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 ** Internal interface definitions for SQLite. 13 ** 14 */ 15 #ifndef SQLITEINT_H 16 #define SQLITEINT_H 17 18 /* Special Comments: 19 ** 20 ** Some comments have special meaning to the tools that measure test 21 ** coverage: 22 ** 23 ** NO_TEST - The branches on this line are not 24 ** measured by branch coverage. This is 25 ** used on lines of code that actually 26 ** implement parts of coverage testing. 27 ** 28 ** OPTIMIZATION-IF-TRUE - This branch is allowed to alway be false 29 ** and the correct answer is still obtained, 30 ** though perhaps more slowly. 31 ** 32 ** OPTIMIZATION-IF-FALSE - This branch is allowed to alway be true 33 ** and the correct answer is still obtained, 34 ** though perhaps more slowly. 35 ** 36 ** PREVENTS-HARMLESS-OVERREAD - This branch prevents a buffer overread 37 ** that would be harmless and undetectable 38 ** if it did occur. 39 ** 40 ** In all cases, the special comment must be enclosed in the usual 41 ** slash-asterisk...asterisk-slash comment marks, with no spaces between the 42 ** asterisks and the comment text. 43 */ 44 45 /* 46 ** Make sure the Tcl calling convention macro is defined. This macro is 47 ** only used by test code and Tcl integration code. 48 */ 49 #ifndef SQLITE_TCLAPI 50 # define SQLITE_TCLAPI 51 #endif 52 53 /* 54 ** Include the header file used to customize the compiler options for MSVC. 55 ** This should be done first so that it can successfully prevent spurious 56 ** compiler warnings due to subsequent content in this file and other files 57 ** that are included by this file. 58 */ 59 #include "msvc.h" 60 61 /* 62 ** Special setup for VxWorks 63 */ 64 #include "vxworks.h" 65 66 /* 67 ** These #defines should enable >2GB file support on POSIX if the 68 ** underlying operating system supports it. If the OS lacks 69 ** large file support, or if the OS is windows, these should be no-ops. 70 ** 71 ** Ticket #2739: The _LARGEFILE_SOURCE macro must appear before any 72 ** system #includes. Hence, this block of code must be the very first 73 ** code in all source files. 74 ** 75 ** Large file support can be disabled using the -DSQLITE_DISABLE_LFS switch 76 ** on the compiler command line. This is necessary if you are compiling 77 ** on a recent machine (ex: Red Hat 7.2) but you want your code to work 78 ** on an older machine (ex: Red Hat 6.0). If you compile on Red Hat 7.2 79 ** without this option, LFS is enable. But LFS does not exist in the kernel 80 ** in Red Hat 6.0, so the code won't work. Hence, for maximum binary 81 ** portability you should omit LFS. 82 ** 83 ** The previous paragraph was written in 2005. (This paragraph is written 84 ** on 2008-11-28.) These days, all Linux kernels support large files, so 85 ** you should probably leave LFS enabled. But some embedded platforms might 86 ** lack LFS in which case the SQLITE_DISABLE_LFS macro might still be useful. 87 ** 88 ** Similar is true for Mac OS X. LFS is only supported on Mac OS X 9 and later. 89 */ 90 #ifndef SQLITE_DISABLE_LFS 91 # define _LARGE_FILE 1 92 # ifndef _FILE_OFFSET_BITS 93 # define _FILE_OFFSET_BITS 64 94 # endif 95 # define _LARGEFILE_SOURCE 1 96 #endif 97 98 /* The GCC_VERSION and MSVC_VERSION macros are used to 99 ** conditionally include optimizations for each of these compilers. A 100 ** value of 0 means that compiler is not being used. The 101 ** SQLITE_DISABLE_INTRINSIC macro means do not use any compiler-specific 102 ** optimizations, and hence set all compiler macros to 0 103 ** 104 ** There was once also a CLANG_VERSION macro. However, we learn that the 105 ** version numbers in clang are for "marketing" only and are inconsistent 106 ** and unreliable. Fortunately, all versions of clang also recognize the 107 ** gcc version numbers and have reasonable settings for gcc version numbers, 108 ** so the GCC_VERSION macro will be set to a correct non-zero value even 109 ** when compiling with clang. 110 */ 111 #if defined(__GNUC__) && !defined(SQLITE_DISABLE_INTRINSIC) 112 # define GCC_VERSION (__GNUC__*1000000+__GNUC_MINOR__*1000+__GNUC_PATCHLEVEL__) 113 #else 114 # define GCC_VERSION 0 115 #endif 116 #if defined(_MSC_VER) && !defined(SQLITE_DISABLE_INTRINSIC) 117 # define MSVC_VERSION _MSC_VER 118 #else 119 # define MSVC_VERSION 0 120 #endif 121 122 /* 123 ** Some C99 functions in "math.h" are only present for MSVC when its version 124 ** is associated with Visual Studio 2013 or higher. 125 */ 126 #ifndef SQLITE_HAVE_C99_MATH_FUNCS 127 # if MSVC_VERSION==0 || MSVC_VERSION>=1800 128 # define SQLITE_HAVE_C99_MATH_FUNCS (1) 129 # else 130 # define SQLITE_HAVE_C99_MATH_FUNCS (0) 131 # endif 132 #endif 133 134 /* Needed for various definitions... */ 135 #if defined(__GNUC__) && !defined(_GNU_SOURCE) 136 # define _GNU_SOURCE 137 #endif 138 139 #if defined(__OpenBSD__) && !defined(_BSD_SOURCE) 140 # define _BSD_SOURCE 141 #endif 142 143 /* 144 ** Macro to disable warnings about missing "break" at the end of a "case". 145 */ 146 #if GCC_VERSION>=7000000 147 # define deliberate_fall_through __attribute__((fallthrough)); 148 #else 149 # define deliberate_fall_through 150 #endif 151 152 /* 153 ** For MinGW, check to see if we can include the header file containing its 154 ** version information, among other things. Normally, this internal MinGW 155 ** header file would [only] be included automatically by other MinGW header 156 ** files; however, the contained version information is now required by this 157 ** header file to work around binary compatibility issues (see below) and 158 ** this is the only known way to reliably obtain it. This entire #if block 159 ** would be completely unnecessary if there was any other way of detecting 160 ** MinGW via their preprocessor (e.g. if they customized their GCC to define 161 ** some MinGW-specific macros). When compiling for MinGW, either the 162 ** _HAVE_MINGW_H or _HAVE__MINGW_H (note the extra underscore) macro must be 163 ** defined; otherwise, detection of conditions specific to MinGW will be 164 ** disabled. 165 */ 166 #if defined(_HAVE_MINGW_H) 167 # include "mingw.h" 168 #elif defined(_HAVE__MINGW_H) 169 # include "_mingw.h" 170 #endif 171 172 /* 173 ** For MinGW version 4.x (and higher), check to see if the _USE_32BIT_TIME_T 174 ** define is required to maintain binary compatibility with the MSVC runtime 175 ** library in use (e.g. for Windows XP). 176 */ 177 #if !defined(_USE_32BIT_TIME_T) && !defined(_USE_64BIT_TIME_T) && \ 178 defined(_WIN32) && !defined(_WIN64) && \ 179 defined(__MINGW_MAJOR_VERSION) && __MINGW_MAJOR_VERSION >= 4 && \ 180 defined(__MSVCRT__) 181 # define _USE_32BIT_TIME_T 182 #endif 183 184 /* Optionally #include a user-defined header, whereby compilation options 185 ** may be set prior to where they take effect, but after platform setup. 186 ** If SQLITE_CUSTOM_INCLUDE=? is defined, its value names the #include 187 ** file. 188 */ 189 #ifdef SQLITE_CUSTOM_INCLUDE 190 # define INC_STRINGIFY_(f) #f 191 # define INC_STRINGIFY(f) INC_STRINGIFY_(f) 192 # include INC_STRINGIFY(SQLITE_CUSTOM_INCLUDE) 193 #endif 194 195 /* The public SQLite interface. The _FILE_OFFSET_BITS macro must appear 196 ** first in QNX. Also, the _USE_32BIT_TIME_T macro must appear first for 197 ** MinGW. 198 */ 199 #include "sqlite3.h" 200 201 /* 202 ** Include the configuration header output by 'configure' if we're using the 203 ** autoconf-based build 204 */ 205 #if defined(_HAVE_SQLITE_CONFIG_H) && !defined(SQLITECONFIG_H) 206 #include "config.h" 207 #define SQLITECONFIG_H 1 208 #endif 209 210 #include "sqliteLimit.h" 211 212 /* Disable nuisance warnings on Borland compilers */ 213 #if defined(__BORLANDC__) 214 #pragma warn -rch /* unreachable code */ 215 #pragma warn -ccc /* Condition is always true or false */ 216 #pragma warn -aus /* Assigned value is never used */ 217 #pragma warn -csu /* Comparing signed and unsigned */ 218 #pragma warn -spa /* Suspicious pointer arithmetic */ 219 #endif 220 221 /* 222 ** WAL mode depends on atomic aligned 32-bit loads and stores in a few 223 ** places. The following macros try to make this explicit. 224 */ 225 #ifndef __has_extension 226 # define __has_extension(x) 0 /* compatibility with non-clang compilers */ 227 #endif 228 #if GCC_VERSION>=4007000 || __has_extension(c_atomic) 229 # define SQLITE_ATOMIC_INTRINSICS 1 230 # define AtomicLoad(PTR) __atomic_load_n((PTR),__ATOMIC_RELAXED) 231 # define AtomicStore(PTR,VAL) __atomic_store_n((PTR),(VAL),__ATOMIC_RELAXED) 232 #else 233 # define SQLITE_ATOMIC_INTRINSICS 0 234 # define AtomicLoad(PTR) (*(PTR)) 235 # define AtomicStore(PTR,VAL) (*(PTR) = (VAL)) 236 #endif 237 238 /* 239 ** Include standard header files as necessary 240 */ 241 #ifdef HAVE_STDINT_H 242 #include <stdint.h> 243 #endif 244 #ifdef HAVE_INTTYPES_H 245 #include <inttypes.h> 246 #endif 247 248 /* 249 ** The following macros are used to cast pointers to integers and 250 ** integers to pointers. The way you do this varies from one compiler 251 ** to the next, so we have developed the following set of #if statements 252 ** to generate appropriate macros for a wide range of compilers. 253 ** 254 ** The correct "ANSI" way to do this is to use the intptr_t type. 255 ** Unfortunately, that typedef is not available on all compilers, or 256 ** if it is available, it requires an #include of specific headers 257 ** that vary from one machine to the next. 258 ** 259 ** Ticket #3860: The llvm-gcc-4.2 compiler from Apple chokes on 260 ** the ((void*)&((char*)0)[X]) construct. But MSVC chokes on ((void*)(X)). 261 ** So we have to define the macros in different ways depending on the 262 ** compiler. 263 */ 264 #if defined(HAVE_STDINT_H) /* Use this case if we have ANSI headers */ 265 # define SQLITE_INT_TO_PTR(X) ((void*)(intptr_t)(X)) 266 # define SQLITE_PTR_TO_INT(X) ((int)(intptr_t)(X)) 267 #elif defined(__PTRDIFF_TYPE__) /* This case should work for GCC */ 268 # define SQLITE_INT_TO_PTR(X) ((void*)(__PTRDIFF_TYPE__)(X)) 269 # define SQLITE_PTR_TO_INT(X) ((int)(__PTRDIFF_TYPE__)(X)) 270 #elif !defined(__GNUC__) /* Works for compilers other than LLVM */ 271 # define SQLITE_INT_TO_PTR(X) ((void*)&((char*)0)[X]) 272 # define SQLITE_PTR_TO_INT(X) ((int)(((char*)X)-(char*)0)) 273 #else /* Generates a warning - but it always works */ 274 # define SQLITE_INT_TO_PTR(X) ((void*)(X)) 275 # define SQLITE_PTR_TO_INT(X) ((int)(X)) 276 #endif 277 278 /* 279 ** A macro to hint to the compiler that a function should not be 280 ** inlined. 281 */ 282 #if defined(__GNUC__) 283 # define SQLITE_NOINLINE __attribute__((noinline)) 284 #elif defined(_MSC_VER) && _MSC_VER>=1310 285 # define SQLITE_NOINLINE __declspec(noinline) 286 #else 287 # define SQLITE_NOINLINE 288 #endif 289 290 /* 291 ** Make sure that the compiler intrinsics we desire are enabled when 292 ** compiling with an appropriate version of MSVC unless prevented by 293 ** the SQLITE_DISABLE_INTRINSIC define. 294 */ 295 #if !defined(SQLITE_DISABLE_INTRINSIC) 296 # if defined(_MSC_VER) && _MSC_VER>=1400 297 # if !defined(_WIN32_WCE) 298 # include <intrin.h> 299 # pragma intrinsic(_byteswap_ushort) 300 # pragma intrinsic(_byteswap_ulong) 301 # pragma intrinsic(_byteswap_uint64) 302 # pragma intrinsic(_ReadWriteBarrier) 303 # else 304 # include <cmnintrin.h> 305 # endif 306 # endif 307 #endif 308 309 /* 310 ** The SQLITE_THREADSAFE macro must be defined as 0, 1, or 2. 311 ** 0 means mutexes are permanently disable and the library is never 312 ** threadsafe. 1 means the library is serialized which is the highest 313 ** level of threadsafety. 2 means the library is multithreaded - multiple 314 ** threads can use SQLite as long as no two threads try to use the same 315 ** database connection at the same time. 316 ** 317 ** Older versions of SQLite used an optional THREADSAFE macro. 318 ** We support that for legacy. 319 ** 320 ** To ensure that the correct value of "THREADSAFE" is reported when querying 321 ** for compile-time options at runtime (e.g. "PRAGMA compile_options"), this 322 ** logic is partially replicated in ctime.c. If it is updated here, it should 323 ** also be updated there. 324 */ 325 #if !defined(SQLITE_THREADSAFE) 326 # if defined(THREADSAFE) 327 # define SQLITE_THREADSAFE THREADSAFE 328 # else 329 # define SQLITE_THREADSAFE 1 /* IMP: R-07272-22309 */ 330 # endif 331 #endif 332 333 /* 334 ** Powersafe overwrite is on by default. But can be turned off using 335 ** the -DSQLITE_POWERSAFE_OVERWRITE=0 command-line option. 336 */ 337 #ifndef SQLITE_POWERSAFE_OVERWRITE 338 # define SQLITE_POWERSAFE_OVERWRITE 1 339 #endif 340 341 /* 342 ** EVIDENCE-OF: R-25715-37072 Memory allocation statistics are enabled by 343 ** default unless SQLite is compiled with SQLITE_DEFAULT_MEMSTATUS=0 in 344 ** which case memory allocation statistics are disabled by default. 