc2==SQLITE_UTF16_ALIGNED ); 2702 if( enc2==SQLITE_UTF16 || enc2==SQLITE_UTF16_ALIGNED ){ 2703 enc2 = SQLITE_UTF16NATIVE; 2704 } 2705 if( enc2<SQLITE_UTF8 || enc2>SQLITE_UTF16BE ){ 2706 return SQLITE_MISUSE_BKPT; 2707 } 2708 2709 /* Check if this call is removing or replacing an existing collation 2710 ** sequence. If so, and there are active VMs, return busy. If there 2711 ** are no active VMs, invalidate any pre-compiled statements. 2712 */ 2713 pColl = sqlite3FindCollSeq(db, (u8)enc2, zName, 0); 2714 if( pColl && pColl->xCmp ){ 2715 if( db->nVdbeActive ){ 2716 sqlite3ErrorWithMsg(db, SQLITE_BUSY, 2717 "unable to delete/modify collation sequence due to active statements"); 2718 return SQLITE_BUSY; 2719 } 2720 sqlite3ExpirePreparedStatements(db, 0); 2721 2722 /* If collation sequence pColl was created directly by a call to 2723 ** sqlite3_create_collation, and not generated by synthCollSeq(), 2724 ** then any copies made by synthCollSeq() need to be invalidated. 2725 ** Also, collation destructor - CollSeq.xDel() - function may need 2726 ** to be called. 2727 */ 2728 if( (pColl->enc & ~SQLITE_UTF16_ALIGNED)==enc2 ){ 2729 CollSeq *aColl = sqlite3HashFind(&db->aCollSeq, zName); 2730 int j; 2731 for(j=0; j<3; j++){ 2732 CollSeq *p = &aColl[j]; 2733 if( p->enc==pColl->enc ){ 2734 if( p->xDel ){ 2735 p->xDel(p->pUser); 2736 } 2737 p->xCmp = 0; 2738 } 2739 } 2740 } 2741 } 2742 2743 pColl = sqlite3FindCollSeq(db, (u8)enc2, zName, 1); 2744 if( pColl==0 ) return SQLITE_NOMEM_BKPT; 2745 pColl->xCmp = xCompare; 2746 pColl->pUser = pCtx; 2747 pColl->xDel = xDel; 2748 pColl->enc = (u8)(enc2 | (enc & SQLITE_UTF16_ALIGNED)); 2749 sqlite3Error(db, SQLITE_OK); 2750 return SQLITE_OK; 2751 } 2752 2753 2754 /* 2755 ** This array defines hard upper bounds on limit values. The 2756 ** initializer must be kept in sync with the SQLITE_LIMIT_* 2757 ** #defines in sqlite3.h. 2758 */ 2759 static const int aHardLimit[] = { 2760 SQLITE_MAX_LENGTH, 2761 SQLITE_MAX_SQL_LENGTH, 2762 SQLITE_MAX_COLUMN, 2763 SQLITE_MAX_EXPR_DEPTH, 2764 SQLITE_MAX_COMPOUND_SELECT, 2765 SQLITE_MAX_VDBE_OP, 2766 SQLITE_MAX_FUNCTION_ARG, 2767 SQLITE_MAX_ATTACHED, 2768 SQLITE_MAX_LIKE_PATTERN_LENGTH, 2769 SQLITE_MAX_VARIABLE_NUMBER, /* IMP: R-38091-32352 */ 2770 SQLITE_MAX_TRIGGER_DEPTH, 2771 SQLITE_MAX_WORKER_THREADS, 2772 }; 2773 2774 /* 2775 ** Make sure the hard limits are set to reasonable values 2776 */ 2777 #if SQLITE_MAX_LENGTH<100 2778 # error SQLITE_MAX_LENGTH must be at least 100 2779 #endif 2780 #if SQLITE_MAX_SQL_LENGTH<100 2781 # error SQLITE_MAX_SQL_LENGTH must be at least 100 2782 #endif 2783 #if SQLITE_MAX_SQL_LENGTH>SQLITE_MAX_LENGTH 2784 # error SQLITE_MAX_SQL_LENGTH must not be greater than SQLITE_MAX_LENGTH 2785 #endif 2786 #if SQLITE_MAX_COMPOUND_SELECT<2 2787 # error SQLITE_MAX_COMPOUND_SELECT must be at least 2 2788 #endif 2789 #if SQLITE_MAX_VDBE_OP<40 2790 # error SQLITE_MAX_VDBE_OP must be at least 40 2791 #endif 2792 #if SQLITE_MAX_FUNCTION_ARG<0 || SQLITE_MAX_FUNCTION_ARG>127 2793 # error SQLITE_MAX_FUNCTION_ARG must be between 0 and 127 2794 #endif 2795 #if SQLITE_MAX_ATTACHED<0 || SQLITE_MAX_ATTACHED>125 2796 # error SQLITE_MAX_ATTACHED must be between 0 and 125 2797 #endif 2798 #if SQLITE_MAX_LIKE_PATTERN_LENGTH<1 2799 # error SQLITE_MAX_LIKE_PATTERN_LENGTH must be at least 1 2800 #endif 2801 #if SQLITE_MAX_COLUMN>32767 2802 # error SQLITE_MAX_COLUMN must not exceed 32767 2803 #endif 2804 #if SQLITE_MAX_TRIGGER_DEPTH<1 2805 # error SQLITE_MAX_TRIGGER_DEPTH must be at least 1 2806 #endif 2807 #if SQLITE_MAX_WORKER_THREADS<0 || SQLITE_MAX_WORKER_THREADS>50 2808 # error SQLITE_MAX_WORKER_THREADS must be between 0 and 50 2809 #endif 2810 2811 2812 /* 2813 ** Change the value of a limit. Report the old value. 2814 ** If an invalid limit index is supplied, report -1. 2815 ** Make no changes but still report the old value if the 2816 ** new limit is negative. 2817 ** 2818 ** A new lower limit does not shrink existing constructs. 2819 ** It merely prevents new constructs that exceed the limit 2820 ** from forming. 2821 */ 2822 int sqlite3_limit(sqlite3 *db, int limitId, int newLimit){ 2823 int oldLimit; 2824 2825 #ifdef SQLITE_ENABLE_API_ARMOR 2826 if( !sqlite3SafetyCheckOk(db) ){ 2827 (void)SQLITE_MISUSE_BKPT; 2828 return -1; 2829 } 2830 #endif 2831 2832 /* EVIDENCE-OF: R-30189-54097 For each limit category SQLITE_LIMIT_NAME 2833 ** there is a hard upper bound set at compile-time by a C preprocessor 2834 ** macro called SQLITE_MAX_NAME. (The "_LIMIT_" in the name is changed to 2835 ** "_MAX_".) 2836 */ 2837 assert( aHardLimit[SQLITE_LIMIT_LENGTH]==SQLITE_MAX_LENGTH ); 2838 assert( aHardLimit[SQLITE_LIMIT_SQL_LENGTH]==SQLITE_MAX_SQL_LENGTH ); 2839 assert( aHardLimit[SQLITE_LIMIT_COLUMN]==SQLITE_MAX_COLUMN ); 2840 assert( aHardLimit[SQLITE_LIMIT_EXPR_DEPTH]==SQLITE_MAX_EXPR_DEPTH ); 2841 assert( aHardLimit[SQLITE_LIMIT_COMPOUND_SELECT]==SQLITE_MAX_COMPOUND_SELECT); 2842 assert( aHardLimit[SQLITE_LIMIT_VDBE_OP]==SQLITE_MAX_VDBE_OP ); 2843 assert( aHardLimit[SQLITE_LIMIT_FUNCTION_ARG]==SQLITE_MAX_FUNCTION_ARG ); 2844 assert( aHardLimit[SQLITE_LIMIT_ATTACHED]==SQLITE_MAX_ATTACHED ); 2845 assert( aHardLimit[SQLITE_LIMIT_LIKE_PATTERN_LENGTH]== 2846 SQLITE_MAX_LIKE_PATTERN_LENGTH ); 2847 assert( aHardLimit[SQLITE_LIMIT_VARIABLE_NUMBER]==SQLITE_MAX_VARIABLE_NUMBER); 2848 assert( aHardLimit[SQLITE_LIMIT_TRIGGER_DEPTH]==SQLITE_MAX_TRIGGER_DEPTH ); 2849 assert( aHardLimit[SQLITE_LIMIT_WORKER_THREADS]==SQLITE_MAX_WORKER_THREADS ); 2850 assert( SQLITE_LIMIT_WORKER_THREADS==(SQLITE_N_LIMIT-1) ); 2851 2852 2853 if( limitId<0 || limitId>=SQLITE_N_LIMIT ){ 2854 return -1; 2855 } 2856 oldLimit = db->aLimit[limitId]; 2857 if( newLimit>=0 ){ /* IMP: R-52476-28732 */ 2858 if( newLimit>aHardLimit[limitId] ){ 2859 newLimit = aHardLimit[limitId]; /* IMP: R-51463-25634 */ 2860 }else if( newLimit<1 && limitId==SQLITE_LIMIT_LENGTH ){ 2861 newLimit = 1; 2862 } 2863 db->aLimit[limitId] = newLimit; 2864 } 2865 return oldLimit; /* IMP: R-53341-35419 */ 2866 } 2867 2868 /* 2869 ** This function is used to parse both URIs and non-URI filenames passed by the 2870 ** user to API functions sqlite3_open() or sqlite3_open_v2(), and for database 2871 ** URIs specified as part of ATTACH statements. 2872 ** 2873 ** The first argument to this function is the name of the VFS to use (or 2874 ** a NULL to signify the default VFS) if the URI does not contain a "vfs=xxx" 2875 ** query parameter. The second argument contains the URI (or non-URI filename) 2876 ** itself. When this function is called the *pFlags variable should contain 2877 ** the default flags to open the database handle with. The value stored in 2878 ** *pFlags may be updated before returning if the URI filename contains 2879 ** "cache=xxx" or "mode=xxx" query parameters. 2880 ** 2881 ** If successful, SQLITE_OK is returned. In this case *ppVfs is set to point to 2882 ** the VFS that should be used to open the database file. *pzFile is set to 2883 ** point to a buffer containing the name of the file to open. The value 2884 ** stored in *pzFile is a database name acceptable to sqlite3_uri_parameter() 2885 ** and is in the same format as names created using sqlite3_create_filename(). 2886 ** The caller must invoke sqlite3_free_filename() (not sqlite3_free()!) on 2887 ** the value returned in *pzFile to avoid a memory leak. 2888 ** 2889 ** If an error occurs, then an SQLite error code is returned and *pzErrMsg 2890 ** may be set to point to a buffer containing an English language error 2891 ** message. It is the responsibility of the caller to eventually release 2892 ** this buffer by calling sqlite3_free(). 2893 */ 2894 int sqlite3ParseUri( 2895 const char *zDefaultVfs, /* VFS to use if no "vfs=xxx" query option */ 2896 const char *zUri, /* Nul-terminated URI to parse */ 2897 unsigned int *pFlags, /* IN/OUT: SQLITE_OPEN_XXX flags */ 2898 sqlite3_vfs **ppVfs, /* OUT: VFS to use */ 2899 char **pzFile, /* OUT: Filename component of URI */ 2900 char **pzErrMsg /* OUT: Error message (if rc!