345 */ 346 #if !defined(SQLITE_DEFAULT_MEMSTATUS) 347 # define SQLITE_DEFAULT_MEMSTATUS 1 348 #endif 349 350 /* 351 ** Exactly one of the following macros must be defined in order to 352 ** specify which memory allocation subsystem to use. 353 ** 354 ** SQLITE_SYSTEM_MALLOC // Use normal system malloc() 355 ** SQLITE_WIN32_MALLOC // Use Win32 native heap API 356 ** SQLITE_ZERO_MALLOC // Use a stub allocator that always fails 357 ** SQLITE_MEMDEBUG // Debugging version of system malloc() 358 ** 359 ** On Windows, if the SQLITE_WIN32_MALLOC_VALIDATE macro is defined and the 360 ** assert() macro is enabled, each call into the Win32 native heap subsystem 361 ** will cause HeapValidate to be called. If heap validation should fail, an 362 ** assertion will be triggered. 363 ** 364 ** If none of the above are defined, then set SQLITE_SYSTEM_MALLOC as 365 ** the default. 366 */ 367 #if defined(SQLITE_SYSTEM_MALLOC) \ 368 + defined(SQLITE_WIN32_MALLOC) \ 369 + defined(SQLITE_ZERO_MALLOC) \ 370 + defined(SQLITE_MEMDEBUG)>1 371 # error "Two or more of the following compile-time configuration options\ 372 are defined but at most one is allowed:\ 373 SQLITE_SYSTEM_MALLOC, SQLITE_WIN32_MALLOC, SQLITE_MEMDEBUG,\ 374 SQLITE_ZERO_MALLOC" 375 #endif 376 #if defined(SQLITE_SYSTEM_MALLOC) \ 377 + defined(SQLITE_WIN32_MALLOC) \ 378 + defined(SQLITE_ZERO_MALLOC) \ 379 + defined(SQLITE_MEMDEBUG)==0 380 # define SQLITE_SYSTEM_MALLOC 1 381 #endif 382 383 /* 384 ** If SQLITE_MALLOC_SOFT_LIMIT is not zero, then try to keep the 385 ** sizes of memory allocations below this value where possible. 386 */ 387 #if !defined(SQLITE_MALLOC_SOFT_LIMIT) 388 # define SQLITE_MALLOC_SOFT_LIMIT 1024 389 #endif 390 391 /* 392 ** We need to define _XOPEN_SOURCE as follows in order to enable 393 ** recursive mutexes on most Unix systems and fchmod() on OpenBSD. 394 ** But _XOPEN_SOURCE define causes problems for Mac OS X, so omit 395 ** it. 396 */ 397 #if !defined(_XOPEN_SOURCE) && !defined(__DARWIN__) && !defined(__APPLE__) 398 # define _XOPEN_SOURCE 600 399 #endif 400 401 /* 402 ** NDEBUG and SQLITE_DEBUG are opposites. It should always be true that 403 ** defined(NDEBUG)==!defined(SQLITE_DEBUG). If this is not currently true, 404 ** make it true by defining or undefining NDEBUG. 405 ** 406 ** Setting NDEBUG makes the code smaller and faster by disabling the 407 ** assert() statements in the code. So we want the default action 408 ** to be for NDEBUG to be set and NDEBUG to be undefined only if SQLITE_DEBUG 409 ** is set. Thus NDEBUG becomes an opt-in rather than an opt-out 410 ** feature. 411 */ 412 #if !defined(NDEBUG) && !defined(SQLITE_DEBUG) 413 # define NDEBUG 1 414 #endif 415 #if defined(NDEBUG) && defined(SQLITE_DEBUG) 416 # undef NDEBUG 417 #endif 418 419 /* 420 ** Enable SQLITE_ENABLE_EXPLAIN_COMMENTS if SQLITE_DEBUG is turned on. 421 */ 422 #if !defined(SQLITE_ENABLE_EXPLAIN_COMMENTS) && defined(SQLITE_DEBUG) 423 # define SQLITE_ENABLE_EXPLAIN_COMMENTS 1 424 #endif 425 426 /* 427 ** The testcase() macro is used to aid in coverage testing. When 428 ** doing coverage testing, the condition inside the argument to 429 ** testcase() must be evaluated both true and false in order to 430 ** get full branch coverage. The testcase() macro is inserted 431 ** to help ensure adequate test coverage in places where simple 432 ** condition/decision coverage is inadequate. For example, testcase() 433 ** can be used to make sure boundary values are tested. For 434 ** bitmask tests, testcase() can be used to make sure each bit 435 ** is significant and used at least once. On switch statements 436 ** where multiple cases go to the same block of code, testcase() 437 ** can insure that all cases are evaluated. 438 */ 439 #if defined(SQLITE_COVERAGE_TEST) || defined(SQLITE_DEBUG) 440 # ifndef SQLITE_AMALGAMATION 441 extern unsigned int sqlite3CoverageCounter; 442 # endif 443 # define testcase(X) if( X ){ sqlite3CoverageCounter += (unsigned)__LINE__; } 444 #else 445 # define testcase(X) 446 #endif 447 448 /* 449 ** The TESTONLY macro is used to enclose variable declarations or 450 ** other bits of code that are needed to support the arguments 451 ** within testcase() and assert() macros. 452 */ 453 #if !defined(NDEBUG) || defined(SQLITE_COVERAGE_TEST) 454 # define TESTONLY(X) X 455 #else 456 # define TESTONLY(X) 457 #endif 458 459 /* 460 ** Sometimes we need a small amount of code such as a variable initialization 461 ** to setup for a later assert() statement. We do not want this code to 462 ** appear when assert() is disabled. The following macro is therefore 463 ** used to contain that setup code. The "VVA" acronym stands for 464 ** "Verification, Validation, and Accreditation". In other words, the 465 ** code within VVA_ONLY() will only run during verification processes. 466 */ 467 #ifndef NDEBUG 468 # define VVA_ONLY(X) X 469 #else 470 # define VVA_ONLY(X) 471 #endif 472 473 /* 474 ** Disable ALWAYS() and NEVER() (make them pass-throughs) for coverage 475 ** and mutation testing 476 */ 477 #if defined(SQLITE_COVERAGE_TEST) || defined(SQLITE_MUTATION_TEST) 478 # define SQLITE_OMIT_AUXILIARY_SAFETY_CHECKS 1 479 #endif 480 481 /* 482 ** The ALWAYS and NEVER macros surround boolean expressions which 483 ** are intended to always be true or false, respectively. Such 484 ** expressions could be omitted from the code completely. But they 485 ** are included in a few cases in order to enhance the resilience 486 ** of SQLite to unexpected behavior - to make the code "self-healing" 487 ** or "ductile" rather than being "brittle" and crashing at the first 488 ** hint of unplanned behavior. 489 ** 490 ** In other words, ALWAYS and NEVER are added for defensive code. 491 ** 492 ** When doing coverage testing ALWAYS and NEVER are hard-coded to 493 ** be true and false so that the unreachable code they specify will 494 ** not be counted as untested code. 495 */ 496 #if defined(SQLITE_OMIT_AUXILIARY_SAFETY_CHECKS) 497 # define ALWAYS(X) (1) 498 # define NEVER(X) (0) 499 #elif !defined(NDEBUG) 500 # define ALWAYS(X) ((X)?1:(assert(0),0)) 501 # define NEVER(X) ((X)?(assert(0),1):0) 502 #else 503 # define ALWAYS(X) (X) 504 # define NEVER(X) (X) 505 #endif 506 507 /* 508 ** Some conditionals are optimizations only. In other words, if the 509 ** conditionals are replaced with a constant 1 (true) or 0 (false) then 510 ** the correct answer is still obtained, though perhaps not as quickly. 511 ** 512 ** The following macros mark these optimizations conditionals. 513 */ 514 #if defined(SQLITE_MUTATION_TEST) 515 # define OK_IF_ALWAYS_TRUE(X) (1) 516 # define OK_IF_ALWAYS_FALSE(X) (0) 517 #else 518 # define OK_IF_ALWAYS_TRUE(X) (X) 519 # define OK_IF_ALWAYS_FALSE(X) (X) 520 #endif 521 522 /* 523 ** Some malloc failures are only possible if SQLITE_TEST_REALLOC_STRESS is 524 ** defined. We need to defend against those failures when testing with 525 ** SQLITE_TEST_REALLOC_STRESS, but we don't want the unreachable branches 526 ** during a normal build. The following macro can be used to disable tests 527 ** that are always false except when SQLITE_TEST_REALLOC_STRESS is set. 528 */ 529 #if defined(SQLITE_TEST_REALLOC_STRESS) 530 # define ONLY_IF_REALLOC_STRESS(X) (X) 531 #elif !defined(NDEBUG) 532 # define ONLY_IF_REALLOC_STRESS(X) ((X)?(assert(0),1):0) 533 #else 534 # define ONLY_IF_REALLOC_STRESS(X) (0) 535 #endif 536 537 /* 538 ** Declarations used for tracing the operating system interfaces. 539 */ 540 #if defined(SQLITE_FORCE_OS_TRACE) || defined(SQLITE_TEST) || \ 541 (defined(SQLITE_DEBUG) && SQLITE_OS_WIN) 542 extern int sqlite3OSTrace; 543 # define OSTRACE(X) if( sqlite3OSTrace ) sqlite3DebugPrintf X 544 # define SQLITE_HAVE_OS_TRACE 545 #else 546 # define OSTRACE(X) 547 # undef SQLITE_HAVE_OS_TRACE 548 #endif 549 550 /* 551 ** Is the sqlite3ErrName() function needed in the build? Currently, 552 ** it is needed by "mutex_w32.c" (when debugging), "os_win.c" (when 553 ** OSTRACE is enabled), and by several "test*.c" files (which are 554 ** compiled using SQLITE_TEST). 555 */ 556 #if defined(SQLITE_HAVE_OS_TRACE) || defined(SQLITE_TEST) || \ 557 (defined(SQLITE_DEBUG) && SQLITE_OS_WIN) 558 # define SQLITE_NEED_ERR_NAME 559 #else 560 # undef SQLITE_NEED_ERR_NAME 561 #endif 562 563 /* 564 ** SQLITE_ENABLE_EXPLAIN_COMMENTS is incompatible with SQLITE_OMIT_EXPLAIN 565 */ 566 #ifdef SQLITE_OMIT_EXPLAIN 567 # undef SQLITE_ENABLE_EXPLAIN_COMMENTS 568 #endif 569 570 /* 571 ** SQLITE_OMIT_VIRTUALTABLE implies SQLITE_OMIT_ALTERTABLE 572 */ 573 #if defined(SQLITE_OMIT_VIRTUALTABLE) && !defined(SQLITE_OMIT_ALTERTABLE) 574 # define SQLITE_OMIT_ALTERTABLE 575 #endif 576 577 /* 578 ** Return true (non-zero) if the input is an integer that is too large 579 ** to fit in 32-bits. This macro is used inside of various testcase() 580 ** macros to verify that we have tested SQLite for large-file support. 581 */ 582 #define IS_BIG_INT(X) (((X)&~(i64)0xffffffff)!=0) 583 584 /* 585 ** The macro unlikely() is a hint that surrounds a boolean 586 ** expression that is usually false. Macro likely() surrounds 587 ** a boolean expression that is usually true. These hints could, 588 ** in theory, be used by the compiler to generate better code, but 589 ** currently they are just comments for human readers. 590 */ 591 #define likely(X) (X) 592 #define unlikely(X) (X) 593 594 #include "hash.h" 595 #include "parse.h" 596 #include <stdio.h> 597 #include <stdlib.h> 598 #include <string.h> 599 #include <assert.h> 600 #include <stddef.h> 601 602 /* 603 ** Use a macro to replace memcpy() if compiled with SQLITE_INLINE_MEMCPY. 604 ** This allows better measurements of where memcpy() is used when running 605 ** cachegrind. But this macro version of memcpy() is very slow so it 606 ** should not be used in production. This is a performance measurement 607 ** hack only. 608 */ 609 #ifdef SQLITE_INLINE_MEMCPY 610 # define memcpy(D,S,N) {char*xxd=(char*)(D);const char*xxs=(const char*)(S);\ 611 int xxn=(N);while(xxn-->0)*(xxd++)=*(xxs++);} 612 #endif 613 614 /* 615 ** If compiling for a processor that lacks floating point support, 616 ** substitute integer for floating-point 617 */ 618 #ifdef SQLITE_OMIT_FLOATING_POINT 619 # define double sqlite_int64 620 # define float sqlite_int64 621 # define LONGDOUBLE_TYPE sqlite_int64 622 # ifndef SQLITE_BIG_DBL 623 # define SQLITE_BIG_DBL (((sqlite3_int64)1)<<50) 624 # endif 625 # define SQLITE_OMIT_DATETIME_FUNCS 1 626 # define SQLITE_OMIT_TRACE 1 627 # undef SQLITE_MIXED_ENDIAN_64BIT_FLOAT 628 # undef SQLITE_HAVE_ISNAN 629 #endif 630 #ifndef SQLITE_BIG_DBL 631 # define SQLITE_BIG_DBL (1e99) 632 #endif 633 634 /* 635 ** OMIT_TEMPDB is set to 1 if SQLITE_OMIT_TEMPDB is defined, or 0 636 ** afterward. Having this macro allows us to cause the C compiler 637 ** to omit code used by TEMP tables without messy #ifndef statements. 638 */ 639 #ifdef SQLITE_OMIT_TEMPDB 640 #define OMIT_TEMPDB 1 641 #else 642 #define OMIT_TEMPDB 0 643 #endif 644 645 /* 646 ** The "file format" number is an integer that is incremented whenever 647 ** the VDBE-level file format changes. The following macros define the 648 ** the default file format for new databases and the maximum file format 649 ** that the library can read. 650 */ 651 #define SQLITE_MAX_FILE_FORMAT 4 652 #ifndef SQLITE_DEFAULT_FILE_FORMAT 653 # define SQLITE_DEFAULT_FILE_FORMAT 4 654 #endif 655 656 /* 657 ** Determine whether triggers are recursive by default. This can be 658 ** changed at run-time using a pragma. 659 */ 660 #ifndef SQLITE_DEFAULT_RECURSIVE_TRIGGERS 661 # define SQLITE_DEFAULT_RECURSIVE_TRIGGERS 0 662 #endif 663 664 /* 665 ** Provide a default value for SQLITE_TEMP_STORE in case it is not specified 666 ** on the command-line 667 */ 668 #ifndef SQLITE_TEMP_STORE 669 # define SQLITE_TEMP_STORE 1 670 #endif 671 672 /* 673 ** If no value has been provided for SQLITE_MAX_WORKER_THREADS, or if 674 ** SQLITE_TEMP_STORE is set to 3 (never use temporary files), set it 675 ** to zero. 676 */ 677 #if SQLITE_TEMP_STORE==3 || SQLITE_THREADSAFE==0 678 # undef SQLITE_MAX_WORKER_THREADS 679 # define SQLITE_MAX_WORKER_THREADS 0 680 #endif 681 #ifndef SQLITE_MAX_WORKER_THREADS 682 # define SQLITE_MAX_WORKER_THREADS 8 683 #endif 684 #ifndef SQLITE_DEFAULT_WORKER_THREADS 685 # define SQLITE_DEFAULT_WORKER_THREADS 0 686 #endif 687 #if SQLITE_DEFAULT_WORKER_THREADS>SQLITE_MAX_WORKER_THREADS 688 # undef SQLITE_MAX_WORKER_THREADS 689 # define SQLITE_MAX_WORKER_THREADS SQLITE_DEFAULT_WORKER_THREADS 690 #endif 691 692 /* 693 ** The default initial allocation for the pagecache when using separate 694 ** pagecaches for each database connection. A positive number is the 695 ** number of pages. A negative number N translations means that a buffer 696 ** of -1024*N bytes is allocated and used for as many pages as it will hold. 697 ** 698 ** The default value of "20" was chosen to minimize the run-time of the 699 ** speedtest1 test program with options: --shrink-memory --reprepare 700 */ 701 #ifndef SQLITE_DEFAULT_PCACHE_INITSZ 702 # define SQLITE_DEFAULT_PCACHE_INITSZ 20 703 #endif 704 705 /* 706 ** Default value for the SQLITE_CONFIG_SORTERREF_SIZE option. 