=SQLITE_OK) */ 2901 ){ 2902 int rc = SQLITE_OK; 2903 unsigned int flags = *pFlags; 2904 const char *zVfs = zDefaultVfs; 2905 char *zFile; 2906 char c; 2907 int nUri = sqlite3Strlen30(zUri); 2908 2909 assert( *pzErrMsg==0 ); 2910 2911 if( ((flags & SQLITE_OPEN_URI) /* IMP: R-48725-32206 */ 2912 || sqlite3GlobalConfig.bOpenUri) /* IMP: R-51689-46548 */ 2913 && nUri>=5 && memcmp(zUri, "file:", 5)==0 /* IMP: R-57884-37496 */ 2914 ){ 2915 char *zOpt; 2916 int eState; /* Parser state when parsing URI */ 2917 int iIn; /* Input character index */ 2918 int iOut = 0; /* Output character index */ 2919 u64 nByte = nUri+8; /* Bytes of space to allocate */ 2920 2921 /* Make sure the SQLITE_OPEN_URI flag is set to indicate to the VFS xOpen 2922 ** method that there may be extra parameters following the file-name. */ 2923 flags |= SQLITE_OPEN_URI; 2924 2925 for(iIn=0; iIn<nUri; iIn++) nByte += (zUri[iIn]=='&'); 2926 zFile = sqlite3_malloc64(nByte); 2927 if( !zFile ) return SQLITE_NOMEM_BKPT; 2928 2929 memset(zFile, 0, 4); /* 4-byte of 0x00 is the start of DB name marker */ 2930 zFile += 4; 2931 2932 iIn = 5; 2933 #ifdef SQLITE_ALLOW_URI_AUTHORITY 2934 if( strncmp(zUri+5, "///", 3)==0 ){ 2935 iIn = 7; 2936 /* The following condition causes URIs with five leading / characters 2937 ** like file://///host/path to be converted into UNCs like //host/path. 2938 ** The correct URI for that UNC has only two or four leading / characters 2939 ** file://host/path or file:////host/path. But 5 leading slashes is a 2940 ** common error, we are told, so we handle it as a special case. */ 2941 if( strncmp(zUri+7, "///", 3)==0 ){ iIn++; } 2942 }else if( strncmp(zUri+5, "//localhost/", 12)==0 ){ 2943 iIn = 16; 2944 } 2945 #else 2946 /* Discard the scheme and authority segments of the URI. */ 2947 if( zUri[5]=='/' && zUri[6]=='/' ){ 2948 iIn = 7; 2949 while( zUri[iIn] && zUri[iIn]!='/' ) iIn++; 2950 if( iIn!=7 && (iIn!=16 || memcmp("localhost", &zUri[7], 9)) ){ 2951 *pzErrMsg = sqlite3_mprintf("invalid uri authority: %.*s", 2952 iIn-7, &zUri[7]); 2953 rc = SQLITE_ERROR; 2954 goto parse_uri_out; 2955 } 2956 } 2957 #endif 2958 2959 /* Copy the filename and any query parameters into the zFile buffer. 2960 ** Decode %HH escape codes along the way. 2961 ** 2962 ** Within this loop, variable eState may be set to 0, 1 or 2, depending 2963 ** on the parsing context. As follows: 2964 ** 2965 ** 0: Parsing file-name. 2966 ** 1: Parsing name section of a name=value query parameter. 2967 ** 2: Parsing value section of a name=value query parameter. 2968 */ 2969 eState = 0; 2970 while( (c = zUri[iIn])!=0 && c!='#' ){ 2971 iIn++; 2972 if( c=='%' 2973 && sqlite3Isxdigit(zUri[iIn]) 2974 && sqlite3Isxdigit(zUri[iIn+1]) 2975 ){ 2976 int octet = (sqlite3HexToInt(zUri[iIn++]) << 4); 2977 octet += sqlite3HexToInt(zUri[iIn++]); 2978 2979 assert( octet>=0 && octet<256 ); 2980 if( octet==0 ){ 2981 #ifndef SQLITE_ENABLE_URI_00_ERROR 2982 /* This branch is taken when "%00" appears within the URI. In this 2983 ** case we ignore all text in the remainder of the path, name or 2984 ** value currently being parsed. So ignore the current character 2985 ** and skip to the next "?", "=" or "&", as appropriate. */ 2986 while( (c = zUri[iIn])!=0 && c!='#' 2987 && (eState!=0 || c!='?') 2988 && (eState!=1 || (c!='=' && c!='&')) 2989 && (eState!=2 || c!='&') 2990 ){ 2991 iIn++; 2992 } 2993 continue; 2994 #else 2995 /* If ENABLE_URI_00_ERROR is defined, "%00" in a URI is an error. */ 2996 *pzErrMsg = sqlite3_mprintf("unexpected %%00 in uri"); 2997 rc = SQLITE_ERROR; 2998 goto parse_uri_out; 2999 #endif 3000 } 3001 c = octet; 3002 }else if( eState==1 && (c=='&' || c=='=') ){ 3003 if( zFile[iOut-1]==0 ){ 3004 /* An empty option name. Ignore this option altogether. */ 3005 while( zUri[iIn] && zUri[iIn]!='#' && zUri[iIn-1]!='&' ) iIn++; 3006 continue; 3007 } 3008 if( c=='&' ){ 3009 zFile[iOut++] = '\0'; 3010 }else{ 3011 eState = 2; 3012 } 3013 c = 0; 3014 }else if( (eState==0 && c=='?') || (eState==2 && c=='&') ){ 3015 c = 0; 3016 eState = 1; 3017 } 3018 zFile[iOut++] = c; 3019 } 3020 if( eState==1 ) zFile[iOut++] = '\0'; 3021 memset(zFile+iOut, 0, 4); /* end-of-options + empty journal filenames */ 3022 3023 /* Check if there were any options specified that should be interpreted 3024 ** here. Options that are interpreted here include "vfs" and those that 3025 ** correspond to flags that may be passed to the sqlite3_open_v2() 3026 ** method. */ 3027 zOpt = &zFile[sqlite3Strlen30(zFile)+1]; 3028 while( zOpt[0] ){ 3029 int nOpt = sqlite3Strlen30(zOpt); 3030 char *zVal = &zOpt[nOpt+1]; 3031 int nVal = sqlite3Strlen30(zVal); 3032 3033 if( nOpt==3 && memcmp("vfs", zOpt, 3)==0 ){ 3034 zVfs = zVal; 3035 }else{ 3036 struct OpenMode { 3037 const char *z; 3038 int mode; 3039 } *aMode = 0; 3040 char *zModeType = 0; 3041 int mask = 0; 3042 int limit = 0; 3043 3044 if( nOpt==5 && memcmp("cache", zOpt, 5)==0 ){ 3045 static struct OpenMode aCacheMode[] = { 3046 { "shared", SQLITE_OPEN_SHAREDCACHE }, 3047 { "private", SQLITE_OPEN_PRIVATECACHE }, 3048 { 0, 0 } 3049 }; 3050 3051 mask = SQLITE_OPEN_SHAREDCACHE|SQLITE_OPEN_PRIVATECACHE; 3052 aMode = aCacheMode; 3053 limit = mask; 3054 zModeType = "cache"; 3055 } 3056 if( nOpt==4 && memcmp("mode", zOpt, 4)==0 ){ 3057 static struct OpenMode aOpenMode[] = { 3058 { "ro", SQLITE_OPEN_READONLY }, 3059 { "rw", SQLITE_OPEN_READWRITE }, 3060 { "rwc", SQLITE_OPEN_READWRITE | SQLITE_OPEN_CREATE }, 3061 { "memory", SQLITE_OPEN_MEMORY }, 3062 { 0, 0 } 3063 }; 3064 3065 mask = SQLITE_OPEN_READONLY | SQLITE_OPEN_READWRITE 3066 | SQLITE_OPEN_CREATE | SQLITE_OPEN_MEMORY; 3067 aMode = aOpenMode; 3068 limit = mask & flags; 3069 zModeType = "access"; 3070 } 3071 3072 if( aMode ){ 3073 int i; 3074 int mode = 0; 3075 for(i=0; aMode[i].z; i++){ 3076 const char *z = aMode[i].z; 3077 if( nVal==sqlite3Strlen30(z) && 0==memcmp(zVal, z, nVal) ){ 3078 mode = aMode[i].mode; 3079 break; 3080 } 3081 } 3082 if( mode==0 ){ 3083 *pzErrMsg = sqlite3_mprintf("no such %s mode: %s", zModeType, zVal); 3084 rc = SQLITE_ERROR; 3085 goto parse_uri_out; 3086 } 3087 if( (mode & ~SQLITE_OPEN_MEMORY)>limit ){ 3088 *pzErrMsg = sqlite3_mprintf("%s mode not allowed: %s", 3089 zModeType, zVal); 3090 rc = SQLITE_PERM; 3091 goto parse_uri_out; 3092 } 3093 flags = (flags & ~mask) | mode; 3094 } 3095 } 3096 3097 zOpt = &zVal[nVal+1]; 3098 } 3099 3100 }else{ 3101 zFile = sqlite3_malloc64(nUri+8); 3102 if( !zFile ) return SQLITE_NOMEM_BKPT; 3103 memset(zFile, 0, 4); 3104 zFile += 4; 3105 if( nUri ){ 3106 memcpy(zFile, zUri, nUri); 3107 } 3108 memset(zFile+nUri, 0, 4); 3109 flags &= ~SQLITE_OPEN_URI; 3110 } 3111 3112 *ppVfs = sqlite3_vfs_find(zVfs); 3113 if( *ppVfs==0 ){ 3114 *pzErrMsg = sqlite3_mprintf("no such vfs: %s", zVfs); 3115 rc = SQLITE_ERROR; 3116 } 3117 parse_uri_out: 3118 if( rc!=SQLITE_OK ){ 3119 sqlite3_free_filename(zFile); 3120 zFile = 0; 3121 } 3122 *pFlags = flags; 3123 *pzFile = zFile; 3124 return rc; 3125 } 3126 3127 /* 3128 ** This routine does the core work of extracting URI parameters from a 3129 ** database filename for the sqlite3_uri_parameter() interface. 3130 */ 3131 static const char *uriParameter(const char *zFilename, const char *zParam){ 3132 zFilename += sqlite3Strlen30(zFilename) + 1; 3133 while( ALWAYS(zFilename!=0) && zFilename[0] ){ 3134 int x = strcmp(zFilename, zParam); 3135 zFilename += sqlite3Strlen30(zFilename) + 1; 3136 if( x==0 ) return zFilename; 3137 zFilename += sqlite3Strlen30(zFilename) + 1; 3138 } 3139 return 0; 3140 } 3141 3142 3143 3144 /* 3145 ** This routine does the work of opening a database on behalf of 3146 ** sqlite3_open() and sqlite3_open16(). The database filename "zFilename" 3147 ** is UTF-8 encoded. 3148 */ 3149 static int openDatabase( 3150 const char *zFilename, /* Database filename UTF-8 encoded */ 3151 sqlite3 **ppDb, /* OUT: Returned database handle */ 3152 unsigned int flags, /* Operational flags */ 3153 const char *zVfs /* Name of the VFS to use */ 3154 ){ 3155 sqlite3 *db; /* Store allocated handle here */ 3156 int rc; /* Return code */ 3157 int isThreadsafe; /* True for threadsafe connections */ 3158 char *zOpen = 0; /* Filename argument to pass to BtreeOpen() */ 3159 char *zErrMsg = 0; /* Error message from sqlite3ParseUri() */ 3160 int i; /* Loop counter */ 3161 3162 #ifdef SQLITE_ENABLE_API_ARMOR 3163 if( ppDb==0 ) return SQLITE_MISUSE_BKPT; 3164 #endif 3165 *ppDb = 0; 3166 #ifndef SQLITE_OMIT_AUTOINIT 3167 rc = sqlite3_initialize(); 3168 if( rc ) return rc; 3169 #endif 3170 3171 if( sqlite3GlobalConfig.bCoreMutex==0 ){ 3172 isThreadsafe = 0; 3173 }else if( flags & SQLITE_OPEN_NOMUTEX ){ 3174 isThreadsafe = 0; 3175 }else if( flags & SQLITE_OPEN_FULLMUTEX ){ 3176 isThreadsafe = 1; 3177 }else{ 3178 isThreadsafe = sqlite3GlobalConfig.bFullMutex; 3179 } 3180 3181 if( flags & SQLITE_OPEN_PRIVATECACHE ){ 3182 flags &= ~SQLITE_OPEN_SHAREDCACHE; 3183 }else if( sqlite3GlobalConfig.sharedCacheEnabled ){ 3184 flags |= SQLITE_OPEN_SHAREDCACHE; 3185 } 3186 3187 /* Remove harmful bits from the flags parameter 3188 ** 3189 ** The SQLITE_OPEN_NOMUTEX and SQLITE_OPEN_FULLMUTEX flags were 3190 ** dealt with in the previous code block. Besides these, the only 3191 ** valid input flags for sqlite3_open_v2() are SQLITE_OPEN_READONLY, 3192 ** SQLITE_OPEN_READWRITE, SQLITE_OPEN_CREATE, SQLITE_OPEN_SHAREDCACHE, 3193 ** SQLITE_OPEN_PRIVATECACHE, SQLITE_OPEN_EXRESCODE, and some reserved 3194 ** bits. Silently mask off all other flags. 3195 */ 3196 flags &= ~( SQLITE_OPEN_DELETEONCLOSE | 3197 SQLITE_OPEN_EXCLUSIVE | 3198 SQLITE_OPEN_MAIN_DB | 3199 SQLITE_OPEN_TEMP_DB | 3200 SQLITE_OPEN_TRANSIENT_DB | 3201 SQLITE_OPEN_MAIN_JOURNAL | 3202 SQLITE_OPEN_TEMP_JOURNAL | 3203 SQLITE_OPEN_SUBJOURNAL | 3204 SQLITE_OPEN_SUPER_JOURNAL | 3205 SQLITE_OPEN_NOMUTEX | 3206 SQLITE_OPEN_FULLMUTEX | 3207 SQLITE_OPEN_WAL 3208 ); 3209 3210 /* Allocate the sqlite data structure */ 3211 db = sqlite3MallocZero( sizeof(sqlite3) ); 3212 if( db==0 ) goto opendb_out; 3213 if( isThreadsafe 3214 #ifdef SQLITE_ENABLE_MULTITHREADED_CHECKS 3215 || sqlite3GlobalConfig.bCoreMutex 3216 #endif 3217 ){ 3218 db->mutex = sqlite3MutexAlloc(SQLITE_MUTEX_RECURSIVE); 3219 if( db->mutex==0 ){ 3220 sqlite3_free(db); 3221 db = 0; 3222 goto opendb_out; 3223 } 3224 if( isThreadsafe==0 ){ 3225 sqlite3MutexWarnOnContention(db->mutex); 3226 } 3227 } 3228 sqlite3_mutex_enter(db->mutex); 3229 db->errMask = (flags & SQLITE_OPEN_EXRESCODE)!=0 ? 0xffffffff : 0xff; 3230 db->nDb = 2; 3231 db->eOpenState = SQLITE_STATE_BUSY; 3232 db->aDb = db->aDbStatic; 3233 db->lookaside.bDisable = 1; 3234 db->lookaside.sz = 0; 3235 3236 assert( sizeof(db->aLimit)==sizeof(aHardLimit) ); 3237 memcpy(db->aLimit, aHardLimit, sizeof(db->aLimit)); 3238 db->aLimit[SQLITE_LIMIT_WORKER_THREADS] = SQLITE_DEFAULT_WORKER_THREADS; 3239 db->autoCommit = 1; 3240 db->nextAutovac = -1; 3241 db->szMmap = sqlite3GlobalConfig.szMmap; 3242 db->nextPagesize = 0; 3243 db->init.azInit = sqlite3StdType; /* Any array of string ptrs will do */ 3244 #ifdef SQLITE_ENABLE_SORTER_MMAP 3245 /* Beginning with version 3.37.0, using the VFS xFetch() API to memory-map 3246 ** the temporary files used to do external sorts (see code in vdbesort.c) 3247 ** is disabled. It can still be used either by defining 3248 ** SQLITE_ENABLE_SORTER_MMAP at compile time or by using the 3249 ** SQLITE_TESTCTRL_SORTER_MMAP test-control at runtime. */ 3250 db->nMaxSorterMmap = 0x7FFFFFFF; 3251 #endif 3252 db->flags |= SQLITE_ShortColNames 3253 | SQLITE_EnableTrigger 3254 | SQLITE_EnableView 3255 | SQLITE_CacheSpill 3256 #if !defined(SQLITE_TRUSTED_SCHEMA) || SQLITE_TRUSTED_SCHEMA+0!=0 3257 | SQLITE_TrustedSchema 3258 #endif 3259 /* The SQLITE_DQS compile-time option determines the default settings 3260 ** for SQLITE_DBCONFIG_DQS_DDL and SQLITE_DBCONFIG_DQS_DML. 3261 ** 3262 ** SQLITE_DQS SQLITE_DBCONFIG_DQS_DDL SQLITE_DBCONFIG_DQS_DML 3263 ** ---------- ----------------------- ----------------------- 3264 ** undefined on on 3265 ** 3 on on 3266 ** 2 on off 3267 ** 1 off on 3268 ** 0 off off 3269 ** 3270 ** Legacy behavior is 3 (double-quoted string literals are allowed anywhere) 3271 ** and so that is the default. But developers are encouranged to use 3272 ** -DSQLITE_DQS=0 (best) or -DSQLITE_DQS=1 (second choice) if possible. 3273 */ 3274 #if !defined(SQLITE_DQS) 3275 # define SQLITE_DQS 3 3276 #endif 3277 #if (SQLITE_DQS&1)==1 3278 | SQLITE_DqsDML 3279 #endif 3280 #if (SQLITE_DQS&2)==2 3281 | SQLITE_DqsDDL 3282 #endif 3283 3284 #if !defined(SQLITE_DEFAULT_AUTOMATIC_INDEX) || SQLITE_DEFAULT_AUTOMATIC_INDEX 3285 | SQLITE_AutoIndex 3286 #endif 3287 #if SQLITE_DEFAULT_CKPTFULLFSYNC 3288 | SQLITE_CkptFullFSync 3289 #endif 3290 #if SQLITE_DEFAULT_FILE_FORMAT<4 3291 | SQLITE_LegacyFileFmt 3292 #endif 3293 #ifdef SQLITE_ENABLE_LOAD_EXTENSION 3294 | SQLITE_LoadExtension 3295 #endif 3296 #if SQLITE_DEFAULT_RECURSIVE_TRIGGERS 3297 | SQLITE_RecTriggers 3298 #endif 3299 #if defined(SQLITE_DEFAULT_FOREIGN_KEYS) && SQLITE_DEFAULT_FOREIGN_KEYS 3300 | SQLITE_ForeignKeys 3301 #endif 3302 #if defined(SQLITE_REVERSE_UNORDERED_SELECTS) 3303 | SQLITE_ReverseOrder 3304 #endif 3305 #if defined(SQLITE_ENABLE_OVERSIZE_CELL_CHECK) 3306 | SQLITE_CellSizeCk 3307 #endif 3308 #if defined(SQLITE_ENABLE_FTS3_TOKENIZER) 3309 | SQLITE_Fts3Tokenizer 3310 #endif 3311 #if defined(SQLITE_ENABLE_QPSG) 3312 | SQLITE_EnableQPSG 3313 #endif 3314 #if defined(SQLITE_DEFAULT_DEFENSIVE) 3315 | SQLITE_Defensive 3316 #endif 3317 #if defined(SQLITE_DEFAULT_LEGACY_ALTER_TABLE) 3318 | SQLITE_LegacyAlter 3319 #endif 3320 ; 3321 sqlite3HashInit(&db->aCollSeq); 3322 #ifndef SQLITE_OMIT_VIRTUALTABLE 3323 sqlite3HashInit(&db->aModule); 3324 #endif 3325 3326 /* Add the default collation sequence BINARY. BINARY works for both UTF-8 3327 ** and UTF-16, so add a version for each to avoid any unnecessary 3328 ** conversions. The only error that can occur here is a malloc() failure. 3329 ** 3330 ** EVIDENCE-OF: R-52786-44878 SQLite defines three built-in collating 3331 ** functions: 3332 */ 3333 createCollation(db, sqlite3StrBINARY, SQLITE_UTF8, 0, binCollFunc, 0); 3334 createCollation(db, sqlite3StrBINARY, SQLITE_UTF16BE, 0, binCollFunc, 0); 3335 createCollation(db, sqlite3StrBINARY, SQLITE_UTF16LE, 0, binCollFunc, 0); 3336 createCollation(db, "NOCASE", SQLITE_UTF8, 0, nocaseCollatingFunc, 0); 3337 createCollation(db, "RTRIM", SQLITE_UTF8, 0, rtrimCollFunc, 0); 3338 if( db->mallocFailed ){ 3339 goto opendb_out; 3340 } 3341 3342 /* Parse the filename/URI argument 3343 ** 3344 ** Only allow sensible combinations of bits in the flags argument. 3345 ** Throw an error if any non-sense combination is used. If we 3346 ** do not block illegal combinations here, it could trigger 3347 ** assert() statements in deeper layers. Sensible combinations 3348 ** are: 3349 ** 3350 ** 1: SQLITE_OPEN_READONLY 3351 ** 2: SQLITE_OPEN_READWRITE 3352 ** 6: SQLITE_OPEN_READWRITE | SQLITE_OPEN_CREATE 3353 */ 3354 db->openFlags = flags; 3355 assert( SQLITE_OPEN_READONLY == 0x01 ); 3356 assert( SQLITE_OPEN_READWRITE == 0x02 ); 3357 assert( SQLITE_OPEN_CREATE == 0x04 ); 3358 testcase( (1<<(flags&7))==0x02 ); /* READONLY */ 3359 testcase( (1<<(flags&7))==0x04 ); /* READWRITE */ 3360 testcase( (1<<(flags&7))==0x40 ); /* READWRITE | CREATE */ 3361 if( ((1<<(flags&7)) & 0x46)==0 ){ 3362 rc = SQLITE_MISUSE_BKPT; /* IMP: R-18321-05872 */ 3363 }else{ 3364 rc = sqlite3ParseUri(zVfs, zFilename, &flags, &db->pVfs, &zOpen, &zErrMsg); 3365 } 3366 if( rc!=SQLITE_OK ){ 3367 if( rc==SQLITE_NOMEM ) sqlite3OomFault(db); 3368 sqlite3ErrorWithMsg(db, rc, zErrMsg ? "%s" : 0, zErrMsg); 3369 sqlite3_free(zErrMsg); 3370 goto opendb_out; 3371 } 3372 3373 /* Open the backend database driver */ 3374 rc = sqlite3BtreeOpen(db->pVfs, zOpen, db, &db->aDb[0].pBt, 0, 3375 flags | SQLITE_OPEN_MAIN_DB); 3376 if( rc!=SQLITE_OK ){ 3377 if( rc==SQLITE_IOERR_NOMEM ){ 3378 rc = SQLITE_NOMEM_BKPT; 3379 } 3380 sqlite3Error(db, rc); 3381 goto opendb_out; 3382 } 3383 sqlite3BtreeEnter(db->aDb[0].pBt); 3384 db->aDb[0].pSchema = sqlite3SchemaGet(db, db->aDb[0].pBt); 3385 if( !db->mallocFailed ){ 3386 sqlite3SetTextEncoding(db, SCHEMA_ENC(db)); 3387 } 3388 sqlite3BtreeLeave(db->aDb[0].pBt); 3389 db->aDb[1].pSchema = sqlite3SchemaGet(db, 0); 3390 3391 /* The default safety_level for the main database is FULL; for the temp 3392 ** database it is OFF. This matches the pager layer defaults. 3393 */ 3394 db->aDb[0].zDbSName = "main"; 3395 db->aDb[0].safety_level = SQLITE_DEFAULT_SYNCHRONOUS+1; 3396 db->aDb[1].zDbSName = "temp"; 3397 db->aDb[1].safety_level = PAGER_SYNCHRONOUS_OFF; 3398 3399 db->eOpenState = SQLITE_STATE_OPEN; 3400 if( db->mallocFailed ){ 3401 goto opendb_out; 3402 } 3403 3404 /* Register all built-in functions, but do not attempt to read the 3405 ** database schema yet. This is delayed until the first time the database 3406 ** is accessed. 3407 */ 3408 sqlite3Error(db, SQLITE_OK); 3409 sqlite3RegisterPerConnectionBuiltinFunctions(db); 3410 rc = sqlite3_errcode(db); 3411 3412 3413 /* Load compiled-in extensions */ 3414 for(i=0; rc==SQLITE_OK && i<ArraySize(sqlite3BuiltinExtensions); i++){ 3415 rc = sqlite3BuiltinExtensions[i](db); 3416 } 3417 3418 /* Load automatic extensions - extensions that have been registered 3419 ** using the sqlite3_automatic_extension() API. 3420 */ 3421 if( rc==SQLITE_OK ){ 3422 sqlite3AutoLoadExtensions(db); 3423 rc = sqlite3_errcode(db); 3424 if( rc!=SQLITE_OK ){ 3425 goto opendb_out; 3426 } 3427 } 3428 3429 #ifdef SQLITE_ENABLE_INTERNAL_FUNCTIONS 3430 /* Testing use only!!! The -DSQLITE_ENABLE_INTERNAL_FUNCTIONS=1 compile-time 3431 ** option gives access to internal functions by default. 3432 ** Testing use only!!! */ 3433 db->mDbFlags |= DBFLAG_InternalFunc; 3434 #endif 3435 3436 /* -DSQLITE_DEFAULT_LOCKING_MODE=1 makes EXCLUSIVE the default locking 3437 ** mode. -DSQLITE_DEFAULT_LOCKING_MODE=0 make NORMAL the default locking 3438 ** mode. Doing nothing at all also makes NORMAL the default. 3439 */ 3440 #ifdef SQLITE_DEFAULT_LOCKING_MODE 3441 db->dfltLockMode = SQLITE_DEFAULT_LOCKING_MODE; 3442 sqlite3PagerLockingMode(sqlite3BtreePager(db->aDb[0].pBt), 3443 SQLITE_DEFAULT_LOCKING_MODE); 3444 #endif 3445 3446 if( rc ) sqlite3Error(db, rc); 3447 3448 /* Enable the lookaside-malloc subsystem */ 3449 setupLookaside(db, 0, sqlite3GlobalConfig.szLookaside, 3450 sqlite3GlobalConfig.nLookaside); 3451 3452 sqlite3_wal_autocheckpoint(db, SQLITE_DEFAULT_WAL_AUTOCHECKPOINT); 3453 3454 opendb_out: 3455 if( db ){ 3456 assert( db->mutex!