707 */ 708 #ifndef SQLITE_DEFAULT_SORTERREF_SIZE 709 # define SQLITE_DEFAULT_SORTERREF_SIZE 0x7fffffff 710 #endif 711 712 /* 713 ** The compile-time options SQLITE_MMAP_READWRITE and 714 ** SQLITE_ENABLE_BATCH_ATOMIC_WRITE are not compatible with one another. 715 ** You must choose one or the other (or neither) but not both. 716 */ 717 #if defined(SQLITE_MMAP_READWRITE) && defined(SQLITE_ENABLE_BATCH_ATOMIC_WRITE) 718 #error Cannot use both SQLITE_MMAP_READWRITE and SQLITE_ENABLE_BATCH_ATOMIC_WRITE 719 #endif 720 721 /* 722 ** GCC does not define the offsetof() macro so we'll have to do it 723 ** ourselves. 724 */ 725 #ifndef offsetof 726 #define offsetof(STRUCTURE,FIELD) ((int)((char*)&((STRUCTURE*)0)->FIELD)) 727 #endif 728 729 /* 730 ** Macros to compute minimum and maximum of two numbers. 731 */ 732 #ifndef MIN 733 # define MIN(A,B) ((A)<(B)?(A):(B)) 734 #endif 735 #ifndef MAX 736 # define MAX(A,B) ((A)>(B)?(A):(B)) 737 #endif 738 739 /* 740 ** Swap two objects of type TYPE. 741 */ 742 #define SWAP(TYPE,A,B) {TYPE t=A; A=B; B=t;} 743 744 /* 745 ** Check to see if this machine uses EBCDIC. (Yes, believe it or 746 ** not, there are still machines out there that use EBCDIC.) 747 */ 748 #if 'A' == '\301' 749 # define SQLITE_EBCDIC 1 750 #else 751 # define SQLITE_ASCII 1 752 #endif 753 754 /* 755 ** Integers of known sizes. These typedefs might change for architectures 756 ** where the sizes very. Preprocessor macros are available so that the 757 ** types can be conveniently redefined at compile-type. Like this: 758 ** 759 ** cc '-DUINTPTR_TYPE=long long int' ... 760 */ 761 #ifndef UINT32_TYPE 762 # ifdef HAVE_UINT32_T 763 # define UINT32_TYPE uint32_t 764 # else 765 # define UINT32_TYPE unsigned int 766 # endif 767 #endif 768 #ifndef UINT16_TYPE 769 # ifdef HAVE_UINT16_T 770 # define UINT16_TYPE uint16_t 771 # else 772 # define UINT16_TYPE unsigned short int 773 # endif 774 #endif 775 #ifndef INT16_TYPE 776 # ifdef HAVE_INT16_T 777 # define INT16_TYPE int16_t 778 # else 779 # define INT16_TYPE short int 780 # endif 781 #endif 782 #ifndef UINT8_TYPE 783 # ifdef HAVE_UINT8_T 784 # define UINT8_TYPE uint8_t 785 # else 786 # define UINT8_TYPE unsigned char 787 # endif 788 #endif 789 #ifndef INT8_TYPE 790 # ifdef HAVE_INT8_T 791 # define INT8_TYPE int8_t 792 # else 793 # define INT8_TYPE signed char 794 # endif 795 #endif 796 #ifndef LONGDOUBLE_TYPE 797 # define LONGDOUBLE_TYPE long double 798 #endif 799 typedef sqlite_int64 i64; /* 8-byte signed integer */ 800 typedef sqlite_uint64 u64; /* 8-byte unsigned integer */ 801 typedef UINT32_TYPE u32; /* 4-byte unsigned integer */ 802 typedef UINT16_TYPE u16; /* 2-byte unsigned integer */ 803 typedef INT16_TYPE i16; /* 2-byte signed integer */ 804 typedef UINT8_TYPE u8; /* 1-byte unsigned integer */ 805 typedef INT8_TYPE i8; /* 1-byte signed integer */ 806 807 /* 808 ** SQLITE_MAX_U32 is a u64 constant that is the maximum u64 value 809 ** that can be stored in a u32 without loss of data. The value 810 ** is 0x00000000ffffffff. But because of quirks of some compilers, we 811 ** have to specify the value in the less intuitive manner shown: 812 */ 813 #define SQLITE_MAX_U32 ((((u64)1)<<32)-1) 814 815 /* 816 ** The datatype used to store estimates of the number of rows in a 817 ** table or index. This is an unsigned integer type. For 99.9% of 818 ** the world, a 32-bit integer is sufficient. But a 64-bit integer 819 ** can be used at compile-time if desired. 820 */ 821 #ifdef SQLITE_64BIT_STATS 822 typedef u64 tRowcnt; /* 64-bit only if requested at compile-time */ 823 #else 824 typedef u32 tRowcnt; /* 32-bit is the default */ 825 #endif 826 827 /* 828 ** Estimated quantities used for query planning are stored as 16-bit 829 ** logarithms. For quantity X, the value stored is 10*log2(X). This 830 ** gives a possible range of values of approximately 1.0e986 to 1e-986. 831 ** But the allowed values are "grainy". Not every value is representable. 832 ** For example, quantities 16 and 17 are both represented by a LogEst 833 ** of 40. However, since LogEst quantities are suppose to be estimates, 834 ** not exact values, this imprecision is not a problem. 835 ** 836 ** "LogEst" is short for "Logarithmic Estimate". 837 ** 838 ** Examples: 839 ** 1 -> 0 20 -> 43 10000 -> 132 840 ** 2 -> 10 25 -> 46 25000 -> 146 841 ** 3 -> 16 100 -> 66 1000000 -> 199 842 ** 4 -> 20 1000 -> 99 1048576 -> 200 843 ** 10 -> 33 1024 -> 100 4294967296 -> 320 844 ** 845 ** The LogEst can be negative to indicate fractional values. 846 ** Examples: 847 ** 848 ** 0.5 -> -10 0.1 -> -33 0.0625 -> -40 849 */ 850 typedef INT16_TYPE LogEst; 851 852 /* 853 ** Set the SQLITE_PTRSIZE macro to the number of bytes in a pointer 854 */ 855 #ifndef SQLITE_PTRSIZE 856 # if defined(__SIZEOF_POINTER__) 857 # define SQLITE_PTRSIZE __SIZEOF_POINTER__ 858 # elif defined(i386) || defined(__i386__) || defined(_M_IX86) || \ 859 defined(_M_ARM) || defined(__arm__) || defined(__x86) || \ 860 (defined(__APPLE__) && defined(__POWERPC__)) || \ 861 (defined(__TOS_AIX__) && !defined(__64BIT__)) 862 # define SQLITE_PTRSIZE 4 863 # else 864 # define SQLITE_PTRSIZE 8 865 # endif 866 #endif 867 868 /* The uptr type is an unsigned integer large enough to hold a pointer 869 */ 870 #if defined(HAVE_STDINT_H) 871 typedef uintptr_t uptr; 872 #elif SQLITE_PTRSIZE==4 873 typedef u32 uptr; 874 #else 875 typedef u64 uptr; 876 #endif 877 878 /* 879 ** The SQLITE_WITHIN(P,S,E) macro checks to see if pointer P points to 880 ** something between S (inclusive) and E (exclusive). 881 ** 882 ** In other words, S is a buffer and E is a pointer to the first byte after 883 ** the end of buffer S. This macro returns true if P points to something 884 ** contained within the buffer S. 885 */ 886 #define SQLITE_WITHIN(P,S,E) (((uptr)(P)>=(uptr)(S))&&((uptr)(P)<(uptr)(E))) 887 888 889 /* 890 ** Macros to determine whether the machine is big or little endian, 891 ** and whether or not that determination is run-time or compile-time. 892 ** 893 ** For best performance, an attempt is made to guess at the byte-order 894 ** using C-preprocessor macros. If that is unsuccessful, or if 895 ** -DSQLITE_BYTEORDER=0 is set, then byte-order is determined 896 ** at run-time. 897 */ 898 #ifndef SQLITE_BYTEORDER 899 # if defined(i386) || defined(__i386__) || defined(_M_IX86) || \ 900 defined(__x86_64) || defined(__x86_64__) || defined(_M_X64) || \ 901 defined(_M_AMD64) || defined(_M_ARM) || defined(__x86) || \ 902 defined(__ARMEL__) || defined(__AARCH64EL__) || defined(_M_ARM64) 903 # define SQLITE_BYTEORDER 1234 904 # elif defined(sparc) || defined(__ppc__) || \ 905 defined(__ARMEB__) || defined(__AARCH64EB__) 906 # define SQLITE_BYTEORDER 4321 907 # else 908 # define SQLITE_BYTEORDER 0 909 # endif 910 #endif 911 #if SQLITE_BYTEORDER==4321 912 # define SQLITE_BIGENDIAN 1 913 # define SQLITE_LITTLEENDIAN 0 914 # define SQLITE_UTF16NATIVE SQLITE_UTF16BE 915 #elif SQLITE_BYTEORDER==1234 916 # define SQLITE_BIGENDIAN 0 917 # define SQLITE_LITTLEENDIAN 1 918 # define SQLITE_UTF16NATIVE SQLITE_UTF16LE 919 #else 920 # ifdef SQLITE_AMALGAMATION 921 const int sqlite3one = 1; 922 # else 923 extern const int sqlite3one; 924 # endif 925 # define SQLITE_BIGENDIAN (*(char *)(&sqlite3one)==0) 926 # define SQLITE_LITTLEENDIAN (*(char *)(&sqlite3one)==1) 927 # define SQLITE_UTF16NATIVE (SQLITE_BIGENDIAN?SQLITE_UTF16BE:SQLITE_UTF16LE) 928 #endif 929 930 /* 931 ** Constants for the largest and smallest possible 64-bit signed integers. 932 ** These macros are designed to work correctly on both 32-bit and 64-bit 933 ** compilers. 934 */ 935 #define LARGEST_INT64 (0xffffffff|(((i64)0x7fffffff)<<32)) 936 #define LARGEST_UINT64 (0xffffffff|(((u64)0xffffffff)<<32)) 937 #define SMALLEST_INT64 (((i64)-1) - LARGEST_INT64) 938 939 /* 940 ** Round up a number to the next larger multiple of 8. This is used 941 ** to force 8-byte alignment on 64-bit architectures. 942 ** 943 ** ROUND8() always does the rounding, for any argument. 944 ** 945 ** ROUND8P() assumes that the argument is already an integer number of 946 ** pointers in size, and so it is a no-op on systems where the pointer 947 ** size is 8. 948 */ 949 #define ROUND8(x) (((x)+7)&~7) 950 #if SQLITE_PTRSIZE==8 951 # define ROUND8P(x) (x) 952 #else 953 # define ROUND8P(x) (((x)+7)&~7) 954 #endif 955 956 /* 957 ** Round down to the nearest multiple of 8 958 */ 959 #define ROUNDDOWN8(x) ((x)&~7) 960 961 /* 962 ** Assert that the pointer X is aligned to an 8-byte boundary. This 963 ** macro is used only within assert() to verify that the code gets 964 ** all alignment restrictions correct. 965 ** 966 ** Except, if SQLITE_4_BYTE_ALIGNED_MALLOC is defined, then the 967 ** underlying malloc() implementation might return us 4-byte aligned 968 ** pointers. In that case, only verify 4-byte alignment. 969 */ 970 #ifdef SQLITE_4_BYTE_ALIGNED_MALLOC 971 # define EIGHT_BYTE_ALIGNMENT(X) ((((char*)(X) - (char*)0)&3)==0) 972 #else 973 # define EIGHT_BYTE_ALIGNMENT(X) ((((char*)(X) - (char*)0)&7)==0) 974 #endif 975 976 /* 977 ** Disable MMAP on platforms where it is known to not work 978 */ 979 #if defined(__OpenBSD__) || defined(__QNXNTO__) 980 # undef SQLITE_MAX_MMAP_SIZE 981 # define SQLITE_MAX_MMAP_SIZE 0 982 #endif 983 984 /* 985 ** Default maximum size of memory used by memory-mapped I/O in the VFS 986 */ 987 #ifdef __APPLE__ 988 # include <TargetConditionals.h> 989 #endif 990 #ifndef SQLITE_MAX_MMAP_SIZE 991 # if defined(__linux__) \ 992 || defined(_WIN32) \ 993 || (defined(__APPLE__) && defined(__MACH__)) \ 994 || defined(__sun) \ 995 || defined(__FreeBSD__) \ 996 || defined(__DragonFly__) 997 # define SQLITE_MAX_MMAP_SIZE 0x7fff0000 /* 2147418112 */ 998 # else 999 # define SQLITE_MAX_MMAP_SIZE 0 1000 # endif 1001 #endif 1002 1003 /* 1004 ** The default MMAP_SIZE is zero on all platforms. Or, even if a larger 1005 ** default MMAP_SIZE is specified at compile-time, make sure that it does 1006 ** not exceed the maximum mmap size. 1007 */ 1008 #ifndef SQLITE_DEFAULT_MMAP_SIZE 1009 # define SQLITE_DEFAULT_MMAP_SIZE 0 1010 #endif 1011 #if SQLITE_DEFAULT_MMAP_SIZE>SQLITE_MAX_MMAP_SIZE 1012 # undef SQLITE_DEFAULT_MMAP_SIZE 1013 # define SQLITE_DEFAULT_MMAP_SIZE SQLITE_MAX_MMAP_SIZE 1014 #endif 1015 1016 /* 1017 ** TREETRACE_ENABLED will be either 1 or 0 depending on whether or not 1018 ** the Abstract Syntax Tree tracing logic is turned on. 1019 */ 1020 #if !defined(SQLITE_AMALGAMATION) 1021 extern u32 sqlite3TreeTrace; 1022 #endif 1023 #if defined(SQLITE_DEBUG) \ 1024 && (defined(SQLITE_TEST) || defined(SQLITE_ENABLE_SELECTTRACE) \ 1025 || defined(SQLITE_ENABLE_TREETRACE)) 1026 # define TREETRACE_ENABLED 1 1027 # define SELECTTRACE(K,P,S,X) \ 1028 if(sqlite3TreeTrace&(K)) \ 1029 sqlite3DebugPrintf("%u/%d/%p: ",(S)->selId,(P)->addrExplain,(S)),\ 1030 sqlite3DebugPrintf X 1031 #else 1032 # define SELECTTRACE(K,P,S,X) 1033 # define TREETRACE_ENABLED 0 1034 #endif 1035 1036 /* 1037 ** Macros for "wheretrace" 1038 */ 1039 extern u32 sqlite3WhereTrace; 1040 #if defined(SQLITE_DEBUG) \ 1041 && (defined(SQLITE_TEST) || defined(SQLITE_ENABLE_WHERETRACE)) 1042 # define WHERETRACE(K,X) if(sqlite3WhereTrace&(K)) sqlite3DebugPrintf X 1043 # define WHERETRACE_ENABLED 1 1044 #else 1045 # define WHERETRACE(K,X) 1046 #endif 1047 1048 1049 /* 1050 ** An instance of the following structure is used to store the busy-handler 1051 ** callback for a given sqlite handle. 1052 ** 1053 ** The sqlite.busyHandler member of the sqlite struct contains the busy 1054 ** callback for the database handle. Each pager opened via the sqlite 1055 ** handle is passed a pointer to sqlite.busyHandler. The busy-handler 1056 ** callback is currently invoked only from within pager.c. 1057 */ 1058 typedef struct BusyHandler BusyHandler; 1059 struct BusyHandler { 1060 int (*xBusyHandler)(void *,int); /* The busy callback */ 1061 void *pBusyArg; /* First arg to busy callback */ 1062 int nBusy; /* Incremented with each busy call */ 1063 }; 1064 1065 /* 1066 ** Name of table that holds the database schema. 