=0 || isThreadsafe==0 3457 || sqlite3GlobalConfig.bFullMutex==0 ); 3458 sqlite3_mutex_leave(db->mutex); 3459 } 3460 rc = sqlite3_errcode(db); 3461 assert( db!=0 || (rc&0xff)==SQLITE_NOMEM ); 3462 if( (rc&0xff)==SQLITE_NOMEM ){ 3463 sqlite3_close(db); 3464 db = 0; 3465 }else if( rc!=SQLITE_OK ){ 3466 db->eOpenState = SQLITE_STATE_SICK; 3467 } 3468 *ppDb = db; 3469 #ifdef SQLITE_ENABLE_SQLLOG 3470 if( sqlite3GlobalConfig.xSqllog ){ 3471 /* Opening a db handle. Fourth parameter is passed 0. */ 3472 void *pArg = sqlite3GlobalConfig.pSqllogArg; 3473 sqlite3GlobalConfig.xSqllog(pArg, db, zFilename, 0); 3474 } 3475 #endif 3476 sqlite3_free_filename(zOpen); 3477 return rc; 3478 } 3479 3480 3481 /* 3482 ** Open a new database handle. 3483 */ 3484 int sqlite3_open( 3485 const char *zFilename, 3486 sqlite3 **ppDb 3487 ){ 3488 return openDatabase(zFilename, ppDb, 3489 SQLITE_OPEN_READWRITE | SQLITE_OPEN_CREATE, 0); 3490 } 3491 int sqlite3_open_v2( 3492 const char *filename, /* Database filename (UTF-8) */ 3493 sqlite3 **ppDb, /* OUT: SQLite db handle */ 3494 int flags, /* Flags */ 3495 const char *zVfs /* Name of VFS module to use */ 3496 ){ 3497 return openDatabase(filename, ppDb, (unsigned int)flags, zVfs); 3498 } 3499 3500 #ifndef SQLITE_OMIT_UTF16 3501 /* 3502 ** Open a new database handle. 3503 */ 3504 int sqlite3_open16( 3505 const void *zFilename, 3506 sqlite3 **ppDb 3507 ){ 3508 char const *zFilename8; /* zFilename encoded in UTF-8 instead of UTF-16 */ 3509 sqlite3_value *pVal; 3510 int rc; 3511 3512 #ifdef SQLITE_ENABLE_API_ARMOR 3513 if( ppDb==0 ) return SQLITE_MISUSE_BKPT; 3514 #endif 3515 *ppDb = 0; 3516 #ifndef SQLITE_OMIT_AUTOINIT 3517 rc = sqlite3_initialize(); 3518 if( rc ) return rc; 3519 #endif 3520 if( zFilename==0 ) zFilename = "\000\000"; 3521 pVal = sqlite3ValueNew(0); 3522 sqlite3ValueSetStr(pVal, -1, zFilename, SQLITE_UTF16NATIVE, SQLITE_STATIC); 3523 zFilename8 = sqlite3ValueText(pVal, SQLITE_UTF8); 3524 if( zFilename8 ){ 3525 rc = openDatabase(zFilename8, ppDb, 3526 SQLITE_OPEN_READWRITE | SQLITE_OPEN_CREATE, 0); 3527 assert( *ppDb || rc==SQLITE_NOMEM ); 3528 if( rc==SQLITE_OK && !DbHasProperty(*ppDb, 0, DB_SchemaLoaded) ){ 3529 SCHEMA_ENC(*ppDb) = ENC(*ppDb) = SQLITE_UTF16NATIVE; 3530 } 3531 }else{ 3532 rc = SQLITE_NOMEM_BKPT; 3533 } 3534 sqlite3ValueFree(pVal); 3535 3536 return rc & 0xff; 3537 } 3538 #endif /* SQLITE_OMIT_UTF16 */ 3539 3540 /* 3541 ** Register a new collation sequence with the database handle db. 3542 */ 3543 int sqlite3_create_collation( 3544 sqlite3* db, 3545 const char *zName, 3546 int enc, 3547 void* pCtx, 3548 int(*xCompare)(void*,int,const void*,int,const void*) 3549 ){ 3550 return sqlite3_create_collation_v2(db, zName, enc, pCtx, xCompare, 0); 3551 } 3552 3553 /* 3554 ** Register a new collation sequence with the database handle db. 3555 */ 3556 int sqlite3_create_collation_v2( 3557 sqlite3* db, 3558 const char *zName, 3559 int enc, 3560 void* pCtx, 3561 int(*xCompare)(void*,int,const void*,int,const void*), 3562 void(*xDel)(void*) 3563 ){ 3564 int rc; 3565 3566 #ifdef SQLITE_ENABLE_API_ARMOR 3567 if( !sqlite3SafetyCheckOk(db) || zName==0 ) return SQLITE_MISUSE_BKPT; 3568 #endif 3569 sqlite3_mutex_enter(db->mutex); 3570 assert( !db->mallocFailed ); 3571 rc = createCollation(db, zName, (u8)enc, pCtx, xCompare, xDel); 3572 rc = sqlite3ApiExit(db, rc); 3573 sqlite3_mutex_leave(db->mutex); 3574 return rc; 3575 } 3576 3577 #ifndef SQLITE_OMIT_UTF16 3578 /* 3579 ** Register a new collation sequence with the database handle db. 3580 */ 3581 int sqlite3_create_collation16( 3582 sqlite3* db, 3583 const void *zName, 3584 int enc, 3585 void* pCtx, 3586 int(*xCompare)(void*,int,const void*,int,const void*) 3587 ){ 3588 int rc = SQLITE_OK; 3589 char *zName8; 3590 3591 #ifdef SQLITE_ENABLE_API_ARMOR 3592 if( !sqlite3SafetyCheckOk(db) || zName==0 ) return SQLITE_MISUSE_BKPT; 3593 #endif 3594 sqlite3_mutex_enter(db->mutex); 3595 assert( !db->mallocFailed ); 3596 zName8 = sqlite3Utf16to8(db, zName, -1, SQLITE_UTF16NATIVE); 3597 if( zName8 ){ 3598 rc = createCollation(db, zName8, (u8)enc, pCtx, xCompare, 0); 3599 sqlite3DbFree(db, zName8); 3600 } 3601 rc = sqlite3ApiExit(db, rc); 3602 sqlite3_mutex_leave(db->mutex); 3603 return rc; 3604 } 3605 #endif /* SQLITE_OMIT_UTF16 */ 3606 3607 /* 3608 ** Register a collation sequence factory callback with the database handle 3609 ** db. Replace any previously installed collation sequence factory. 3610 */ 3611 int sqlite3_collation_needed( 3612 sqlite3 *db, 3613 void *pCollNeededArg, 3614 void(*xCollNeeded)(void*,sqlite3*,int eTextRep,const char*) 3615 ){ 3616 #ifdef SQLITE_ENABLE_API_ARMOR 3617 if( !sqlite3SafetyCheckOk(db) ) return SQLITE_MISUSE_BKPT; 3618 #endif 3619 sqlite3_mutex_enter(db->mutex); 3620 db->xCollNeeded = xCollNeeded; 3621 db->xCollNeeded16 = 0; 3622 db->pCollNeededArg = pCollNeededArg; 3623 sqlite3_mutex_leave(db->mutex); 3624 return SQLITE_OK; 3625 } 3626 3627 #ifndef SQLITE_OMIT_UTF16 3628 /* 3629 ** Register a collation sequence factory callback with the database handle 3630 ** db. Replace any previously installed collation sequence factory. 3631 */ 3632 int sqlite3_collation_needed16( 3633 sqlite3 *db, 3634 void *pCollNeededArg, 3635 void(*xCollNeeded16)(void*,sqlite3*,int eTextRep,const void*) 3636 ){ 3637 #ifdef SQLITE_ENABLE_API_ARMOR 3638 if( !sqlite3SafetyCheckOk(db) ) return SQLITE_MISUSE_BKPT; 3639 #endif 3640 sqlite3_mutex_enter(db->mutex); 3641 db->xCollNeeded = 0; 3642 db->xCollNeeded16 = xCollNeeded16; 3643 db->pCollNeededArg = pCollNeededArg; 3644 sqlite3_mutex_leave(db->mutex); 3645 return SQLITE_OK; 3646 } 3647 #endif /* SQLITE_OMIT_UTF16 */ 3648 3649 #ifndef SQLITE_OMIT_DEPRECATED 3650 /* 3651 ** This function is now an anachronism. It used to be used to recover from a 3652 ** malloc() failure, but SQLite now does this automatically. 3653 */ 3654 int sqlite3_global_recover(void){ 3655 return SQLITE_OK; 3656 } 3657 #endif 3658 3659 /* 3660 ** Test to see whether or not the database connection is in autocommit 3661 ** mode. Return TRUE if it is and FALSE if not. Autocommit mode is on 3662 ** by default. Autocommit is disabled by a BEGIN statement and reenabled 3663 ** by the next COMMIT or ROLLBACK. 3664 */ 3665 int sqlite3_get_autocommit(sqlite3 *db){ 3666 #ifdef SQLITE_ENABLE_API_ARMOR 3667 if( !sqlite3SafetyCheckOk(db) ){ 3668 (void)SQLITE_MISUSE_BKPT; 3669 return 0; 3670 } 3671 #endif 3672 return db->autoCommit; 3673 } 3674 3675 /* 3676 ** The following routines are substitutes for constants SQLITE_CORRUPT, 3677 ** SQLITE_MISUSE, SQLITE_CANTOPEN, SQLITE_NOMEM and possibly other error 3678 ** constants. They serve two purposes: 3679 ** 3680 ** 1. Serve as a convenient place to set a breakpoint in a debugger 3681 ** to detect when version error conditions occurs. 3682 ** 3683 ** 2. Invoke sqlite3_log() to provide the source code location where 3684 ** a low-level error is first detected. 3685 */ 3686 int sqlite3ReportError(int iErr, int lineno, const char *zType){ 3687 sqlite3_log(iErr, "%s at line %d of [%.10s]", 3688 zType, lineno, 20+sqlite3_sourceid()); 3689 return iErr; 3690 } 3691 int sqlite3CorruptError(int lineno){ 3692 testcase( sqlite3GlobalConfig.xLog!=0 ); 3693 return sqlite3ReportError(SQLITE_CORRUPT, lineno, "database corruption"); 3694 } 3695 int sqlite3MisuseError(int lineno){ 3696 testcase( sqlite3GlobalConfig.xLog!=0 ); 3697 return sqlite3ReportError(SQLITE_MISUSE, lineno, "misuse"); 3698 } 3699 int sqlite3CantopenError(int lineno){ 3700 testcase( sqlite3GlobalConfig.xLog!=0 ); 3701 return sqlite3ReportError(SQLITE_CANTOPEN, lineno, "cannot open file"); 3702 } 3703 #if defined(SQLITE_DEBUG) || defined(SQLITE_ENABLE_CORRUPT_PGNO) 3704 int sqlite3CorruptPgnoError(int lineno, Pgno pgno){ 3705 char zMsg[100]; 3706 sqlite3_snprintf(sizeof(zMsg), zMsg, "database corruption page %d", pgno); 3707 testcase( sqlite3GlobalConfig.xLog!=0 ); 3708 return sqlite3ReportError(SQLITE_CORRUPT, lineno, zMsg); 3709 } 3710 #endif 3711 #ifdef SQLITE_DEBUG 3712 int sqlite3NomemError(int lineno){ 3713 testcase( sqlite3GlobalConfig.xLog!=0 ); 3714 return sqlite3ReportError(SQLITE_NOMEM, lineno, "OOM"); 3715 } 3716 int sqlite3IoerrnomemError(int lineno){ 3717 testcase( sqlite3GlobalConfig.xLog!=0 ); 3718 return sqlite3ReportError(SQLITE_IOERR_NOMEM, lineno, "I/O OOM error"); 3719 } 3720 #endif 3721 3722 #ifndef SQLITE_OMIT_DEPRECATED 3723 /* 3724 ** This is a convenience routine that makes sure that all thread-specific 3725 ** data for this thread has been deallocated. 3726 ** 3727 ** SQLite no longer uses thread-specific data so this routine is now a 3728 ** no-op. It is retained for historical compatibility. 3729 */ 3730 void sqlite3_thread_cleanup(void){ 3731 } 3732 #endif 3733 3734 /* 3735 ** Return meta information about a specific column of a database table. 3736 ** See comment in sqlite3.h (sqlite.h.in) for details. 3737 */ 3738 int sqlite3_table_column_metadata( 3739 sqlite3 *db, /* Connection handle */ 3740 const char *zDbName, /* Database name or NULL */ 3741 const char *zTableName, /* Table name */ 3742 const char *zColumnName, /* Column name */ 3743 char const **pzDataType, /* OUTPUT: Declared data type */ 3744 char const **pzCollSeq, /* OUTPUT: Collation sequence name */ 3745 int *pNotNull, /* OUTPUT: True if NOT NULL constraint exists */ 3746 int *pPrimaryKey, /* OUTPUT: True if column part of PK */ 3747 int *pAutoinc /* OUTPUT: True if column is auto-increment */ 3748 ){ 3749 int rc; 3750 char *zErrMsg = 0; 3751 Table *pTab = 0; 3752 Column *pCol = 0; 3753 int iCol = 0; 3754 char const *zDataType = 0; 3755 char const *zCollSeq = 0; 3756 int notnull = 0; 3757 int primarykey = 0; 3758 int autoinc = 0; 3759 3760 3761 #ifdef SQLITE_ENABLE_API_ARMOR 3762 if( !sqlite3SafetyCheckOk(db) || zTableName==0 ){ 3763 return SQLITE_MISUSE_BKPT; 3764 } 3765 #endif 3766 3767 /* Ensure the database schema has been loaded */ 3768 sqlite3_mutex_enter(db->mutex); 3769 sqlite3BtreeEnterAll(db); 3770 rc = sqlite3Init(db, &zErrMsg); 3771 if( SQLITE_OK!=rc ){ 3772 goto error_out; 3773 } 3774 3775 /* Locate the table in question */ 3776 pTab = sqlite3FindTable(db, zTableName, zDbName); 3777 if( !pTab || IsView(pTab) ){ 3778 pTab = 0; 3779 goto error_out; 3780 } 3781 3782 /* Find the column for which info is requested */ 3783 if( zColumnName==0 ){ 3784 /* Query for existance of table only */ 3785 }else{ 3786 for(iCol=0; iCol<pTab->nCol; iCol++){ 3787 pCol = &pTab->aCol[iCol]; 3788 if( 0==sqlite3StrICmp(pCol->zCnName, zColumnName) ){ 3789 break; 3790 } 3791 } 3792 if( iCol==pTab->nCol ){ 3793 if( HasRowid(pTab) && sqlite3IsRowid(zColumnName) ){ 3794 iCol = pTab->iPKey; 3795 pCol = iCol>=0 ? &pTab->aCol[iCol] : 0; 3796 }else{ 3797 pTab = 0; 3798 goto error_out; 3799 } 3800 } 3801 } 3802 3803 /* The following block stores the meta information that will be returned 3804 ** to the caller in local variables zDataType, zCollSeq, notnull, primarykey 3805 ** and autoinc. At this point there are two possibilities: 3806 ** 3807 ** 1. The specified column name was rowid", "oid" or "_rowid_" 3808 ** and there is no explicitly declared IPK column. 3809 ** 3810 ** 2. The table is not a view and the column name identified an 3811 ** explicitly declared column. Copy meta information from *pCol. 3812 */ 3813 if( pCol ){ 3814 zDataType = sqlite3ColumnType(pCol,0); 3815 zCollSeq = sqlite3ColumnColl(pCol); 3816 notnull = pCol->notNull!=0; 3817 primarykey = (pCol->colFlags & COLFLAG_PRIMKEY)!=0; 3818 autoinc = pTab->iPKey==iCol && (pTab->tabFlags & TF_Autoincrement)!=0; 3819 }else{ 3820 zDataType = "INTEGER"; 3821 primarykey = 1; 3822 } 3823 if( !zCollSeq ){ 3824 zCollSeq = sqlite3StrBINARY; 3825 } 3826 3827 error_out: 3828 sqlite3BtreeLeaveAll(db); 3829 3830 /* Whether the function call succeeded or failed, set the output parameters 3831 ** to whatever their local counterparts contain. If an error did occur, 3832 ** this has the effect of zeroing all output parameters. 3833 */ 3834 if( pzDataType ) *pzDataType = zDataType; 3835 if( pzCollSeq ) *pzCollSeq = zCollSeq; 3836 if( pNotNull ) *pNotNull = notnull; 3837 if( pPrimaryKey ) *pPrimaryKey = primarykey; 3838 if( pAutoinc ) *pAutoinc = autoinc; 3839 3840 if( SQLITE_OK==rc && !pTab ){ 3841 sqlite3DbFree(db, zErrMsg); 3842 zErrMsg = sqlite3MPrintf(db, "no such table column: %s.%s", zTableName, 3843 zColumnName); 3844 rc = SQLITE_ERROR; 3845 } 3846 sqlite3ErrorWithMsg(db, rc, (zErrMsg?"%s":0), zErrMsg); 3847 sqlite3DbFree(db, zErrMsg); 3848 rc = sqlite3ApiExit(db, rc); 3849 sqlite3_mutex_leave(db->mutex); 3850 return rc; 3851 } 3852 3853 /* 3854 ** Sleep for a little while. Return the amount of time slept. 3855 */ 3856 int sqlite3_sleep(int ms){ 3857 sqlite3_vfs *pVfs; 3858 int rc; 3859 pVfs = sqlite3_vfs_find(0); 3860 if( pVfs==0 ) return 0; 3861 3862 /* This function works in milliseconds, but the underlying OsSleep() 3863 ** API uses microseconds. Hence the 1000's. 3864 */ 3865 rc = (sqlite3OsSleep(pVfs, 1000*ms)/1000); 3866 return rc; 3867 } 3868 3869 /* 3870 ** Enable or disable the extended result codes. 3871 */ 3872 int sqlite3_extended_result_codes(sqlite3 *db, int onoff){ 3873 #ifdef SQLITE_ENABLE_API_ARMOR 3874 if( !sqlite3SafetyCheckOk(db) ) return SQLITE_MISUSE_BKPT; 3875 #endif 3876 sqlite3_mutex_enter(db->mutex); 3877 db->errMask = onoff ? 0xffffffff : 0xff; 3878 sqlite3_mutex_leave(db->mutex); 3879 return SQLITE_OK; 3880 } 3881 3882 /* 3883 ** Invoke the xFileControl method on a particular database. 3884 */ 3885 int sqlite3_file_control(sqlite3 *db, const char *zDbName, int op, void *pArg){ 3886 int rc = SQLITE_ERROR; 3887 Btree *pBtree; 3888 3889 #ifdef SQLITE_ENABLE_API_ARMOR 3890 if( !sqlite3SafetyCheckOk(db) ) return SQLITE_MISUSE_BKPT; 3891 #endif 3892 sqlite3_mutex_enter(db->mutex); 3893 pBtree = sqlite3DbNameToBtree(db, zDbName); 3894 if( pBtree ){ 3895 Pager *pPager; 3896 sqlite3_file *fd; 3897 sqlite3BtreeEnter(pBtree); 3898 pPager = sqlite3BtreePager(pBtree); 3899 assert( pPager!=0 ); 3900 fd = sqlite3PagerFile(pPager); 3901 assert( fd!=0 ); 3902 if( op==SQLITE_FCNTL_FILE_POINTER ){ 3903 *(sqlite3_file**)pArg = fd; 3904 rc = SQLITE_OK; 3905 }else if( op==SQLITE_FCNTL_VFS_POINTER ){ 3906 *(sqlite3_vfs**)pArg = sqlite3PagerVfs(pPager); 3907 rc = SQLITE_OK; 3908 }else if( op==SQLITE_FCNTL_JOURNAL_POINTER ){ 3909 *(sqlite3_file**)pArg = sqlite3PagerJrnlFile(pPager); 3910 rc = SQLITE_OK; 3911 }else if( op==SQLITE_FCNTL_DATA_VERSION ){ 3912 *(unsigned int*)pArg = sqlite3PagerDataVersion(pPager); 3913 rc = SQLITE_OK; 3914 }else if( op==SQLITE_FCNTL_RESERVE_BYTES ){ 3915 int iNew = *(int*)pArg; 3916 *(int*)pArg = sqlite3BtreeGetRequestedReserve(pBtree); 3917 if( iNew>=0 && iNew<=255 ){ 3918 sqlite3BtreeSetPageSize(pBtree, 0, iNew, 0); 3919 } 3920 rc = SQLITE_OK; 3921 }else{ 3922 int nSave = db->busyHandler.nBusy; 3923 rc = sqlite3OsFileControl(fd, op, pArg); 3924 db->busyHandler.nBusy = nSave; 3925 } 3926 sqlite3BtreeLeave(pBtree); 3927 } 3928 sqlite3_mutex_leave(db->mutex); 3929 return rc; 3930 } 3931 3932 /* 3933 ** Interface to the testing logic. 3934 */ 3935 int sqlite3_test_control(int op, ...){ 3936 int rc = 0; 3937 #ifdef SQLITE_UNTESTABLE 3938 UNUSED_PARAMETER(op); 3939 #else 3940 va_list ap; 3941 va_start(ap, op); 3942 switch( op ){ 3943 3944 /* 3945 ** Save the current state of the PRNG. 3946 */ 3947 case SQLITE_TESTCTRL_PRNG_SAVE: { 3948 sqlite3PrngSaveState(); 3949 break; 3950 } 3951 3952 /* 3953 ** Restore the state of the PRNG to the last state saved using 3954 ** PRNG_SAVE. If PRNG_SAVE has never before been called, then 3955 ** this verb acts like PRNG_RESET. 3956 */ 3957 case SQLITE_TESTCTRL_PRNG_RESTORE: { 3958 sqlite3PrngRestoreState(); 3959 break; 3960 } 3961 3962 /* sqlite3_test_control(SQLITE_TESTCTRL_PRNG_SEED, int x, sqlite3 *db); 3963 ** 3964 ** Control the seed for the pseudo-random number generator (PRNG) that 3965 ** is built into SQLite. Cases: 3966 ** 3967 ** x!=0 && db!=0 Seed the PRNG to the current value of the 3968 ** schema cookie in the main database for db, or 3969 ** x if the schema cookie is zero. This case 3970 ** is convenient to use with database fuzzers 3971 ** as it allows the fuzzer some control over the 3972 ** the PRNG seed. 3973 ** 3974 ** x!=0 && db==0 Seed the PRNG to the value of x. 3975 ** 3976 ** x==0 && db==0 Revert to default behavior of using the 3977 ** xRandomness method on the primary VFS. 3978 ** 3979 ** This test-control also resets the PRNG so that the new seed will 3980 ** be used for the next call to sqlite3_randomness(). 3981 */ 3982 #ifndef SQLITE_OMIT_WSD 3983 case SQLITE_TESTCTRL_PRNG_SEED: { 3984 int x = va_arg(ap, int); 3985 int y; 3986 sqlite3 *db = va_arg(ap, sqlite3*); 3987 assert( db==0 || db->aDb[0].pSchema!=0 ); 3988 if( db && (y = db->aDb[0].pSchema->schema_cookie)!=0 ){ x = y; } 3989 sqlite3Config.iPrngSeed = x; 3990 sqlite3_randomness(0,0); 3991 break; 3992 } 3993 #endif 3994 3995 /* 3996 ** sqlite3_test_control(BITVEC_TEST, size, program) 3997 ** 3998 ** Run a test against a Bitvec object of size. The program argument 3999 ** is an array of integers that defines the test. Return -1 on a 4000 ** memory allocation error, 0 on success, or non-zero for an error. 4001 ** See the sqlite3BitvecBuiltinTest() for additional information. 4002 */ 4003 case SQLITE_TESTCTRL_BITVEC_TEST: { 4004 int sz = va_arg(ap, int); 4005 int *aProg = va_arg(ap, int*); 4006 rc = sqlite3BitvecBuiltinTest(sz, aProg); 4007 break; 4008 } 4009 4010 /* 4011 ** sqlite3_test_control(FAULT_INSTALL, xCallback) 4012 ** 4013 ** Arrange to invoke xCallback() whenever sqlite3FaultSim() is called, 4014 ** if xCallback is not NULL. 4015 ** 4016 ** As a test of the fault simulator mechanism itself, sqlite3FaultSim(0) 4017 ** is called immediately after installing the new callback and the return 4018 ** value from sqlite3FaultSim(0) becomes the return from 4019 ** sqlite3_test_control(). 