1067 ** 1068 ** The PREFERRED names are used whereever possible. But LEGACY is also 1069 ** used for backwards compatibility. 1070 ** 1071 ** 1. Queries can use either the PREFERRED or the LEGACY names 1072 ** 2. The sqlite3_set_authorizer() callback uses the LEGACY name 1073 ** 3. The PRAGMA table_list statement uses the PREFERRED name 1074 ** 1075 ** The LEGACY names are stored in the internal symbol hash table 1076 ** in support of (2). Names are translated using sqlite3PreferredTableName() 1077 ** for (3). The sqlite3FindTable() function takes care of translating 1078 ** names for (1). 1079 ** 1080 ** Note that "sqlite_temp_schema" can also be called "temp.sqlite_schema". 1081 */ 1082 #define LEGACY_SCHEMA_TABLE "sqlite_master" 1083 #define LEGACY_TEMP_SCHEMA_TABLE "sqlite_temp_master" 1084 #define PREFERRED_SCHEMA_TABLE "sqlite_schema" 1085 #define PREFERRED_TEMP_SCHEMA_TABLE "sqlite_temp_schema" 1086 1087 1088 /* 1089 ** The root-page of the schema table. 1090 */ 1091 #define SCHEMA_ROOT 1 1092 1093 /* 1094 ** The name of the schema table. The name is different for TEMP. 1095 */ 1096 #define SCHEMA_TABLE(x) \ 1097 ((!OMIT_TEMPDB)&&(x==1)?LEGACY_TEMP_SCHEMA_TABLE:LEGACY_SCHEMA_TABLE) 1098 1099 /* 1100 ** A convenience macro that returns the number of elements in 1101 ** an array. 1102 */ 1103 #define ArraySize(X) ((int)(sizeof(X)/sizeof(X[0]))) 1104 1105 /* 1106 ** Determine if the argument is a power of two 1107 */ 1108 #define IsPowerOfTwo(X) (((X)&((X)-1))==0) 1109 1110 /* 1111 ** The following value as a destructor means to use sqlite3DbFree(). 1112 ** The sqlite3DbFree() routine requires two parameters instead of the 1113 ** one parameter that destructors normally want. So we have to introduce 1114 ** this magic value that the code knows to handle differently. Any 1115 ** pointer will work here as long as it is distinct from SQLITE_STATIC 1116 ** and SQLITE_TRANSIENT. 1117 */ 1118 #define SQLITE_DYNAMIC ((sqlite3_destructor_type)sqlite3OomClear) 1119 1120 /* 1121 ** When SQLITE_OMIT_WSD is defined, it means that the target platform does 1122 ** not support Writable Static Data (WSD) such as global and static variables. 1123 ** All variables must either be on the stack or dynamically allocated from 1124 ** the heap. When WSD is unsupported, the variable declarations scattered 1125 ** throughout the SQLite code must become constants instead. The SQLITE_WSD 1126 ** macro is used for this purpose. And instead of referencing the variable 1127 ** directly, we use its constant as a key to lookup the run-time allocated 1128 ** buffer that holds real variable. The constant is also the initializer 1129 ** for the run-time allocated buffer. 1130 ** 1131 ** In the usual case where WSD is supported, the SQLITE_WSD and GLOBAL 1132 ** macros become no-ops and have zero performance impact. 1133 */ 1134 #ifdef SQLITE_OMIT_WSD 1135 #define SQLITE_WSD const 1136 #define GLOBAL(t,v) (*(t*)sqlite3_wsd_find((void*)&(v), sizeof(v))) 1137 #define sqlite3GlobalConfig GLOBAL(struct Sqlite3Config, sqlite3Config) 1138 int sqlite3_wsd_init(int N, int J); 1139 void *sqlite3_wsd_find(void *K, int L); 1140 #else 1141 #define SQLITE_WSD 1142 #define GLOBAL(t,v) v 1143 #define sqlite3GlobalConfig sqlite3Config 1144 #endif 1145 1146 /* 1147 ** The following macros are used to suppress compiler warnings and to 1148 ** make it clear to human readers when a function parameter is deliberately 1149 ** left unused within the body of a function. This usually happens when 1150 ** a function is called via a function pointer. For example the 1151 ** implementation of an SQL aggregate step callback may not use the 1152 ** parameter indicating the number of arguments passed to the aggregate, 1153 ** if it knows that this is enforced elsewhere. 1154 ** 1155 ** When a function parameter is not used at all within the body of a function, 1156 ** it is generally named "NotUsed" or "NotUsed2" to make things even clearer. 1157 ** However, these macros may also be used to suppress warnings related to 1158 ** parameters that may or may not be used depending on compilation options. 1159 ** For example those parameters only used in assert() statements. In these 1160 ** cases the parameters are named as per the usual conventions. 1161 */ 1162 #define UNUSED_PARAMETER(x) (void)(x) 1163 #define UNUSED_PARAMETER2(x,y) UNUSED_PARAMETER(x),UNUSED_PARAMETER(y) 1164 1165 /* 1166 ** Forward references to structures 1167 */ 1168 typedef struct AggInfo AggInfo; 1169 typedef struct AuthContext AuthContext; 1170 typedef struct AutoincInfo AutoincInfo; 1171 typedef struct Bitvec Bitvec; 1172 typedef struct CollSeq CollSeq; 1173 typedef struct Column Column; 1174 typedef struct Cte Cte; 1175 typedef struct CteUse CteUse; 1176 typedef struct Db Db; 1177 typedef struct DbFixer DbFixer; 1178 typedef struct Schema Schema; 1179 typedef struct Expr Expr; 1180 typedef struct ExprList ExprList; 1181 typedef struct FKey FKey; 1182 typedef struct FuncDestructor FuncDestructor; 1183 typedef struct FuncDef FuncDef; 1184 typedef struct FuncDefHash FuncDefHash; 1185 typedef struct IdList IdList; 1186 typedef struct Index Index; 1187 typedef struct IndexSample IndexSample; 1188 typedef struct KeyClass KeyClass; 1189 typedef struct KeyInfo KeyInfo; 1190 typedef struct Lookaside Lookaside; 1191 typedef struct LookasideSlot LookasideSlot; 1192 typedef struct Module Module; 1193 typedef struct NameContext NameContext; 1194 typedef struct OnOrUsing OnOrUsing; 1195 typedef struct Parse Parse; 1196 typedef struct ParseCleanup ParseCleanup; 1197 typedef struct PreUpdate PreUpdate; 1198 typedef struct PrintfArguments PrintfArguments; 1199 typedef struct RenameToken RenameToken; 1200 typedef struct Returning Returning; 1201 typedef struct RowSet RowSet; 1202 typedef struct Savepoint Savepoint; 1203 typedef struct Select Select; 1204 typedef struct SQLiteThread SQLiteThread; 1205 typedef struct SelectDest SelectDest; 1206 typedef struct SrcItem SrcItem; 1207 typedef struct SrcList SrcList; 1208 typedef struct sqlite3_str StrAccum; /* Internal alias for sqlite3_str */ 1209 typedef struct Table Table; 1210 typedef struct TableLock TableLock; 1211 typedef struct Token Token; 1212 typedef struct TreeView TreeView; 1213 typedef struct Trigger Trigger; 1214 typedef struct TriggerPrg TriggerPrg; 1215 typedef struct TriggerStep TriggerStep; 1216 typedef struct UnpackedRecord UnpackedRecord; 1217 typedef struct Upsert Upsert; 1218 typedef struct VTable VTable; 1219 typedef struct VtabCtx VtabCtx; 1220 typedef struct Walker Walker; 1221 typedef struct WhereInfo WhereInfo; 1222 typedef struct Window Window; 1223 typedef struct With With; 1224 1225 1226 /* 1227 ** The bitmask datatype defined below is used for various optimizations. 1228 ** 1229 ** Changing this from a 64-bit to a 32-bit type limits the number of 1230 ** tables in a join to 32 instead of 64. But it also reduces the size 1231 ** of the library by 738 bytes on ix86. 1232 */ 1233 #ifdef SQLITE_BITMASK_TYPE 1234 typedef SQLITE_BITMASK_TYPE Bitmask; 1235 #else 1236 typedef u64 Bitmask; 1237 #endif 1238 1239 /* 1240 ** The number of bits in a Bitmask. "BMS" means "BitMask Size". 1241 */ 1242 #define BMS ((int)(sizeof(Bitmask)*8)) 1243 1244 /* 1245 ** A bit in a Bitmask 1246 */ 1247 #define MASKBIT(n) (((Bitmask)1)<<(n)) 1248 #define MASKBIT64(n) (((u64)1)<<(n)) 1249 #define MASKBIT32(n) (((unsigned int)1)<<(n)) 1250 #define SMASKBIT32(n) ((n)<=31?((unsigned int)1)<<(n):0) 1251 #define ALLBITS ((Bitmask)-1) 1252 1253 /* A VList object records a mapping between parameters/variables/wildcards 1254 ** in the SQL statement (such as $abc, @pqr, or :xyz) and the integer 1255 ** variable number associated with that parameter. See the format description 1256 ** on the sqlite3VListAdd() routine for more information. A VList is really 1257 ** just an array of integers. 1258 */ 1259 typedef int VList; 1260 1261 /* 1262 ** Defer sourcing vdbe.h and btree.h until after the "u8" and 1263 ** "BusyHandler" typedefs. vdbe.h also requires a few of the opaque 1264 ** pointer types (i.e. FuncDef) defined above. 1265 */ 1266 #include "pager.h" 1267 #include "btree.h" 1268 #include "vdbe.h" 1269 #include "pcache.h" 1270 #include "os.h" 1271 #include "mutex.h" 1272 1273 /* The SQLITE_EXTRA_DURABLE compile-time option used to set the default 1274 ** synchronous setting to EXTRA. It is no longer supported. 1275 */ 1276 #ifdef SQLITE_EXTRA_DURABLE 1277 # warning Use SQLITE_DEFAULT_SYNCHRONOUS=3 instead of SQLITE_EXTRA_DURABLE 1278 # define SQLITE_DEFAULT_SYNCHRONOUS 3 1279 #endif 1280 1281 /* 1282 ** Default synchronous levels. 1283 ** 1284 ** Note that (for historcal reasons) the PAGER_SYNCHRONOUS_* macros differ 1285 ** from the SQLITE_DEFAULT_SYNCHRONOUS value by 1. 1286 ** 1287 ** PAGER_SYNCHRONOUS DEFAULT_SYNCHRONOUS 1288 ** OFF 1 0 1289 ** NORMAL 2 1 1290 ** FULL 3 2 1291 ** EXTRA 4 3 1292 ** 1293 ** The "PRAGMA synchronous" statement also uses the zero-based numbers. 1294 ** In other words, the zero-based numbers are used for all external interfaces 1295 ** and the one-based values are used internally. 1296 */ 1297 #ifndef SQLITE_DEFAULT_SYNCHRONOUS 1298 # define SQLITE_DEFAULT_SYNCHRONOUS 2 1299 #endif 1300 #ifndef SQLITE_DEFAULT_WAL_SYNCHRONOUS 1301 # define SQLITE_DEFAULT_WAL_SYNCHRONOUS SQLITE_DEFAULT_SYNCHRONOUS 1302 #endif 1303 1304 /* 1305 ** Each database file to be accessed by the system is an instance 1306 ** of the following structure. There are normally two of these structures 1307 ** in the sqlite.aDb[] array. aDb[0] is the main database file and 1308 ** aDb[1] is the database file used to hold temporary tables. Additional 1309 ** databases may be attached. 1310 */ 1311 struct Db { 1312 char *zDbSName; /* Name of this database. (schema name, not filename) */ 1313 Btree *pBt; /* The B*Tree structure for this database file */ 1314 u8 safety_level; /* How aggressive at syncing data to disk */ 1315 u8 bSyncSet; /* True if "PRAGMA synchronous=N" has been run */ 1316 Schema *pSchema; /* Pointer to database schema (possibly shared) */ 1317 }; 1318 1319 /* 1320 ** An instance of the following structure stores a database schema. 1321 ** 1322 ** Most Schema objects are associated with a Btree. The exception is 1323 ** the Schema for the TEMP databaes (sqlite3.aDb[1]) which is free-standing. 1324 ** In shared cache mode, a single Schema object can be shared by multiple 1325 ** Btrees that refer to the same underlying BtShared object. 1326 ** 1327 ** Schema objects are automatically deallocated when the last Btree that 1328 ** references them is destroyed. The TEMP Schema is manually freed by 1329 ** sqlite3_close(). 1330 * 1331 ** A thread must be holding a mutex on the corresponding Btree in order 1332 ** to access Schema content. This implies that the thread must also be 1333 ** holding a mutex on the sqlite3 connection pointer that owns the Btree. 1334 ** For a TEMP Schema, only the connection mutex is required. 1335 */ 1336 struct Schema { 1337 int schema_cookie; /* Database schema version number for this file */ 1338 int iGeneration; /* Generation counter. Incremented with each change */ 1339 Hash tblHash; /* All tables indexed by name */ 1340 Hash idxHash; /* All (named) indices indexed by name */ 1341 Hash trigHash; /* All triggers indexed by name */ 1342 Hash fkeyHash; /* All foreign keys by referenced table name */ 1343 Table *pSeqTab; /* The sqlite_sequence table used by AUTOINCREMENT */ 1344 u8 file_format; /* Schema format version for this file */ 1345 u8 enc; /* Text encoding used by this database */ 1346 u16 schemaFlags; /* Flags associated with this schema */ 1347 int cache_size; /* Number of pages to use in the cache */ 1348 }; 1349 1350 /* 1351 ** These macros can be used to test, set, or clear bits in the 1352 ** Db.pSchema->flags field. 1353 */ 1354 #define DbHasProperty(D,I,P) (((D)->aDb[I].pSchema->schemaFlags&(P))==(P)) 1355 #define DbHasAnyProperty(D,I,P) (((D)->aDb[I].pSchema->schemaFlags&(P))!=0) 1356 #define DbSetProperty(D,I,P) (D)->aDb[I].pSchema->schemaFlags|=(P) 1357 #define DbClearProperty(D,I,P) (D)->aDb[I].pSchema->schemaFlags&=~(P) 1358 1359 /* 1360 ** Allowed values for the DB.pSchema->flags field. 1361 ** 1362 ** The DB_SchemaLoaded flag is set after the database schema has been 1363 ** read into internal hash tables. 1364 ** 1365 ** DB_UnresetViews means that one or more views have column names that 1366 ** have been filled out. If the schema changes, these column names might 1367 ** changes and so the view will need to be reset. 