4020 */ 4021 case SQLITE_TESTCTRL_FAULT_INSTALL: { 4022 /* MSVC is picky about pulling func ptrs from va lists. 4023 ** http://support.microsoft.com/kb/47961 4024 ** sqlite3GlobalConfig.xTestCallback = va_arg(ap, int(*)(int)); 4025 */ 4026 typedef int(*TESTCALLBACKFUNC_t)(int); 4027 sqlite3GlobalConfig.xTestCallback = va_arg(ap, TESTCALLBACKFUNC_t); 4028 rc = sqlite3FaultSim(0); 4029 break; 4030 } 4031 4032 /* 4033 ** sqlite3_test_control(BENIGN_MALLOC_HOOKS, xBegin, xEnd) 4034 ** 4035 ** Register hooks to call to indicate which malloc() failures 4036 ** are benign. 4037 */ 4038 case SQLITE_TESTCTRL_BENIGN_MALLOC_HOOKS: { 4039 typedef void (*void_function)(void); 4040 void_function xBenignBegin; 4041 void_function xBenignEnd; 4042 xBenignBegin = va_arg(ap, void_function); 4043 xBenignEnd = va_arg(ap, void_function); 4044 sqlite3BenignMallocHooks(xBenignBegin, xBenignEnd); 4045 break; 4046 } 4047 4048 /* 4049 ** sqlite3_test_control(SQLITE_TESTCTRL_PENDING_BYTE, unsigned int X) 4050 ** 4051 ** Set the PENDING byte to the value in the argument, if X>0. 4052 ** Make no changes if X==0. Return the value of the pending byte 4053 ** as it existing before this routine was called. 4054 ** 4055 ** IMPORTANT: Changing the PENDING byte from 0x40000000 results in 4056 ** an incompatible database file format. Changing the PENDING byte 4057 ** while any database connection is open results in undefined and 4058 ** deleterious behavior. 4059 */ 4060 case SQLITE_TESTCTRL_PENDING_BYTE: { 4061 rc = PENDING_BYTE; 4062 #ifndef SQLITE_OMIT_WSD 4063 { 4064 unsigned int newVal = va_arg(ap, unsigned int); 4065 if( newVal ) sqlite3PendingByte = newVal; 4066 } 4067 #endif 4068 break; 4069 } 4070 4071 /* 4072 ** sqlite3_test_control(SQLITE_TESTCTRL_ASSERT, int X) 4073 ** 4074 ** This action provides a run-time test to see whether or not 4075 ** assert() was enabled at compile-time. If X is true and assert() 4076 ** is enabled, then the return value is true. If X is true and 4077 ** assert() is disabled, then the return value is zero. If X is 4078 ** false and assert() is enabled, then the assertion fires and the 4079 ** process aborts. If X is false and assert() is disabled, then the 4080 ** return value is zero. 4081 */ 4082 case SQLITE_TESTCTRL_ASSERT: { 4083 volatile int x = 0; 4084 assert( /*side-effects-ok*/ (x = va_arg(ap,int))!=0 ); 4085 rc = x; 4086 break; 4087 } 4088 4089 4090 /* 4091 ** sqlite3_test_control(SQLITE_TESTCTRL_ALWAYS, int X) 4092 ** 4093 ** This action provides a run-time test to see how the ALWAYS and 4094 ** NEVER macros were defined at compile-time. 4095 ** 4096 ** The return value is ALWAYS(X) if X is true, or 0 if X is false. 4097 ** 4098 ** The recommended test is X==2. If the return value is 2, that means 4099 ** ALWAYS() and NEVER() are both no-op pass-through macros, which is the 4100 ** default setting. If the return value is 1, then ALWAYS() is either 4101 ** hard-coded to true or else it asserts if its argument is false. 4102 ** The first behavior (hard-coded to true) is the case if 4103 ** SQLITE_TESTCTRL_ASSERT shows that assert() is disabled and the second 4104 ** behavior (assert if the argument to ALWAYS() is false) is the case if 4105 ** SQLITE_TESTCTRL_ASSERT shows that assert() is enabled. 4106 ** 4107 ** The run-time test procedure might look something like this: 4108 ** 4109 ** if( sqlite3_test_control(SQLITE_TESTCTRL_ALWAYS, 2)==2 ){ 4110 ** // ALWAYS() and NEVER() are no-op pass-through macros 4111 ** }else if( sqlite3_test_control(SQLITE_TESTCTRL_ASSERT, 1) ){ 4112 ** // ALWAYS(x) asserts that x is true. NEVER(x) asserts x is false. 4113 ** }else{ 4114 ** // ALWAYS(x) is a constant 1. NEVER(x) is a constant 0. 4115 ** } 4116 */ 4117 case SQLITE_TESTCTRL_ALWAYS: { 4118 int x = va_arg(ap,int); 4119 rc = x ? ALWAYS(x) : 0; 4120 break; 4121 } 4122 4123 /* 4124 ** sqlite3_test_control(SQLITE_TESTCTRL_BYTEORDER); 4125 ** 4126 ** The integer returned reveals the byte-order of the computer on which 4127 ** SQLite is running: 4128 ** 4129 ** 1 big-endian, determined at run-time 4130 ** 10 little-endian, determined at run-time 4131 ** 432101 big-endian, determined at compile-time 4132 ** 123410 little-endian, determined at compile-time 4133 */ 4134 case SQLITE_TESTCTRL_BYTEORDER: { 4135 rc = SQLITE_BYTEORDER*100 + SQLITE_LITTLEENDIAN*10 + SQLITE_BIGENDIAN; 4136 break; 4137 } 4138 4139 /* sqlite3_test_control(SQLITE_TESTCTRL_OPTIMIZATIONS, sqlite3 *db, int N) 4140 ** 4141 ** Enable or disable various optimizations for testing purposes. The 4142 ** argument N is a bitmask of optimizations to be disabled. For normal 4143 ** operation N should be 0. The idea is that a test program (like the 4144 ** SQL Logic Test or SLT test module) can run the same SQL multiple times 4145 ** with various optimizations disabled to verify that the same answer 4146 ** is obtained in every case. 4147 */ 4148 case SQLITE_TESTCTRL_OPTIMIZATIONS: { 4149 sqlite3 *db = va_arg(ap, sqlite3*); 4150 db->dbOptFlags = va_arg(ap, u32); 4151 break; 4152 } 4153 4154 /* sqlite3_test_control(SQLITE_TESTCTRL_LOCALTIME_FAULT, int onoff); 4155 ** 4156 ** If parameter onoff is non-zero, subsequent calls to localtime() 4157 ** and its variants fail. If onoff is zero, undo this setting. 4158 */ 4159 case SQLITE_TESTCTRL_LOCALTIME_FAULT: { 4160 sqlite3GlobalConfig.bLocaltimeFault = va_arg(ap, int); 4161 break; 4162 } 4163 4164 /* sqlite3_test_control(SQLITE_TESTCTRL_INTERNAL_FUNCTIONS, sqlite3*); 4165 ** 4166 ** Toggle the ability to use internal functions on or off for 4167 ** the database connection given in the argument. 4168 */ 4169 case SQLITE_TESTCTRL_INTERNAL_FUNCTIONS: { 4170 sqlite3 *db = va_arg(ap, sqlite3*); 4171 db->mDbFlags ^= DBFLAG_InternalFunc; 4172 break; 4173 } 4174 4175 /* sqlite3_test_control(SQLITE_TESTCTRL_NEVER_CORRUPT, int); 4176 ** 4177 ** Set or clear a flag that indicates that the database file is always well- 4178 ** formed and never corrupt. This flag is clear by default, indicating that 4179 ** database files might have arbitrary corruption. Setting the flag during 4180 ** testing causes certain assert() statements in the code to be activated 4181 ** that demonstrat invariants on well-formed database files. 4182 */ 4183 case SQLITE_TESTCTRL_NEVER_CORRUPT: { 4184 sqlite3GlobalConfig.neverCorrupt = va_arg(ap, int); 4185 break; 4186 } 4187 4188 /* sqlite3_test_control(SQLITE_TESTCTRL_EXTRA_SCHEMA_CHECKS, int); 4189 ** 4190 ** Set or clear a flag that causes SQLite to verify that type, name, 4191 ** and tbl_name fields of the sqlite_schema table. This is normally 4192 ** on, but it is sometimes useful to turn it off for testing. 4193 ** 4194 ** 2020-07-22: Disabling EXTRA_SCHEMA_CHECKS also disables the 4195 ** verification of rootpage numbers when parsing the schema. This 4196 ** is useful to make it easier to reach strange internal error states 4197 ** during testing. The EXTRA_SCHEMA_CHECKS setting is always enabled 4198 ** in production. 4199 */ 4200 case SQLITE_TESTCTRL_EXTRA_SCHEMA_CHECKS: { 4201 sqlite3GlobalConfig.bExtraSchemaChecks = va_arg(ap, int); 4202 break; 4203 } 4204 4205 /* Set the threshold at which OP_Once counters reset back to zero. 4206 ** By default this is 0x7ffffffe (over 2 billion), but that value is 4207 ** too big to test in a reasonable amount of time, so this control is 4208 ** provided to set a small and easily reachable reset value. 4209 */ 4210 case SQLITE_TESTCTRL_ONCE_RESET_THRESHOLD: { 4211 sqlite3GlobalConfig.iOnceResetThreshold = va_arg(ap, int); 4212 break; 4213 } 4214 4215 /* sqlite3_test_control(SQLITE_TESTCTRL_VDBE_COVERAGE, xCallback, ptr); 4216 ** 4217 ** Set the VDBE coverage callback function to xCallback with context 4218 ** pointer ptr. 4219 */ 4220 case SQLITE_TESTCTRL_VDBE_COVERAGE: { 4221 #ifdef SQLITE_VDBE_COVERAGE 4222 typedef void (*branch_callback)(void*,unsigned int, 4223 unsigned char,unsigned char); 4224 sqlite3GlobalConfig.xVdbeBranch = va_arg(ap,branch_callback); 4225 sqlite3GlobalConfig.pVdbeBranchArg = va_arg(ap,void*); 4226 #endif 4227 break; 4228 } 4229 4230 /* sqlite3_test_control(SQLITE_TESTCTRL_SORTER_MMAP, db, nMax); */ 4231 case SQLITE_TESTCTRL_SORTER_MMAP: { 4232 sqlite3 *db = va_arg(ap, sqlite3*); 4233 db->nMaxSorterMmap = va_arg(ap, int); 4234 break; 4235 } 4236 4237 /* sqlite3_test_control(SQLITE_TESTCTRL_ISINIT); 4238 ** 4239 ** Return SQLITE_OK if SQLite has been initialized and SQLITE_ERROR if 4240 ** not. 4241 */ 4242 case SQLITE_TESTCTRL_ISINIT: { 4243 if( sqlite3GlobalConfig.isInit==0 ) rc = SQLITE_ERROR; 4244 break; 4245 } 4246 4247 /* sqlite3_test_control(SQLITE_TESTCTRL_IMPOSTER, db, dbName, onOff, tnum); 4248 ** 4249 ** This test control is used to create imposter tables. "db" is a pointer 4250 ** to the database connection. dbName is the database name (ex: "main" or 4251 ** "temp") which will receive the imposter. "onOff" turns imposter mode on 4252 ** or off. "tnum" is the root page of the b-tree to which the imposter 4253 ** table should connect. 4254 ** 4255 ** Enable imposter mode only when the schema has already been parsed. Then 4256 ** run a single CREATE TABLE statement to construct the imposter table in 4257 ** the parsed schema. Then turn imposter mode back off again. 4258 ** 4259 ** If onOff==0 and tnum>0 then reset the schema for all databases, causing 4260 ** the schema to be reparsed the next time it is needed. This has the 4261 ** effect of erasing all imposter tables. 4262 */ 4263 case SQLITE_TESTCTRL_IMPOSTER: { 4264 sqlite3 *db = va_arg(ap, sqlite3*); 4265 int iDb; 4266 sqlite3_mutex_enter(db->mutex); 4267 iDb = sqlite3FindDbName(db, va_arg(ap,const char*)); 4268 if( iDb>=0 ){ 4269 db->init.iDb = iDb; 4270 db->init.busy = db->init.imposterTable = va_arg(ap,int); 4271 db->init.newTnum = va_arg(ap,int); 4272 if( db->init.busy==0 && db->init.newTnum>0 ){ 4273 sqlite3ResetAllSchemasOfConnection(db); 4274 } 4275 } 4276 sqlite3_mutex_leave(db->mutex); 4277 break; 4278 } 4279 4280 #if defined(YYCOVERAGE) 4281 /* sqlite3_test_control(SQLITE_TESTCTRL_PARSER_COVERAGE, FILE *out) 4282 ** 4283 ** This test control (only available when SQLite is compiled with 4284 ** -DYYCOVERAGE) writes a report onto "out" that shows all 4285 ** state/lookahead combinations in the parser state machine 4286 ** which are never exercised. If any state is missed, make the 4287 ** return code SQLITE_ERROR. 4288 */ 4289 case SQLITE_TESTCTRL_PARSER_COVERAGE: { 4290 FILE *out = va_arg(ap, FILE*); 4291 if( sqlite3ParserCoverage(out) ) rc = SQLITE_ERROR; 4292 break; 4293 } 4294 #endif /* defined(YYCOVERAGE) */ 4295 4296 /* sqlite3_test_control(SQLITE_TESTCTRL_RESULT_INTREAL, sqlite3_context*); 4297 ** 4298 ** This test-control causes the most recent sqlite3_result_int64() value 4299 ** to be interpreted as a MEM_IntReal instead of as an MEM_Int. Normally, 4300 ** MEM_IntReal values only arise during an INSERT operation of integer 4301 ** values into a REAL column, so they can be challenging to test. This 4302 ** test-control enables us to write an intreal() SQL function that can 4303 ** inject an intreal() value at arbitrary places in an SQL statement, 4304 ** for testing purposes. 4305 */ 4306 case SQLITE_TESTCTRL_RESULT_INTREAL: { 4307 sqlite3_context *pCtx = va_arg(ap, sqlite3_context*); 4308 sqlite3ResultIntReal(pCtx); 4309 break; 4310 } 4311 4312 /* sqlite3_test_control(SQLITE_TESTCTRL_SEEK_COUNT, 4313 ** sqlite3 *db, // Database connection 4314 ** u64 *pnSeek // Write seek count here 4315 ** ); 4316 ** 4317 ** This test-control queries the seek-counter on the "main" database 4318 ** file. The seek-counter is written into *pnSeek and is then reset. 4319 ** The seek-count is only available if compiled with SQLITE_DEBUG. 4320 */ 4321 case SQLITE_TESTCTRL_SEEK_COUNT: { 4322 sqlite3 *db = va_arg(ap, sqlite3*); 4323 u64 *pn = va_arg(ap, sqlite3_uint64*); 4324 *pn = sqlite3BtreeSeekCount(db->aDb->pBt); 4325 (void)db; /* Silence harmless unused variable warning */ 4326 break; 4327 } 4328 4329 /* sqlite3_test_control(SQLITE_TESTCTRL_TRACEFLAGS, op, ptr) 4330 ** 4331 ** "ptr" is a pointer to a u32. 4332 ** 4333 ** op==0 Store the current sqlite3SelectTrace in *ptr 4334 ** op==1 Set sqlite3SelectTrace to the value *ptr 4335 ** op==3 Store the current sqlite3WhereTrace in *ptr 4336 ** op==3 Set sqlite3WhereTrace to the value *ptr 4337 */ 4338 case SQLITE_TESTCTRL_TRACEFLAGS: { 4339 int opTrace = va_arg(ap, int); 4340 u32 *ptr = va_arg(ap, u32*); 4341 switch( opTrace ){ 4342 case 0: *ptr = sqlite3SelectTrace; break; 4343 case 1: sqlite3SelectTrace = *ptr; break; 4344 case 2: *ptr = sqlite3WhereTrace; break; 4345 case 3: sqlite3WhereTrace = *ptr; break; 4346 } 4347 break; 4348 } 4349 4350 /* sqlite3_test_control(SQLITE_TESTCTRL_LOGEST, 4351 ** double fIn, // Input value 4352 ** int *pLogEst, // sqlite3LogEstFromDouble(fIn) 4353 ** u64 *pInt, // sqlite3LogEstToInt(*pLogEst) 4354 ** int *pLogEst2 // sqlite3LogEst(*pInt) 4355 ** ); 4356 ** 4357 ** Test access for the LogEst conversion routines. 4358 */ 4359 case SQLITE_TESTCTRL_LOGEST: { 4360 double rIn = va_arg(ap, double); 4361 LogEst rLogEst = sqlite3LogEstFromDouble(rIn); 4362 u64 iInt = sqlite3LogEstToInt(rLogEst); 4363 va_arg(ap, int*)[0] = rLogEst; 4364 va_arg(ap, u64*)[0] = iInt; 4365 va_arg(ap, int*)[0] = sqlite3LogEst(iInt); 4366 break; 4367 } 4368 4369 4370 #if defined(SQLITE_DEBUG) && !defined(SQLITE_OMIT_WSD) 4371 /* sqlite3_test_control(SQLITE_TESTCTRL_TUNE, id, *piValue) 4372 ** 4373 ** If "id" is an integer between 1 and SQLITE_NTUNE then set the value 4374 ** of the id-th tuning parameter to *piValue. If "id" is between -1 4375 ** and -SQLITE_NTUNE, then write the current value of the (-id)-th 4376 ** tuning parameter into *piValue. 4377 ** 4378 ** Tuning parameters are for use during transient development builds, 4379 ** to help find the best values for constants in the query planner. 4380 ** Access tuning parameters using the Tuning(ID) macro. Set the 4381 ** parameters in the CLI using ".testctrl tune ID VALUE". 4382 ** 4383 ** Transient use only. Tuning parameters should not be used in 4384 ** checked-in code. 4385 */ 4386 case SQLITE_TESTCTRL_TUNE: { 4387 int id = va_arg(ap, int); 4388 int *piValue = va_arg(ap, int*); 4389 if( id>0 && id<=SQLITE_NTUNE ){ 4390 Tuning(id) = *piValue; 4391 }else if( id<0 && id>=-SQLITE_NTUNE ){ 4392 *piValue = Tuning(-id); 4393 }else{ 4394 rc = SQLITE_NOTFOUND; 4395 } 4396 break; 4397 } 4398 #endif 4399 } 4400 va_end(ap); 4401 #endif /* SQLITE_UNTESTABLE */ 4402 return rc; 4403 } 4404 4405 /* 4406 ** The Pager stores the Database filename, Journal filename, and WAL filename 4407 ** consecutively in memory, in that order. The database filename is prefixed 4408 ** by four zero bytes. Locate the start of the database filename by searching 4409 ** backwards for the first byte following four consecutive zero bytes. 4410 ** 4411 ** This only works if the filename passed in was obtained from the Pager. 4412 */ 4413 static const char *databaseName(const char *zName){ 4414 while( zName[-1]!=0 || zName[-2]!=0 || zName[-3]!=0 || zName[-4]!=0 ){ 4415 zName--; 4416 } 4417 return zName; 4418 } 4419 4420 /* 4421 ** Append text z[] to the end of p[]. Return a pointer to the first 4422 ** character after then zero terminator on the new text in p[]. 4423 */ 4424 static char *appendText(char *p, const char *z){ 4425 size_t n = strlen(z); 4426 memcpy(p, z, n+1); 4427 return p+n+1; 4428 } 4429 4430 /* 4431 ** Allocate memory to hold names for a database, journal file, WAL file, 4432 ** and query parameters. The pointer returned is valid for use by 4433 ** sqlite3_filename_database() and sqlite3_uri_parameter() and related 4434 ** functions. 4435 ** 4436 ** Memory layout must be compatible with that generated by the pager 4437 ** and expected by sqlite3_uri_parameter() and databaseName(). 4438 */ 4439 char *sqlite3_create_filename( 4440 const char *zDatabase, 4441 const char *zJournal, 4442 const char *zWal, 4443 int nParam, 4444 const char **azParam 4445 ){ 4446 sqlite3_int64 nByte; 4447 int i; 4448 char *pResult, *p; 4449 nByte = strlen(zDatabase) + strlen(zJournal) + strlen(zWal) + 10; 4450 for(i=0; i<nParam*2; i++){ 4451 nByte += strlen(azParam[i])+1; 4452 } 4453 pResult = p = sqlite3_malloc64( nByte ); 4454 if( p==0 ) return 0; 4455 memset(p, 0, 4); 4456 p += 4; 4457 p = appendText(p, zDatabase); 4458 for(i=0; i<nParam*2; i++){ 4459 p = appendText(p, azParam[i]); 4460 } 4461 *(p++) = 0; 4462 p = appendText(p, zJournal); 4463 p = appendText(p, zWal); 4464 *(p++) = 0; 4465 *(p++) = 0; 4466 assert( (sqlite3_int64)(p - pResult)==nByte ); 4467 return pResult + 4; 4468 } 4469 4470 /* 4471 ** Free memory obtained from sqlite3_create_filename(). It is a severe 4472 ** error to call this routine with any parameter other than a pointer 4473 ** previously obtained from sqlite3_create_filename() or a NULL pointer. 4474 */ 4475 void sqlite3_free_filename(char *p){ 4476 if( p==0 ) return; 4477 p = (char*)databaseName(p); 4478 sqlite3_free(p - 4); 4479 } 4480 4481 4482 /* 4483 ** This is a utility routine, useful to VFS implementations, that checks 4484 ** to see if a database file was a URI that contained a specific query 4485 ** parameter, and if so obtains the value of the query parameter. 4486 ** 4487 ** The zFilename argument is the filename pointer passed into the xOpen() 4488 ** method of a VFS implementation. The zParam argument is the name of the 4489 ** query parameter we seek. This routine returns the value of the zParam 4490 ** parameter if it exists. If the parameter does not exist, this routine 4491 ** returns a NULL pointer. 