1368 */ 1369 #define DB_SchemaLoaded 0x0001 /* The schema has been loaded */ 1370 #define DB_UnresetViews 0x0002 /* Some views have defined column names */ 1371 #define DB_ResetWanted 0x0008 /* Reset the schema when nSchemaLock==0 */ 1372 1373 /* 1374 ** The number of different kinds of things that can be limited 1375 ** using the sqlite3_limit() interface. 1376 */ 1377 #define SQLITE_N_LIMIT (SQLITE_LIMIT_WORKER_THREADS+1) 1378 1379 /* 1380 ** Lookaside malloc is a set of fixed-size buffers that can be used 1381 ** to satisfy small transient memory allocation requests for objects 1382 ** associated with a particular database connection. The use of 1383 ** lookaside malloc provides a significant performance enhancement 1384 ** (approx 10%) by avoiding numerous malloc/free requests while parsing 1385 ** SQL statements. 1386 ** 1387 ** The Lookaside structure holds configuration information about the 1388 ** lookaside malloc subsystem. Each available memory allocation in 1389 ** the lookaside subsystem is stored on a linked list of LookasideSlot 1390 ** objects. 1391 ** 1392 ** Lookaside allocations are only allowed for objects that are associated 1393 ** with a particular database connection. Hence, schema information cannot 1394 ** be stored in lookaside because in shared cache mode the schema information 1395 ** is shared by multiple database connections. Therefore, while parsing 1396 ** schema information, the Lookaside.bEnabled flag is cleared so that 1397 ** lookaside allocations are not used to construct the schema objects. 1398 ** 1399 ** New lookaside allocations are only allowed if bDisable==0. When 1400 ** bDisable is greater than zero, sz is set to zero which effectively 1401 ** disables lookaside without adding a new test for the bDisable flag 1402 ** in a performance-critical path. sz should be set by to szTrue whenever 1403 ** bDisable changes back to zero. 1404 ** 1405 ** Lookaside buffers are initially held on the pInit list. As they are 1406 ** used and freed, they are added back to the pFree list. New allocations 1407 ** come off of pFree first, then pInit as a fallback. This dual-list 1408 ** allows use to compute a high-water mark - the maximum number of allocations 1409 ** outstanding at any point in the past - by subtracting the number of 1410 ** allocations on the pInit list from the total number of allocations. 1411 ** 1412 ** Enhancement on 2019-12-12: Two-size-lookaside 1413 ** The default lookaside configuration is 100 slots of 1200 bytes each. 1414 ** The larger slot sizes are important for performance, but they waste 1415 ** a lot of space, as most lookaside allocations are less than 128 bytes. 1416 ** The two-size-lookaside enhancement breaks up the lookaside allocation 1417 ** into two pools: One of 128-byte slots and the other of the default size 1418 ** (1200-byte) slots. Allocations are filled from the small-pool first, 1419 ** failing over to the full-size pool if that does not work. Thus more 1420 ** lookaside slots are available while also using less memory. 1421 ** This enhancement can be omitted by compiling with 1422 ** SQLITE_OMIT_TWOSIZE_LOOKASIDE. 1423 */ 1424 struct Lookaside { 1425 u32 bDisable; /* Only operate the lookaside when zero */ 1426 u16 sz; /* Size of each buffer in bytes */ 1427 u16 szTrue; /* True value of sz, even if disabled */ 1428 u8 bMalloced; /* True if pStart obtained from sqlite3_malloc() */ 1429 u32 nSlot; /* Number of lookaside slots allocated */ 1430 u32 anStat[3]; /* 0: hits. 1: size misses. 2: full misses */ 1431 LookasideSlot *pInit; /* List of buffers not previously used */ 1432 LookasideSlot *pFree; /* List of available buffers */ 1433 #ifndef SQLITE_OMIT_TWOSIZE_LOOKASIDE 1434 LookasideSlot *pSmallInit; /* List of small buffers not prediously used */ 1435 LookasideSlot *pSmallFree; /* List of available small buffers */ 1436 void *pMiddle; /* First byte past end of full-size buffers and 1437 ** the first byte of LOOKASIDE_SMALL buffers */ 1438 #endif /* SQLITE_OMIT_TWOSIZE_LOOKASIDE */ 1439 void *pStart; /* First byte of available memory space */ 1440 void *pEnd; /* First byte past end of available space */ 1441 }; 1442 struct LookasideSlot { 1443 LookasideSlot *pNext; /* Next buffer in the list of free buffers */ 1444 }; 1445 1446 #define DisableLookaside db->lookaside.bDisable++;db->lookaside.sz=0 1447 #define EnableLookaside db->lookaside.bDisable--;\ 1448 db->lookaside.sz=db->lookaside.bDisable?0:db->lookaside.szTrue 1449 1450 /* Size of the smaller allocations in two-size lookside */ 1451 #ifdef SQLITE_OMIT_TWOSIZE_LOOKASIDE 1452 # define LOOKASIDE_SMALL 0 1453 #else 1454 # define LOOKASIDE_SMALL 128 1455 #endif 1456 1457 /* 1458 ** A hash table for built-in function definitions. (Application-defined 1459 ** functions use a regular table table from hash.h.) 1460 ** 1461 ** Hash each FuncDef structure into one of the FuncDefHash.a[] slots. 1462 ** Collisions are on the FuncDef.u.pHash chain. Use the SQLITE_FUNC_HASH() 1463 ** macro to compute a hash on the function name. 1464 */ 1465 #define SQLITE_FUNC_HASH_SZ 23 1466 struct FuncDefHash { 1467 FuncDef *a[SQLITE_FUNC_HASH_SZ]; /* Hash table for functions */ 1468 }; 1469 #define SQLITE_FUNC_HASH(C,L) (((C)+(L))%SQLITE_FUNC_HASH_SZ) 1470 1471 #ifdef SQLITE_USER_AUTHENTICATION 1472 /* 1473 ** Information held in the "sqlite3" database connection object and used 1474 ** to manage user authentication. 1475 */ 1476 typedef struct sqlite3_userauth sqlite3_userauth; 1477 struct sqlite3_userauth { 1478 u8 authLevel; /* Current authentication level */ 1479 int nAuthPW; /* Size of the zAuthPW in bytes */ 1480 char *zAuthPW; /* Password used to authenticate */ 1481 char *zAuthUser; /* User name used to authenticate */ 1482 }; 1483 1484 /* Allowed values for sqlite3_userauth.authLevel */ 1485 #define UAUTH_Unknown 0 /* Authentication not yet checked */ 1486 #define UAUTH_Fail 1 /* User authentication failed */ 1487 #define UAUTH_User 2 /* Authenticated as a normal user */ 1488 #define UAUTH_Admin 3 /* Authenticated as an administrator */ 1489 1490 /* Functions used only by user authorization logic */ 1491 int sqlite3UserAuthTable(const char*); 1492 int sqlite3UserAuthCheckLogin(sqlite3*,const char*,u8*); 1493 void sqlite3UserAuthInit(sqlite3*); 1494 void sqlite3CryptFunc(sqlite3_context*,int,sqlite3_value**); 1495 1496 #endif /* SQLITE_USER_AUTHENTICATION */ 1497 1498 /* 1499 ** typedef for the authorization callback function. 1500 */ 1501 #ifdef SQLITE_USER_AUTHENTICATION 1502 typedef int (*sqlite3_xauth)(void*,int,const char*,const char*,const char*, 1503 const char*, const char*); 1504 #else 1505 typedef int (*sqlite3_xauth)(void*,int,const char*,const char*,const char*, 1506 const char*); 1507 #endif 1508 1509 #ifndef SQLITE_OMIT_DEPRECATED 1510 /* This is an extra SQLITE_TRACE macro that indicates "legacy" tracing 1511 ** in the style of sqlite3_trace() 1512 */ 1513 #define SQLITE_TRACE_LEGACY 0x40 /* Use the legacy xTrace */ 1514 #define SQLITE_TRACE_XPROFILE 0x80 /* Use the legacy xProfile */ 1515 #else 1516 #define SQLITE_TRACE_LEGACY 0 1517 #define SQLITE_TRACE_XPROFILE 0 1518 #endif /* SQLITE_OMIT_DEPRECATED */ 1519 #define SQLITE_TRACE_NONLEGACY_MASK 0x0f /* Normal flags */ 1520 1521 /* 1522 ** Maximum number of sqlite3.aDb[] entries. This is the number of attached 1523 ** databases plus 2 for "main" and "temp". 1524 */ 1525 #define SQLITE_MAX_DB (SQLITE_MAX_ATTACHED+2) 1526 1527 /* 1528 ** Each database connection is an instance of the following structure. 1529 */ 1530 struct sqlite3 { 1531 sqlite3_vfs *pVfs; /* OS Interface */ 1532 struct Vdbe *pVdbe; /* List of active virtual machines */ 1533 CollSeq *pDfltColl; /* BINARY collseq for the database encoding */ 1534 sqlite3_mutex *mutex; /* Connection mutex */ 1535 Db *aDb; /* All backends */ 1536 int nDb; /* Number of backends currently in use */ 1537 u32 mDbFlags; /* flags recording internal state */ 1538 u64 flags; /* flags settable by pragmas. See below */ 1539 i64 lastRowid; /* ROWID of most recent insert (see above) */ 1540 i64 szMmap; /* Default mmap_size setting */ 1541 u32 nSchemaLock; /* Do not reset the schema when non-zero */ 1542 unsigned int openFlags; /* Flags passed to sqlite3_vfs.xOpen() */ 1543 int errCode; /* Most recent error code (SQLITE_*) */ 1544 int errByteOffset; /* Byte offset of error in SQL statement */ 1545 int errMask; /* & result codes with this before returning */ 1546 int iSysErrno; /* Errno value from last system error */ 1547 u32 dbOptFlags; /* Flags to enable/disable optimizations */ 1548 u8 enc; /* Text encoding */ 1549 u8 autoCommit; /* The auto-commit flag. */ 1550 u8 temp_store; /* 1: file 2: memory 0: default */ 1551 u8 mallocFailed; /* True if we have seen a malloc failure */ 1552 u8 bBenignMalloc; /* Do not require OOMs if true */ 1553 u8 dfltLockMode; /* Default locking-mode for attached dbs */ 1554 signed char nextAutovac; /* Autovac setting after VACUUM if >=0 */ 1555 u8 suppressErr; /* Do not issue error messages if true */ 1556 u8 vtabOnConflict; /* Value to return for s3_vtab_on_conflict() */ 1557 u8 isTransactionSavepoint; /* True if the outermost savepoint is a TS */ 1558 u8 mTrace; /* zero or more SQLITE_TRACE flags */ 1559 u8 noSharedCache; /* True if no shared-cache backends */ 1560 u8 nSqlExec; /* Number of pending OP_SqlExec opcodes */ 1561 u8 eOpenState; /* Current condition of the connection */ 1562 int nextPagesize; /* Pagesize after VACUUM if >0 */ 1563 i64 nChange; /* Value returned by sqlite3_changes() */ 1564 i64 nTotalChange; /* Value returned by sqlite3_total_changes() */ 1565 int aLimit[SQLITE_N_LIMIT]; /* Limits */ 1566 int nMaxSorterMmap; /* Maximum size of regions mapped by sorter */ 1567 struct sqlite3InitInfo { /* Information used during initialization */ 1568 Pgno newTnum; /* Rootpage of table being initialized */ 1569 u8 iDb; /* Which db file is being initialized */ 1570 u8 busy; /* TRUE if currently initializing */ 1571 unsigned orphanTrigger : 1; /* Last statement is orphaned TEMP trigger */ 1572 unsigned imposterTable : 1; /* Building an imposter table */ 1573 unsigned reopenMemdb : 1; /* ATTACH is really a reopen using MemDB */ 1574 const char **azInit; /* "type", "name", and "tbl_name" columns */ 1575 } init; 1576 int nVdbeActive; /* Number of VDBEs currently running */ 1577 int nVdbeRead; /* Number of active VDBEs that read or write */ 1578 int nVdbeWrite; /* Number of active VDBEs that read and write */ 1579 int nVdbeExec; /* Number of nested calls to VdbeExec() */ 1580 int nVDestroy; /* Number of active OP_VDestroy operations */ 1581 int nExtension; /* Number of loaded extensions */ 1582 void **aExtension; /* Array of shared library handles */ 1583 union { 1584 void (*xLegacy)(void*,const char*); /* mTrace==SQLITE_TRACE_LEGACY */ 1585 int (*xV2)(u32,void*,void*,void*); /* All other mTrace values */ 1586 } trace; 1587 void *pTraceArg; /* Argument to the trace function */ 1588 #ifndef SQLITE_OMIT_DEPRECATED 1589 void (*xProfile)(void*,const char*,u64); /* Profiling function */ 1590 void *pProfileArg; /* Argument to profile function */ 1591 #endif 1592 void *pCommitArg; /* Argument to xCommitCallback() */ 1593 int (*xCommitCallback)(void*); /* Invoked at every commit. */ 1594 void *pRollbackArg; /* Argument to xRollbackCallback() */ 1595 void (*xRollbackCallback)(void*); /* Invoked at every commit. */ 1596 void *pUpdateArg; 1597 void (*xUpdateCallback)(void*,int, const char*,const char*,sqlite_int64); 1598 void *pAutovacPagesArg; /* Client argument to autovac_pages */ 1599 void (*xAutovacDestr)(void*); /* Destructor for pAutovacPAgesArg */ 1600 unsigned int (*xAutovacPages)(void*,const char*,u32,u32,u32); 1601 Parse *pParse; /* Current parse */ 1602 #ifdef SQLITE_ENABLE_PREUPDATE_HOOK 1603 void *pPreUpdateArg; /* First argument to xPreUpdateCallback */ 1604 void (*xPreUpdateCallback)( /* Registered using sqlite3_preupdate_hook() */ 1605 void*,sqlite3*,int,char const*,char const*,sqlite3_int64,sqlite3_int64 1606 ); 1607 PreUpdate *pPreUpdate; /* Context for active pre-update callback */ 1608 #endif /* SQLITE_ENABLE_PREUPDATE_HOOK */ 1609 #ifndef SQLITE_OMIT_WAL 1610 int (*xWalCallback)(void *, sqlite3 *, const char *, int); 1611 void *pWalArg; 1612 #endif 1613 void(*xCollNeeded)(void*,sqlite3*,int eTextRep,const char*); 1614 void(*xCollNeeded16)(void*,sqlite3*,int eTextRep,const void*); 1615 void *pCollNeededArg; 1616 sqlite3_value *pErr; /* Most recent error message */ 1617 union { 1618 volatile int isInterrupted; /* True if sqlite3_interrupt has been called */ 1619 double notUsed1; /* Spacer */ 1620 } u1; 1621 Lookaside lookaside; /* Lookaside malloc configuration */ 1622 #ifndef SQLITE_OMIT_AUTHORIZATION 1623 sqlite3_xauth xAuth; /* Access authorization function */ 1624 void *pAuthArg; /* 1st argument to the access auth function */ 1625 #endif 1626 #ifndef SQLITE_OMIT_PROGRESS_CALLBACK 1627 int (*xProgress)(void *); /* The progress callback */ 1628 void *pProgressArg; /* Argument to the progress callback */ 1629 unsigned nProgressOps; /* Number of opcodes for progress callback */ 1630 #endif 1631 #ifndef SQLITE_OMIT_VIRTUALTABLE 1632 int nVTrans; /* Allocated size of aVTrans */ 1633 Hash aModule; /* populated by sqlite3_create_module() */ 1634 VtabCtx *pVtabCtx; /* Context for active vtab connect/create */ 1635 VTable **aVTrans; /* Virtual tables with open transactions */ 1636 VTable *pDisconnect; /* Disconnect these in next sqlite3_prepare() */ 1637 #endif 1638 Hash aFunc; /* Hash table of connection functions */ 1639 Hash aCollSeq; /* All collating sequences */ 1640 BusyHandler busyHandler; /* Busy callback */ 1641 Db aDbStatic[2]; /* Static space for the 2 default backends */ 1642 Savepoint *pSavepoint; /* List of active savepoints */ 1643 int nAnalysisLimit; /* Number of index rows to ANALYZE */ 1644 int busyTimeout; /* Busy handler timeout, in msec */ 1645 int nSavepoint; /* Number of non-transaction savepoints */ 1646 int nStatement; /* Number of nested statement-transactions */ 1647 i64 nDeferredCons; /* Net deferred constraints this transaction. */ 1648 i64 nDeferredImmCons; /* Net deferred immediate constraints */ 1649 int *pnBytesFreed; /* If not NULL, increment this in DbFree() */ 1650 #ifdef SQLITE_ENABLE_UNLOCK_NOTIFY 1651 /* The following variables are all protected by the STATIC_MAIN 1652 ** mutex, not by sqlite3.mutex. They are used by code in notify.c. 1653 ** 1654 ** When X.pUnlockConnection==Y, that means that X is waiting for Y to 1655 ** unlock so that it can proceed. 