4492 */ 4493 const char *sqlite3_uri_parameter(const char *zFilename, const char *zParam){ 4494 if( zFilename==0 || zParam==0 ) return 0; 4495 zFilename = databaseName(zFilename); 4496 return uriParameter(zFilename, zParam); 4497 } 4498 4499 /* 4500 ** Return a pointer to the name of Nth query parameter of the filename. 4501 */ 4502 const char *sqlite3_uri_key(const char *zFilename, int N){ 4503 if( zFilename==0 || N<0 ) return 0; 4504 zFilename = databaseName(zFilename); 4505 zFilename += sqlite3Strlen30(zFilename) + 1; 4506 while( ALWAYS(zFilename) && zFilename[0] && (N--)>0 ){ 4507 zFilename += sqlite3Strlen30(zFilename) + 1; 4508 zFilename += sqlite3Strlen30(zFilename) + 1; 4509 } 4510 return zFilename[0] ? zFilename : 0; 4511 } 4512 4513 /* 4514 ** Return a boolean value for a query parameter. 4515 */ 4516 int sqlite3_uri_boolean(const char *zFilename, const char *zParam, int bDflt){ 4517 const char *z = sqlite3_uri_parameter(zFilename, zParam); 4518 bDflt = bDflt!=0; 4519 return z ? sqlite3GetBoolean(z, bDflt) : bDflt; 4520 } 4521 4522 /* 4523 ** Return a 64-bit integer value for a query parameter. 4524 */ 4525 sqlite3_int64 sqlite3_uri_int64( 4526 const char *zFilename, /* Filename as passed to xOpen */ 4527 const char *zParam, /* URI parameter sought */ 4528 sqlite3_int64 bDflt /* return if parameter is missing */ 4529 ){ 4530 const char *z = sqlite3_uri_parameter(zFilename, zParam); 4531 sqlite3_int64 v; 4532 if( z && sqlite3DecOrHexToI64(z, &v)==0 ){ 4533 bDflt = v; 4534 } 4535 return bDflt; 4536 } 4537 4538 /* 4539 ** Translate a filename that was handed to a VFS routine into the corresponding 4540 ** database, journal, or WAL file. 4541 ** 4542 ** It is an error to pass this routine a filename string that was not 4543 ** passed into the VFS from the SQLite core. Doing so is similar to 4544 ** passing free() a pointer that was not obtained from malloc() - it is 4545 ** an error that we cannot easily detect but that will likely cause memory 4546 ** corruption. 4547 */ 4548 const char *sqlite3_filename_database(const char *zFilename){ 4549 if( zFilename==0 ) return 0; 4550 return databaseName(zFilename); 4551 } 4552 const char *sqlite3_filename_journal(const char *zFilename){ 4553 if( zFilename==0 ) return 0; 4554 zFilename = databaseName(zFilename); 4555 zFilename += sqlite3Strlen30(zFilename) + 1; 4556 while( ALWAYS(zFilename) && zFilename[0] ){ 4557 zFilename += sqlite3Strlen30(zFilename) + 1; 4558 zFilename += sqlite3Strlen30(zFilename) + 1; 4559 } 4560 return zFilename + 1; 4561 } 4562 const char *sqlite3_filename_wal(const char *zFilename){ 4563 #ifdef SQLITE_OMIT_WAL 4564 return 0; 4565 #else 4566 zFilename = sqlite3_filename_journal(zFilename); 4567 if( zFilename ) zFilename += sqlite3Strlen30(zFilename) + 1; 4568 return zFilename; 4569 #endif 4570 } 4571 4572 /* 4573 ** Return the Btree pointer identified by zDbName. Return NULL if not found. 4574 */ 4575 Btree *sqlite3DbNameToBtree(sqlite3 *db, const char *zDbName){ 4576 int iDb = zDbName ? sqlite3FindDbName(db, zDbName) : 0; 4577 return iDb<0 ? 0 : db->aDb[iDb].pBt; 4578 } 4579 4580 /* 4581 ** Return the filename of the database associated with a database 4582 ** connection. 4583 */ 4584 const char *sqlite3_db_filename(sqlite3 *db, const char *zDbName){ 4585 Btree *pBt; 4586 #ifdef SQLITE_ENABLE_API_ARMOR 4587 if( !sqlite3SafetyCheckOk(db) ){ 4588 (void)SQLITE_MISUSE_BKPT; 4589 return 0; 4590 } 4591 #endif 4592 pBt = sqlite3DbNameToBtree(db, zDbName); 4593 return pBt ? sqlite3BtreeGetFilename(pBt) : 0; 4594 } 4595 4596 /* 4597 ** Return 1 if database is read-only or 0 if read/write. Return -1 if 4598 ** no such database exists. 4599 */ 4600 int sqlite3_db_readonly(sqlite3 *db, const char *zDbName){ 4601 Btree *pBt; 4602 #ifdef SQLITE_ENABLE_API_ARMOR 4603 if( !sqlite3SafetyCheckOk(db) ){ 4604 (void)SQLITE_MISUSE_BKPT; 4605 return -1; 4606 } 4607 #endif 4608 pBt = sqlite3DbNameToBtree(db, zDbName); 4609 return pBt ? sqlite3BtreeIsReadonly(pBt) : -1; 4610 } 4611 4612 #ifdef SQLITE_ENABLE_SNAPSHOT 4613 /* 4614 ** Obtain a snapshot handle for the snapshot of database zDb currently 4615 ** being read by handle db. 4616 */ 4617 int sqlite3_snapshot_get( 4618 sqlite3 *db, 4619 const char *zDb, 4620 sqlite3_snapshot **ppSnapshot 4621 ){ 4622 int rc = SQLITE_ERROR; 4623 #ifndef SQLITE_OMIT_WAL 4624 4625 #ifdef SQLITE_ENABLE_API_ARMOR 4626 if( !sqlite3SafetyCheckOk(db) ){ 4627 return SQLITE_MISUSE_BKPT; 4628 } 4629 #endif 4630 sqlite3_mutex_enter(db->mutex); 4631 4632 if( db->autoCommit==0 ){ 4633 int iDb = sqlite3FindDbName(db, zDb); 4634 if( iDb==0 || iDb>1 ){ 4635 Btree *pBt = db->aDb[iDb].pBt; 4636 if( SQLITE_TXN_WRITE!=sqlite3BtreeTxnState(pBt) ){ 4637 rc = sqlite3BtreeBeginTrans(pBt, 0, 0); 4638 if( rc==SQLITE_OK ){ 4639 rc = sqlite3PagerSnapshotGet(sqlite3BtreePager(pBt), ppSnapshot); 4640 } 4641 } 4642 } 4643 } 4644 4645 sqlite3_mutex_leave(db->mutex); 4646 #endif /* SQLITE_OMIT_WAL */ 4647 return rc; 4648 } 4649 4650 /* 4651 ** Open a read-transaction on the snapshot idendified by pSnapshot. 4652 */ 4653 int sqlite3_snapshot_open( 4654 sqlite3 *db, 4655 const char *zDb, 4656 sqlite3_snapshot *pSnapshot 4657 ){ 4658 int rc = SQLITE_ERROR; 4659 #ifndef SQLITE_OMIT_WAL 4660 4661 #ifdef SQLITE_ENABLE_API_ARMOR 4662 if( !sqlite3SafetyCheckOk(db) ){ 4663 return SQLITE_MISUSE_BKPT; 4664 } 4665 #endif 4666 sqlite3_mutex_enter(db->mutex); 4667 if( db->autoCommit==0 ){ 4668 int iDb; 4669 iDb = sqlite3FindDbName(db, zDb); 4670 if( iDb==0 || iDb>1 ){ 4671 Btree *pBt = db->aDb[iDb].pBt; 4672 if( sqlite3BtreeTxnState(pBt)!=SQLITE_TXN_WRITE ){ 4673 Pager *pPager = sqlite3BtreePager(pBt); 4674 int bUnlock = 0; 4675 if( sqlite3BtreeTxnState(pBt)!=SQLITE_TXN_NONE ){ 4676 if( db->nVdbeActive==0 ){ 4677 rc = sqlite3PagerSnapshotCheck(pPager, pSnapshot); 4678 if( rc==SQLITE_OK ){ 4679 bUnlock = 1; 4680 rc = sqlite3BtreeCommit(pBt); 4681 } 4682 } 4683 }else{ 4684 rc = SQLITE_OK; 4685 } 4686 if( rc==SQLITE_OK ){ 4687 rc = sqlite3PagerSnapshotOpen(pPager, pSnapshot); 4688 } 4689 if( rc==SQLITE_OK ){ 4690 rc = sqlite3BtreeBeginTrans(pBt, 0, 0); 4691 sqlite3PagerSnapshotOpen(pPager, 0); 4692 } 4693 if( bUnlock ){ 4694 sqlite3PagerSnapshotUnlock(pPager); 4695 } 4696 } 4697 } 4698 } 4699 4700 sqlite3_mutex_leave(db->mutex); 4701 #endif /* SQLITE_OMIT_WAL */ 4702 return rc; 4703 } 4704 4705 /* 4706 ** Recover as many snapshots as possible from the wal file associated with 4707 ** schema zDb of database db. 4708 */ 4709 int sqlite3_snapshot_recover(sqlite3 *db, const char *zDb){ 4710 int rc = SQLITE_ERROR; 4711 int iDb; 4712 #ifndef SQLITE_OMIT_WAL 4713 4714 #ifdef SQLITE_ENABLE_API_ARMOR 4715 if( !sqlite3SafetyCheckOk(db) ){ 4716 return SQLITE_MISUSE_BKPT; 4717 } 4718 #endif 4719 4720 sqlite3_mutex_enter(db->mutex); 4721 iDb = sqlite3FindDbName(db, zDb); 4722 if( iDb==0 || iDb>1 ){ 4723 Btree *pBt = db->aDb[iDb].pBt; 4724 if( SQLITE_TXN_NONE==sqlite3BtreeTxnState(pBt) ){ 4725 rc = sqlite3BtreeBeginTrans(pBt, 0, 0); 4726 if( rc==SQLITE_OK ){ 4727 rc = sqlite3PagerSnapshotRecover(sqlite3BtreePager(pBt)); 4728 sqlite3BtreeCommit(pBt); 4729 } 4730 } 4731 } 4732 sqlite3_mutex_leave(db->mutex); 4733 #endif /* SQLITE_OMIT_WAL */ 4734 return rc; 4735 } 4736 4737 /* 4738 ** Free a snapshot handle obtained from sqlite3_snapshot_get(). 4739 */ 4740 void sqlite3_snapshot_free(sqlite3_snapshot *pSnapshot){ 4741 sqlite3_free(pSnapshot); 4742 } 4743 #endif /* SQLITE_ENABLE_SNAPSHOT */ 4744 4745 #ifndef SQLITE_OMIT_COMPILEOPTION_DIAGS 4746 /* 4747 ** Given the name of a compile-time option, return true if that option 4748 ** was used and false if not. 4749 ** 4750 ** The name can optionally begin with "SQLITE_" but the "SQLITE_" prefix 4751 ** is not required for a match. 4752 */ 4753 int sqlite3_compileoption_used(const char *zOptName){ 4754 int i, n; 4755 int nOpt; 4756 const char **azCompileOpt; 4757 4758 #if SQLITE_ENABLE_API_ARMOR 4759 if( zOptName==0 ){ 4760 (void)SQLITE_MISUSE_BKPT; 4761 return 0; 4762 } 4763 #endif 4764 4765 azCompileOpt = sqlite3CompileOptions(&nOpt); 4766 4767 if( sqlite3StrNICmp(zOptName, "SQLITE_", 7)==0 ) zOptName += 7; 4768 n = sqlite3Strlen30(zOptName); 4769 4770 /* Since nOpt is normally in single digits, a linear search is 4771 ** adequate. No need for a binary search. */ 4772 for(i=0; i<nOpt; i++){ 4773 if( sqlite3StrNICmp(zOptName, azCompileOpt[i], n)==0 4774 && sqlite3IsIdChar((unsigned char)azCompileOpt[i][n])==0 4775 ){ 4776 return 1; 4777 } 4778 } 4779 return 0; 4780 } 4781 4782 /* 4783 ** Return the N-th compile-time option string. If N is out of range, 4784 ** return a NULL pointer. 4785 */ 4786 const char *sqlite3_compileoption_get(int N){ 4787 int nOpt; 4788 const char **azCompileOpt; 4789 azCompileOpt = sqlite3CompileOptions(&nOpt); 4790 if( N>=0 && N<nOpt ){ 4791 return azCompileOpt[N]; 4792 } 4793 return 0; 4794 } 4795 #endif /* SQLITE_OMIT_COMPILEOPTION_DIAGS */ 4796