1656 ** 1657 ** When X.pBlockingConnection==Y, that means that something that X tried 1658 ** tried to do recently failed with an SQLITE_LOCKED error due to locks 1659 ** held by Y. 1660 */ 1661 sqlite3 *pBlockingConnection; /* Connection that caused SQLITE_LOCKED */ 1662 sqlite3 *pUnlockConnection; /* Connection to watch for unlock */ 1663 void *pUnlockArg; /* Argument to xUnlockNotify */ 1664 void (*xUnlockNotify)(void **, int); /* Unlock notify callback */ 1665 sqlite3 *pNextBlocked; /* Next in list of all blocked connections */ 1666 #endif 1667 #ifdef SQLITE_USER_AUTHENTICATION 1668 sqlite3_userauth auth; /* User authentication information */ 1669 #endif 1670 }; 1671 1672 /* 1673 ** A macro to discover the encoding of a database. 1674 */ 1675 #define SCHEMA_ENC(db) ((db)->aDb[0].pSchema->enc) 1676 #define ENC(db) ((db)->enc) 1677 1678 /* 1679 ** A u64 constant where the lower 32 bits are all zeros. Only the 1680 ** upper 32 bits are included in the argument. Necessary because some 1681 ** C-compilers still do not accept LL integer literals. 1682 */ 1683 #define HI(X) ((u64)(X)<<32) 1684 1685 /* 1686 ** Possible values for the sqlite3.flags. 1687 ** 1688 ** Value constraints (enforced via assert()): 1689 ** SQLITE_FullFSync == PAGER_FULLFSYNC 1690 ** SQLITE_CkptFullFSync == PAGER_CKPT_FULLFSYNC 1691 ** SQLITE_CacheSpill == PAGER_CACHE_SPILL 1692 */ 1693 #define SQLITE_WriteSchema 0x00000001 /* OK to update SQLITE_SCHEMA */ 1694 #define SQLITE_LegacyFileFmt 0x00000002 /* Create new databases in format 1 */ 1695 #define SQLITE_FullColNames 0x00000004 /* Show full column names on SELECT */ 1696 #define SQLITE_FullFSync 0x00000008 /* Use full fsync on the backend */ 1697 #define SQLITE_CkptFullFSync 0x00000010 /* Use full fsync for checkpoint */ 1698 #define SQLITE_CacheSpill 0x00000020 /* OK to spill pager cache */ 1699 #define SQLITE_ShortColNames 0x00000040 /* Show short columns names */ 1700 #define SQLITE_TrustedSchema 0x00000080 /* Allow unsafe functions and 1701 ** vtabs in the schema definition */ 1702 #define SQLITE_NullCallback 0x00000100 /* Invoke the callback once if the */ 1703 /* result set is empty */ 1704 #define SQLITE_IgnoreChecks 0x00000200 /* Do not enforce check constraints */ 1705 #define SQLITE_ReadUncommit 0x00000400 /* READ UNCOMMITTED in shared-cache */ 1706 #define SQLITE_NoCkptOnClose 0x00000800 /* No checkpoint on close()/DETACH */ 1707 #define SQLITE_ReverseOrder 0x00001000 /* Reverse unordered SELECTs */ 1708 #define SQLITE_RecTriggers 0x00002000 /* Enable recursive triggers */ 1709 #define SQLITE_ForeignKeys 0x00004000 /* Enforce foreign key constraints */ 1710 #define SQLITE_AutoIndex 0x00008000 /* Enable automatic indexes */ 1711 #define SQLITE_LoadExtension 0x00010000 /* Enable load_extension */ 1712 #define SQLITE_LoadExtFunc 0x00020000 /* Enable load_extension() SQL func */ 1713 #define SQLITE_EnableTrigger 0x00040000 /* True to enable triggers */ 1714 #define SQLITE_DeferFKs 0x00080000 /* Defer all FK constraints */ 1715 #define SQLITE_QueryOnly 0x00100000 /* Disable database changes */ 1716 #define SQLITE_CellSizeCk 0x00200000 /* Check btree cell sizes on load */ 1717 #define SQLITE_Fts3Tokenizer 0x00400000 /* Enable fts3_tokenizer(2) */ 1718 #define SQLITE_EnableQPSG 0x00800000 /* Query Planner Stability Guarantee*/ 1719 #define SQLITE_TriggerEQP 0x01000000 /* Show trigger EXPLAIN QUERY PLAN */ 1720 #define SQLITE_ResetDatabase 0x02000000 /* Reset the database */ 1721 #define SQLITE_LegacyAlter 0x04000000 /* Legacy ALTER TABLE behaviour */ 1722 #define SQLITE_NoSchemaError 0x08000000 /* Do not report schema parse errors*/ 1723 #define SQLITE_Defensive 0x10000000 /* Input SQL is likely hostile */ 1724 #define SQLITE_DqsDDL 0x20000000 /* dbl-quoted strings allowed in DDL*/ 1725 #define SQLITE_DqsDML 0x40000000 /* dbl-quoted strings allowed in DML*/ 1726 #define SQLITE_EnableView 0x80000000 /* Enable the use of views */ 1727 #define SQLITE_CountRows HI(0x00001) /* Count rows changed by INSERT, */ 1728 /* DELETE, or UPDATE and return */ 1729 /* the count using a callback. */ 1730 #define SQLITE_CorruptRdOnly HI(0x00002) /* Prohibit writes due to error */ 1731 1732 /* Flags used only if debugging */ 1733 #ifdef SQLITE_DEBUG 1734 #define SQLITE_SqlTrace HI(0x0100000) /* Debug print SQL as it executes */ 1735 #define SQLITE_VdbeListing HI(0x0200000) /* Debug listings of VDBE progs */ 1736 #define SQLITE_VdbeTrace HI(0x0400000) /* True to trace VDBE execution */ 1737 #define SQLITE_VdbeAddopTrace HI(0x0800000) /* Trace sqlite3VdbeAddOp() calls */ 1738 #define SQLITE_VdbeEQP HI(0x1000000) /* Debug EXPLAIN QUERY PLAN */ 1739 #define SQLITE_ParserTrace HI(0x2000000) /* PRAGMA parser_trace=ON */ 1740 #endif 1741 1742 /* 1743 ** Allowed values for sqlite3.mDbFlags 1744 */ 1745 #define DBFLAG_SchemaChange 0x0001 /* Uncommitted Hash table changes */ 1746 #define DBFLAG_PreferBuiltin 0x0002 /* Preference to built-in funcs */ 1747 #define DBFLAG_Vacuum 0x0004 /* Currently in a VACUUM */ 1748 #define DBFLAG_VacuumInto 0x0008 /* Currently running VACUUM INTO */ 1749 #define DBFLAG_SchemaKnownOk 0x0010 /* Schema is known to be valid */ 1750 #define DBFLAG_InternalFunc 0x0020 /* Allow use of internal functions */ 1751 #define DBFLAG_EncodingFixed 0x0040 /* No longer possible to change enc. */ 1752 1753 /* 1754 ** Bits of the sqlite3.dbOptFlags field that are used by the 1755 ** sqlite3_test_control(SQLITE_TESTCTRL_OPTIMIZATIONS,...) interface to 1756 ** selectively disable various optimizations. 1757 */ 1758 #define SQLITE_QueryFlattener 0x00000001 /* Query flattening */ 1759 #define SQLITE_WindowFunc 0x00000002 /* Use xInverse for window functions */ 1760 #define SQLITE_GroupByOrder 0x00000004 /* GROUPBY cover of ORDERBY */ 1761 #define SQLITE_FactorOutConst 0x00000008 /* Constant factoring */ 1762 #define SQLITE_DistinctOpt 0x00000010 /* DISTINCT using indexes */ 1763 #define SQLITE_CoverIdxScan 0x00000020 /* Covering index scans */ 1764 #define SQLITE_OrderByIdxJoin 0x00000040 /* ORDER BY of joins via index */ 1765 #define SQLITE_Transitive 0x00000080 /* Transitive constraints */ 1766 #define SQLITE_OmitNoopJoin 0x00000100 /* Omit unused tables in joins */ 1767 #define SQLITE_CountOfView 0x00000200 /* The count-of-view optimization */ 1768 #define SQLITE_CursorHints 0x00000400 /* Add OP_CursorHint opcodes */ 1769 #define SQLITE_Stat4 0x00000800 /* Use STAT4 data */ 1770 /* TH3 expects this value ^^^^^^^^^^ to be 0x0000800. Don't change it */ 1771 #define SQLITE_PushDown 0x00001000 /* The push-down optimization */ 1772 #define SQLITE_SimplifyJoin 0x00002000 /* Convert LEFT JOIN to JOIN */ 1773 #define SQLITE_SkipScan 0x00004000 /* Skip-scans */ 1774 #define SQLITE_PropagateConst 0x00008000 /* The constant propagation opt */ 1775 #define SQLITE_MinMaxOpt 0x00010000 /* The min/max optimization */ 1776 #define SQLITE_SeekScan 0x00020000 /* The OP_SeekScan optimization */ 1777 #define SQLITE_OmitOrderBy 0x00040000 /* Omit pointless ORDER BY */ 1778 /* TH3 expects this value ^^^^^^^^^^ to be 0x40000. Coordinate any change */ 1779 #define SQLITE_BloomFilter 0x00080000 /* Use a Bloom filter on searches */ 1780 #define SQLITE_BloomPulldown 0x00100000 /* Run Bloom filters early */ 1781 #define SQLITE_BalancedMerge 0x00200000 /* Balance multi-way merges */ 1782 #define SQLITE_ReleaseReg 0x00400000 /* Use OP_ReleaseReg for testing */ 1783 #define SQLITE_FlttnUnionAll 0x00800000 /* Disable the UNION ALL flattener */ 1784 /* TH3 expects this value ^^^^^^^^^^ See flatten04.test */ 1785 #define SQLITE_AllOpts 0xffffffff /* All optimizations */ 1786 1787 /* 1788 ** Macros for testing whether or not optimizations are enabled or disabled. 1789 */ 1790 #define OptimizationDisabled(db, mask) (((db)->dbOptFlags&(mask))!=0) 1791 #define OptimizationEnabled(db, mask) (((db)->dbOptFlags&(mask))==0) 1792 1793 /* 1794 ** Return true if it OK to factor constant expressions into the initialization 1795 ** code. The argument is a Parse object for the code generator. 1796 */ 1797 #define ConstFactorOk(P) ((P)->okConstFactor) 1798 1799 /* Possible values for the sqlite3.eOpenState field. 1800 ** The numbers are randomly selected such that a minimum of three bits must 1801 ** change to convert any number to another or to zero 1802 */ 1803 #define SQLITE_STATE_OPEN 0x76 /* Database is open */ 1804 #define SQLITE_STATE_CLOSED 0xce /* Database is closed */ 1805 #define SQLITE_STATE_SICK 0xba /* Error and awaiting close */ 1806 #define SQLITE_STATE_BUSY 0x6d /* Database currently in use */ 1807 #define SQLITE_STATE_ERROR 0xd5 /* An SQLITE_MISUSE error occurred */ 1808 #define SQLITE_STATE_ZOMBIE 0xa7 /* Close with last statement close */ 1809 1810 /* 1811 ** Each SQL function is defined by an instance of the following 1812 ** structure. For global built-in functions (ex: substr(), max(), count()) 1813 ** a pointer to this structure is held in the sqlite3BuiltinFunctions object. 1814 ** For per-connection application-defined functions, a pointer to this 1815 ** structure is held in the db->aHash hash table. 1816 ** 1817 ** The u.pHash field is used by the global built-ins. The u.pDestructor 1818 ** field is used by per-connection app-def functions. 1819 */ 1820 struct FuncDef { 1821 i8 nArg; /* Number of arguments. -1 means unlimited */ 1822 u32 funcFlags; /* Some combination of SQLITE_FUNC_* */ 1823 void *pUserData; /* User data parameter */ 1824 FuncDef *pNext; /* Next function with same name */ 1825 void (*xSFunc)(sqlite3_context*,int,sqlite3_value**); /* func or agg-step */ 1826 void (*xFinalize)(sqlite3_context*); /* Agg finalizer */ 1827 void (*xValue)(sqlite3_context*); /* Current agg value */ 1828 void (*xInverse)(sqlite3_context*,int,sqlite3_value**); /* inverse agg-step */ 1829 const char *zName; /* SQL name of the function. */ 1830 union { 1831 FuncDef *pHash; /* Next with a different name but the same hash */ 1832 FuncDestructor *pDestructor; /* Reference counted destructor function */ 1833 } u; /* pHash if SQLITE_FUNC_BUILTIN, pDestructor otherwise */ 1834 }; 1835 1836 /* 1837 ** This structure encapsulates a user-function destructor callback (as 1838 ** configured using create_function_v2()) and a reference counter. When 1839 ** create_function_v2() is called to create a function with a destructor, 1840 ** a single object of this type is allocated. FuncDestructor.nRef is set to 1841 ** the number of FuncDef objects created (either 1 or 3, depending on whether 1842 ** or not the specified encoding is SQLITE_ANY). The FuncDef.pDestructor 1843 ** member of each of the new FuncDef objects is set to point to the allocated 1844 ** FuncDestructor. 1845 ** 1846 ** Thereafter, when one of the FuncDef objects is deleted, the reference 1847 ** count on this object is decremented. When it reaches 0, the destructor 1848 ** is invoked and the FuncDestructor structure freed. 1849 */ 1850 struct FuncDestructor { 1851 int nRef; 1852 void (*xDestroy)(void *); 1853 void *pUserData; 1854 }; 1855 1856 /* 1857 ** Possible values for FuncDef.flags. Note that the _LENGTH and _TYPEOF 1858 ** values must correspond to OPFLAG_LENGTHARG and OPFLAG_TYPEOFARG. And 1859 ** SQLITE_FUNC_CONSTANT must be the same as SQLITE_DETERMINISTIC. There 1860 ** are assert() statements in the code to verify this. 1861 ** 1862 ** Value constraints (enforced via assert()): 1863 ** SQLITE_FUNC_MINMAX == NC_MinMaxAgg == SF_MinMaxAgg 1864 ** SQLITE_FUNC_ANYORDER == NC_OrderAgg == SF_OrderByReqd 1865 ** SQLITE_FUNC_LENGTH == OPFLAG_LENGTHARG 1866 ** SQLITE_FUNC_TYPEOF == OPFLAG_TYPEOFARG 1867 ** SQLITE_FUNC_CONSTANT == SQLITE_DETERMINISTIC from the API 1868 ** SQLITE_FUNC_DIRECT == SQLITE_DIRECTONLY from the API 1869 ** SQLITE_FUNC_UNSAFE == SQLITE_INNOCUOUS 1870 ** SQLITE_FUNC_ENCMASK depends on SQLITE_UTF* macros in the API 1871 */ 1872 #define SQLITE_FUNC_ENCMASK 0x0003 /* SQLITE_UTF8, SQLITE_UTF16BE or UTF16LE */ 1873 #define SQLITE_FUNC_LIKE 0x0004 /* Candidate for the LIKE optimization */ 1874 #define SQLITE_FUNC_CASE 0x0008 /* Case-sensitive LIKE-type function */ 1875 #define SQLITE_FUNC_EPHEM 0x0010 /* Ephemeral. Delete with VDBE */ 1876 #define SQLITE_FUNC_NEEDCOLL 0x0020 /* sqlite3GetFuncCollSeq() might be called*/ 1877 #define SQLITE_FUNC_LENGTH 0x0040 /* Built-in length() function */ 1878 #define SQLITE_FUNC_TYPEOF 0x0080 /* Built-in typeof() function */ 1879 #define SQLITE_FUNC_COUNT 0x0100 /* Built-in count(*) aggregate */ 1880 /* 0x0200 -- available for reuse */ 1881 #define SQLITE_FUNC_UNLIKELY 0x0400 /* Built-in unlikely() function */ 1882 #define SQLITE_FUNC_CONSTANT 0x0800 /* Constant inputs give a constant output */ 1883 #define SQLITE_FUNC_MINMAX 0x1000 /* True for min() and max() aggregates */ 1884 #define SQLITE_FUNC_SLOCHNG 0x2000 /* "Slow Change". Value constant during a 1885 ** single query - might change over time */ 1886 #define SQLITE_FUNC_TEST 0x4000 /* Built-in testing functions */ 1887 /* 0x8000 -- available for reuse */ 1888 #define SQLITE_FUNC_WINDOW 0x00010000 /* Built-in window-only function */ 1889 #define SQLITE_FUNC_INTERNAL 0x00040000 /* For use by NestedParse() only */ 1890 #define SQLITE_FUNC_DIRECT 0x00080000 /* Not for use in TRIGGERs or VIEWs */ 1891 #define SQLITE_FUNC_SUBTYPE 0x00100000 /* Result likely to have sub-type */ 1892 #define SQLITE_FUNC_UNSAFE 0x00200000 /* Function has side effects */ 1893 #define SQLITE_FUNC_INLINE 0x00400000 /* Functions implemented in-line */ 1894 #define SQLITE_FUNC_BUILTIN 0x00800000 /* This is a built-in function */ 1895 #define SQLITE_FUNC_ANYORDER 0x08000000 /* count/min/max aggregate */ 1896 1897 /* Identifier numbers for each in-line function */ 1898 #define INLINEFUNC_coalesce 0 1899 #define INLINEFUNC_implies_nonnull_row 1 1900 #define INLINEFUNC_expr_implies_expr 2 1901 #define INLINEFUNC_expr_compare 3 1902 #define INLINEFUNC_affinity 4 1903 #define INLINEFUNC_iif 5 1904 #define INLINEFUNC_sqlite_offset 6 1905 #define INLINEFUNC_unlikely 99 /* Default case */ 1906 1907 /* 1908 ** The following three macros, FUNCTION(), LIKEFUNC() and AGGREGATE() are 1909 ** used to create the initializers for the FuncDef structures. 1910 ** 1911 ** FUNCTION(zName, nArg, iArg, bNC, xFunc) 1912 ** Used to create a scalar function definition of a function zName 1913 ** implemented by C function xFunc that accepts nArg arguments. The 1914 ** value passed as iArg is cast to a (void*) and made available 1915 ** as the user-data (sqlite3_user_data()) for the function. If 1916 ** argument bNC is true, then the SQLITE_FUNC_NEEDCOLL flag is set. 1917 ** 1918 ** VFUNCTION(zName, nArg, iArg, bNC, xFunc) 1919 ** Like FUNCTION except it omits the SQLITE_FUNC_CONSTANT flag. 1920 ** 1921 ** SFUNCTION(zName, nArg, iArg, bNC, xFunc) 1922 ** Like FUNCTION except it omits the SQLITE_FUNC_CONSTANT flag and 1923 ** adds the SQLITE_DIRECTONLY flag. 1924 ** 1925 ** INLINE_FUNC(zName, nArg, iFuncId, mFlags) 1926 ** zName is the name of a function that is implemented by in-line 1927 ** byte code rather than by the usual callbacks. The iFuncId 1928 ** parameter determines the function id. The mFlags parameter is 1929 ** optional SQLITE_FUNC_ flags for this function. 1930 ** 1931 ** TEST_FUNC(zName, nArg, iFuncId, mFlags) 1932 ** zName is the name of a test-only function implemented by in-line 1933 ** byte code rather than by the usual callbacks. The iFuncId 1934 ** parameter determines the function id. The mFlags parameter is 1935 ** optional SQLITE_FUNC_ flags for this function. 1936 ** 1937 ** DFUNCTION(zName, nArg, iArg, bNC, xFunc) 1938 ** Like FUNCTION except it omits the SQLITE_FUNC_CONSTANT flag and 1939 ** adds the SQLITE_FUNC_SLOCHNG flag. Used for date & time functions 1940 ** and functions like sqlite_version() that can change, but not during 1941 ** a single query. The iArg is ignored. The user-data is always set 1942 ** to a NULL pointer. The bNC parameter is not used. 1943 ** 1944 ** MFUNCTION(zName, nArg, xPtr, xFunc) 1945 ** For math-library functions. xPtr is an arbitrary pointer. 1946 ** 1947 ** PURE_DATE(zName, nArg, iArg, bNC, xFunc) 1948 ** Used for "pure" date/time functions, this macro is like DFUNCTION 1949 ** except that it does set the SQLITE_FUNC_CONSTANT flags. iArg is 1950 ** ignored and the user-data for these functions is set to an 1951 ** arbitrary non-NULL pointer. The bNC parameter is not used. 1952 ** 1953 ** AGGREGATE(zName, nArg, iArg, bNC, xStep, xFinal) 1954 ** Used to create an aggregate function definition implemented by 1955 ** the C functions xStep and xFinal. The first four parameters 1956 ** are interpreted in the same way as the first 4 parameters to 1957 ** FUNCTION(). 1958 ** 1959 ** WAGGREGATE(zName, nArg, iArg, xStep, xFinal, xValue, xInverse) 1960 ** Used to create an aggregate function definition implemented by 1961 ** the C functions xStep and xFinal. The first four parameters 1962 ** are interpreted in the same way as the first 4 parameters to 1963 ** FUNCTION(). 1964 ** 1965 ** LIKEFUNC(zName, nArg, pArg, flags) 1966 ** Used to create a scalar function definition of a function zName 1967 ** that accepts nArg arguments and is implemented by a call to C 1968 ** function likeFunc. Argument pArg is cast to a (void *) and made 1969 ** available as the function user-data (sqlite3_user_data()). The 1970 ** FuncDef.flags variable is set to the value passed as the flags 1971 ** parameter. 1972 */ 1973 #define FUNCTION(zName, nArg, iArg, bNC, xFunc) \ 1974 {nArg, SQLITE_FUNC_BUILTIN|\ 1975 SQLITE_FUNC_CONSTANT|SQLITE_UTF8|(bNC*SQLITE_FUNC_NEEDCOLL), \ 1976 SQLITE_INT_TO_PTR(iArg), 0, xFunc, 0, 0, 0, #zName, {0} } 1977 #define VFUNCTION(zName, nArg, iArg, bNC, xFunc) \ 1978 {nArg, SQLITE_FUNC_BUILTIN|SQLITE_UTF8|(bNC*SQLITE_FUNC_NEEDCOLL), \ 1979 SQLITE_INT_TO_PTR(iArg), 0, xFunc, 0, 0, 0, #zName, {0} } 1980 #define SFUNCTION(zName, nArg, iArg, bNC, xFunc) \ 1981 {nArg, SQLITE_FUNC_BUILTIN|SQLITE_UTF8|SQLITE_DIRECTONLY|SQLITE_FUNC_UNSAFE, \ 1982 SQLITE_INT_TO_PTR(iArg), 0, xFunc, 0, 0, 0, #zName, {0} } 1983 #define MFUNCTION(zName, nArg, xPtr, xFunc) \ 1984 {nArg, SQLITE_FUNC_BUILTIN|SQLITE_FUNC_CONSTANT|SQLITE_UTF8, \ 1985 xPtr, 0, xFunc, 0, 0, 0, #zName, {0} } 1986 #define JFUNCTION(zName, nArg, iArg, xFunc) \ 1987 {nArg, SQLITE_FUNC_BUILTIN|SQLITE_DETERMINISTIC|SQLITE_INNOCUOUS|\ 1988 SQLITE_FUNC_CONSTANT|SQLITE_UTF8, \ 1989 SQLITE_INT_TO_PTR(iArg), 0, xFunc, 0, 0, 0, #zName, {0} } 1990 #define INLINE_FUNC(zName, nArg, iArg, mFlags) \ 1991 {nArg, SQLITE_FUNC_BUILTIN|\ 1992 SQLITE_UTF8|SQLITE_FUNC_INLINE|SQLITE_FUNC_CONSTANT|(mFlags), \ 1993 SQLITE_INT_TO_PTR(iArg), 0, noopFunc, 0, 0, 0, #zName, {0} } 1994 #define TEST_FUNC(zName, nArg, iArg, mFlags) \ 1995 {nArg, SQLITE_FUNC_BUILTIN|\ 1996 SQLITE_UTF8|SQLITE_FUNC_INTERNAL|SQLITE_FUNC_TEST| \ 1997 SQLITE_FUNC_INLINE|SQLITE_FUNC_CONSTANT|(mFlags), \ 1998 SQLITE_INT_TO_PTR(iArg), 0, noopFunc, 0, 0, 0, #zName, {0} } 1999 #define DFUNCTION(zName, nArg, iArg, bNC, xFunc) \ 2000 {nArg, SQLITE_FUNC_BUILTIN|SQLITE_FUNC_SLOCHNG|SQLITE_UTF8, \ 2001 0, 0, xFunc, 0, 0, 0, #zName, {0} } 2002 #define PURE_DATE(zName, nArg, iArg, bNC, xFunc) \ 2003 {nArg, SQLITE_FUNC_BUILTIN|\ 2004 SQLITE_FUNC_SLOCHNG|SQLITE_UTF8|SQLITE_FUNC_CONSTANT, \ 2005 (void*)&sqlite3Config, 0, xFunc, 0, 0, 0, #zName, {0} } 2006 #define FUNCTION2(zName, nArg, iArg, bNC, xFunc, extraFlags) \ 2007 {nArg, SQLITE_FUNC_BUILTIN|\ 2008 SQLITE_FUNC_CONSTANT|SQLITE_UTF8|(bNC*SQLITE_FUNC_NEEDCOLL)|extraFlags,\ 2009 SQLITE_INT_TO_PTR(iArg), 0, xFunc, 0, 0, 0, #zName, {0} } 2010 #define STR_FUNCTION(zName, nArg, pArg, bNC, xFunc) \ 2011 {nArg, SQLITE_FUNC_BUILTIN|\ 2012 SQLITE_FUNC_SLOCHNG|SQLITE_UTF8|(bNC*SQLITE_FUNC_NEEDCOLL), \ 2013 pArg, 0, xFunc, 0, 0, 0, #zName, } 2014 #define LIKEFUNC(zName, nArg, arg, flags) \ 2015 {nArg, SQLITE_FUNC_BUILTIN|SQLITE_FUNC_CONSTANT|SQLITE_UTF8|flags, \ 2016 (void *)arg, 0, likeFunc, 0, 0, 0, #zName, {0} } 2017 #define WAGGREGATE(zName, nArg, arg, nc, xStep, xFinal, xValue, xInverse, f) \ 2018 {nArg, SQLITE_FUNC_BUILTIN|SQLITE_UTF8|(nc*SQLITE_FUNC_NEEDCOLL)|f, \ 2019 SQLITE_INT_TO_PTR(arg), 0, xStep,xFinal,xValue,xInverse,#zName, {0}} 2020 #define INTERNAL_FUNCTION(zName, nArg, xFunc) \ 2021 {nArg, SQLITE_FUNC_BUILTIN|\ 2022 SQLITE_FUNC_INTERNAL|SQLITE_UTF8|SQLITE_FUNC_CONSTANT, \ 2023 0, 0, xFunc, 0, 0, 0, #zName, {0} } 2024 2025 2026 /* 2027 ** All current savepoints are stored in a linked list starting at 2028 ** sqlite3.pSavepoint. The first element in the list is the most recently 2029 ** opened savepoint. Savepoints are added to the list by the vdbe 2030 ** OP_Savepoint instruction. 2031 */ 2032 struct Savepoint { 2033 char *zName; /* Savepoint name (nul-terminated) */ 2034 i64 nDeferredCons; /* Number of deferred fk violations */ 2035 i64 nDeferredImmCons; /* Number of deferred imm fk. */ 2036 Savepoint *pNext; /* Parent savepoint (if any) */ 2037 }; 2038 2039 /* 2040 ** The following are used as the second parameter to sqlite3Savepoint(), 2041 ** and as the P1 argument to the OP_Savepoint instruction. 2042 */ 2043 #define SAVEPOINT_BEGIN 0 2044 #define SAVEPOINT_RELEASE 1 2045 #define SAVEPOINT_ROLLBACK 2 2046 2047 2048 /* 2049 ** Each SQLite module (virtual table definition) is defined by an 2050 ** instance of the following structure, stored in the sqlite3.aModule 2051 ** hash table. 2052 */ 2053 struct Module { 2054 const sqlite3_module *pModule; /* Callback pointers */ 2055 const char *zName; /* Name passed to create_module() */ 2056 int nRefModule; /* Number of pointers to this object */ 2057 void *pAux; /* pAux passed to create_module() */ 2058 void (*xDestroy)(void *); /* Module destructor function */ 2059 Table *pEpoTab; /* Eponymous table for this module */ 2060 }; 2061 2062 /* 2063 ** Information about each column of an SQL table is held in an instance 2064 ** of the Column structure, in the Table.aCol[] array. 2065 ** 2066 ** Definitions: 2067 ** 2068 ** "table column index" This is the index of the column in the 2069 ** Table.aCol[] array, and also the index of 2070 ** the column in the original CREATE TABLE stmt. 2071 ** 2072 ** "storage column index" This is the index of the column in the 2073 ** record BLOB generated by the OP_MakeRecord 2074 ** opcode. The storage column index is less than 2075 ** or equal to the table column index. It is 2076 ** equal if and only if there are no VIRTUAL 2077 ** columns to the left. 2078 ** 2079 ** Notes on zCnName: 2080 ** The zCnName field stores the name of the column, the datatype of the 2081 ** column, and the collating sequence for the column, in that order, all in 2082 ** a single allocation. Each string is 0x00 terminated. The datatype 2083 ** is only included if the COLFLAG_HASTYPE bit of colFlags is set and the 2084 ** collating sequence name is only included if the COLFLAG_HASCOLL bit is 2085 ** set. 2086 */ 2087 struct Column { 2088 char *zCnName; /* Name of this column */ 2089 unsigned notNull :4; /* An OE_ code for handling a NOT NULL constraint */ 2090 unsigned eCType :4; /* One of the standard types */ 2091 char affinity; /* One of the SQLITE_AFF_... values */ 2092 u8 szEst; /* Est size of value in this column. sizeof(INT)==1 */ 2093 u8 hName; /* Column name hash for faster lookup */ 2094 u16 iDflt; /* 1-based index of DEFAULT. 0 means "none" */ 2095 u16 colFlags; /* Boolean properties. See COLFLAG_ defines below */ 2096 }; 2097 2098 /* Allowed values for Column.eCType. 2099 ** 2100 ** Values must match entries in the global constant arrays 2101 ** sqlite3StdTypeLen[] and sqlite3StdType[]. Each value is one more 2102 ** than the offset into these arrays for the corresponding name. 2103 ** Adjust the SQLITE_N_STDTYPE value if adding or removing entries. 2104 */ 2105 #define COLTYPE_CUSTOM 0 /* Type appended to zName */ 2106 #define COLTYPE_ANY 1 2107 #define COLTYPE_BLOB 2 2108 #define COLTYPE_INT 3 2109 #define COLTYPE_INTEGER 4 2110 #define COLTYPE_REAL 5 2111 #define COLTYPE_TEXT 6 2112 #define SQLITE_N_STDTYPE 6 /* Number of standard types */ 2113 2114 /* Allowed values for Column.colFlags. 2115 ** 2116 ** Constraints: 2117 ** TF_HasVirtual == COLFLAG_VIRTUAL 2118 ** TF_HasStored == COLFLAG_STORED 2119 ** TF_HasHidden == COLFLAG_HIDDEN 2120 */ 2121 #define COLFLAG_PRIMKEY 0x0001 /* Column is part of the primary key */ 2122 #define COLFLAG_HIDDEN 0x0002 /* A hidden column in a virtual table */ 2123 #define COLFLAG_HASTYPE 0x0004 /* Type name follows column name */ 2124 #define COLFLAG_UNIQUE 0x0008 /* Column def contains "UNIQUE" or "PK" */ 2125 #define COLFLAG_SORTERREF 0x0010 /* Use sorter-refs with this column */ 2126 #define COLFLAG_VIRTUAL 0x0020 /* GENERATED ALWAYS AS ... VIRTUAL */ 2127 #define COLFLAG_STORED 0x0040 /* GENERATED ALWAYS AS ... STORED */ 2128 #define COLFLAG_NOTAVAIL 0x0080 /* STORED column not yet calculated */ 2129 #define COLFLAG_BUSY 0x0100 /* Blocks recursion on GENERATED columns */ 2130 #define COLFLAG_HASCOLL 0x0200 /* Has collating sequence name in zCnName */ 2131 #define COLFLAG_NOEXPAND 0x0400 /* Omit this column when expanding "*" */ 2132 #define COLFLAG_GENERATED 0x0060 /* Combo: _STORED, _VIRTUAL */ 2133 #define COLFLAG_NOINSERT 0x0062 /* Combo: _HIDDEN, _STORED, _VIRTUAL */ 2134 2135 /* 2136 ** A "Collating Sequence" is defined by an instance of the following 2137 ** structure. Conceptually, a collating sequence consists of a name and 2138 ** a comparison routine that defines the order of that sequence. 2139 ** 2140 ** If CollSeq.xCmp is NULL, it means that the 2141 ** collating sequence is undefined. Indices built on an undefined 2142 ** collating sequence may not be read or written. 2143 */ 2144 struct CollSeq { 2145 char *zName; /* Name of the collating sequence, UTF-8 encoded */ 2146 u8 enc; /* Text encoding handled by xCmp() */ 2147 void *pUser; /* First argument to xCmp() */ 2148 int (*xCmp)(void*,int, const void*, int, const void*); 2149 void (*xDel)(void*); /* Destructor for pUser */ 2150 }; 2151 2152 /* 2153 ** A sort order can be either ASC or DESC. 2154 */ 2155 #define SQLITE_SO_ASC 0 /* Sort in ascending order */ 2156 #define SQLITE_SO_DESC 1 /* Sort in ascending order */ 2157 #define SQLITE_SO_UNDEFINED -1 /* No sort order specified */ 2158 2159 /* 2160 ** Column affinity types. 2161 ** 2162 ** These used to have mnemonic name like 'i' for SQLITE_AFF_INTEGER and 2163 ** 't' for SQLITE_AFF_TEXT. But we can save a little space and improve 2164 ** the speed a little by numbering the values consecutively. 2165 ** 2166 ** But rather than start with 0 or 1, we begin with 'A'. That way, 2167 ** when multiple affinity types are concatenated into a string and 2168 ** used as the P4 operand, they will be more readable. 2169 ** 2170 ** Note also that the numeric types are grouped together so that testing 2171 ** for a numeric type is a single comparison. And the BLOB type is first. 2172 */ 2173 #define SQLITE_AFF_NONE 0x40 /* '@' */ 2174 #define SQLITE_AFF_BLOB 0x41 /* 'A' */ 2175 #define SQLITE_AFF_TEXT 0x42 /* 'B' */ 2176 #define SQLITE_AFF_NUMERIC 0x43 /* 'C' */ 2177 #define SQLITE_AFF_INTEGER 0x44 /* 'D' */ 2178 #define SQLITE_AFF_REAL 0x45 /* 'E' */ 2179 2180 #define sqlite3IsNumericAffinity(X) ((X)>=SQLITE_AFF_NUMERIC) 2181 2182 /* 2183 ** The SQLITE_AFF_MASK values masks off the significant bits of an 2184 ** affinity value. 2185 */ 2186 #define SQLITE_AFF_MASK 0x47 2187 2188 /* 2189 ** Additional bit values that can be ORed with an affinity without 2190 ** changing the affinity. 2191 ** 2192 ** The SQLITE_NOTNULL flag is a combination of NULLEQ and JUMPIFNULL. 2193 ** It causes an assert() to fire if either operand to a comparison 2194 ** operator is NULL. It is added to certain comparison operators to 2195 ** prove that the operands are always NOT NULL. 2196 */ 2197 #define SQLITE_JUMPIFNULL 0x10 /* jumps if either operand is NULL */ 2198 #define SQLITE_NULLEQ 0x80 /* NULL=NULL */ 2199 #define SQLITE_NOTNULL 0x90 /* Assert that operands are never NULL */ 2200 2201 /* 2202 ** An object of this type is created for each virtual table present in 2203 ** the database schema. 2204 ** 2205 ** If the database schema is shared, then there is one instance of this 2206 ** structure for each database connection (sqlite3*) that uses the shared 2207 ** schema. This is because each database connection requires its own unique 2208 ** instance of the sqlite3_vtab* handle used to access the virtual table 2209 ** implementation. sqlite3_vtab* handles can not be shared between 2210 ** database connections, even when the rest of the in-memory database 2211 ** schema is shared, as the implementation often stores the database 2212 ** connection handle passed to it via the xConnect() or xCreate() method 2213 ** during initialization internally. This database connection handle may 2214 ** then be used by the virtual table implementation to access real tables 2215 ** within the database. So that they appear as part of the callers 2216 ** transaction, these accesses need to be made via the same database 2217 ** connection as that used to execute SQL operations on the virtual table. 2218 ** 2219 ** All VTable objects that correspond to a single table in a shared 2220 ** database schema are initially stored in a linked-list pointed to by 2221 ** the Table.pVTable member variable of the corresponding Table object. 2222 ** When an sqlite3_prepare() operation is required to access the virtual 2223 ** table, it searches the list for the VTable that corresponds to the 2224 ** database connection doing the preparing so as to use the correct 2225 ** sqlite3_vtab* handle in the compiled query. 2226 ** 2227 ** When an in-memory Table object is deleted (for example when the 2228 ** schema is being reloaded for some reason), the VTable objects are not 2229 ** deleted and the sqlite3_vtab* handles are not xDisconnect()ed 2230 ** immediately. Instead, they are moved from the Table.pVTable list to 2231 ** another linked list headed by the sqlite3.pDisconnect member of the 2232 ** corresponding sqlite3 structure. They are then deleted/xDisconnected 2233 ** next time a statement is prepared using said sqlite3*. This is done 2234 ** to avoid deadlock issues involving multiple sqlite3.mutex mutexes. 2235 ** Refer to comments above function sqlite3VtabUnlockList() for an 2236 ** explanation as to why it is safe to add an entry to an sqlite3.pDisconnect 2237 ** list without holding the corresponding sqlite3.mutex mutex. 2238 ** 2239 ** The memory for objects of this type is always allocated by 2240 ** sqlite3DbMalloc(), using the connection handle stored in VTable.db as 2241 ** the first argument. 2242 */ 2243 struct VTable { 2244 sqlite3 *db; /* Database connection associated with this table */ 2245 Module *pMod; /* Pointer to module implementation */ 2246 sqlite3_vtab *pVtab; /* Pointer to vtab instance */ 2247 int nRef; /* Number of pointers to this structure */ 2248 u8 bConstraint; /* True if constraints are supported */ 2249 u8 eVtabRisk; /* Riskiness of allowing hacker access */ 2250 int iSavepoint; /* Depth of the SAVEPOINT stack */ 2251 VTable *pNext; /* Next in linked list (see above) */ 2252 }; 2253 2254 /* Allowed values for VTable.eVtabRisk 2255 */ 2256 #define SQLITE_VTABRISK_Low 0 2257 #define SQLITE_VTABRISK_Normal 1 2258 #define SQLITE_VTABRISK_High 2 2259 2260 /* 2261 ** The schema for each SQL table, virtual table, and view is represented 2262 ** in memory by an instance of the following structure. 2263 */ 2264 struct Table { 2265 char *zName; /* Name of the table or view */ 2266 Column *aCol; /* Information about each column */ 2267 Index *pIndex; /* List of SQL indexes on this table. */ 2268 char *zColAff; /* String defining the affinity of each column */ 2269 ExprList *pCheck; /* All CHECK constraints */ 2270 /* ... also used as column name list in a VIEW */ 2271 Pgno tnum; /* Root BTree page for this table */ 2272 u32 nTabRef; /* Number of pointers to this Table */ 2273 u32 tabFlags; /* Mask of TF_* values */ 2274 i16 iPKey; /* If not negative, use aCol[iPKey] as the rowid */ 2275 i16 nCol; /* Number of columns in this table */ 2276 i16 nNVCol; /* Number of columns that are not VIRTUAL */ 2277 LogEst nRowLogEst; /* Estimated rows in table - from sqlite_stat1 table */ 2278 LogEst szTabRow; /* Estimated size of each table row in bytes */ 2279 #ifdef SQLITE_ENABLE_COSTMULT 2280 LogEst costMult; /* Cost multiplier for using this table */ 2281 #endif 2282 u8 keyConf; /* What to do in case of uniqueness conflict on iPKey */ 2283 u8 eTabType; /* 0: normal, 1: virtual, 2: view */ 2284 union { 2285 struct { /* Used by ordinary tables: */ 2286 int addColOffset; /* Offset in CREATE TABLE stmt to add a new column */ 2287 FKey *pFKey; /* Linked list of all foreign keys in this table */ 2288 ExprList *pDfltList; /* DEFAULT clauses on various columns. 2289 ** Or the AS clause for generated columns. */ 2290 } tab; 2291 struct { /* Used by views: */ 2292 Select *pSelect; /* View definition */ 2293 } view; 2294 struct { /* Used by virtual tables only: */ 2295 int nArg; /* Number of arguments to the module */ 2296 char **azArg; /* 0: module 1: schema 2: vtab name 3...: args */ 2297 VTable *p; /* List of VTable objects. */ 2298 } vtab; 2299 } u; 2300 Trigger *pTrigger; /* List of triggers on this object */ 2301 Schema *pSchema; /* Schema that contains this table */ 2302 }; 2303 2304 /* 2305 ** Allowed values for Table.tabFlags. 2306 ** 2307 ** TF_OOOHidden applies to tables or view that have hidden columns that are 2308 ** followed by non-hidden columns. Example: "CREATE VIRTUAL TABLE x USING 2309 ** vtab1(a HIDDEN, b);". Since "b" is a non-hidden column but "a" is hidden, 2310 ** the TF_OOOHidden attribute would apply in this case. Such tables require 2311 ** special handling during INSERT processing. The "OOO" means "Out Of Order". 2312 ** 2313 ** Constraints: 2314 ** 2315 ** TF_HasVirtual == COLFLAG_VIRTUAL 2316 ** TF_HasStored == COLFLAG_STORED 2317 ** TF_HasHidden == COLFLAG_HIDDEN 2318 */ 2319 #define TF_Readonly 0x00000001 /* Read-only system table */ 2320 #define TF_HasHidden 0x00000002 /* Has one or more hidden columns */ 2321 #define TF_HasPrimaryKey 0x00000004 /* Table has a primary key */ 2322 #define TF_Autoincrement 0x00000008 /* Integer primary key is autoincrement */ 2323 #define TF_HasStat1 0x00000010 /* nRowLogEst set from sqlite_stat1 */ 2324 #define TF_HasVirtual 0x00000020 /* Has one or more VIRTUAL columns */ 2325 #define TF_HasStored 0x00000040 /* Has one or more STORED columns */ 2326 #define TF_HasGenerated 0x00000060 /* Combo: HasVirtual + HasStored */ 2327 #define TF_WithoutRowid 0x00000080 /* No rowid. PRIMARY KEY is the key */ 2328 #define TF_StatsUsed 0x00000100 /* Query planner decisions affected by 2329 ** Index.aiRowLogEst[] values */ 2330 #define TF_NoVisibleRowid 0x00000200 /* No user-visible "rowid" column */ 2331 #define TF_OOOHidden 0x00000400 /* Out-of-Order hidden columns */ 2332 #define TF_HasNotNull 0x00000800 /* Contains NOT NULL constraints */ 2333 #define TF_Shadow 0x00001000 /* True for a shadow table */ 2334 #define TF_HasStat4 0x00002000 /* STAT4 info available for this table */ 2335 #define TF_Ephemeral 0x00004000 /* An ephemeral table */ 2336 #define TF_Eponymous 0x00008000 /* An eponymous virtual table */ 2337 #define TF_Strict 0x00010000 /* STRICT mode */ 2338 2339 /* 2340 ** Allowed values for Table.eTabType 2341 */ 2342 #define TABTYP_NORM 0 /* Ordinary table */ 2343 #define TABTYP_VTAB 1 /* Virtual table */ 2344 #define TABTYP_VIEW 2 /* A view */ 2345 2346 #define IsView(X) ((X)->eTabType==TABTYP_VIEW) 2347 #define IsOrdinaryTable(X) ((X)->eTabType==TABTYP_NORM) 2348 2349 /* 2350 ** Test to see whether or not a table is a virtual table. This is 2351 ** done as a macro so that it will be optimized out when virtual 2352 ** table support is omitted from the build. 2353 */ 2354 #ifndef SQLITE_OMIT_VIRTUALTABLE 2355 # define IsVirtual(X) ((X)->eTabType==TABTYP_VTAB) 2356 # define ExprIsVtab(X) \ 2357 ((X)->op==TK_COLUMN && (X)->y.pTab!=0 && (X)->y.pTab->eTabType==TABTYP_VTAB) 2358 #else 2359 # define IsVirtual(X) 0 2360 # define ExprIsVtab(X) 0 2361 #endif 2362 2363 /* 2364 ** Macros to determine if a column is hidden. IsOrdinaryHiddenColumn() 2365 ** only works for non-virtual tables (ordinary tables and views) and is 2366 ** always false unless SQLITE_ENABLE_HIDDEN_COLUMNS is defined. The 2367 ** IsHiddenColumn() macro is general purpose. 2368 */ 2369 #if defined(SQLITE_ENABLE_HIDDEN_COLUMNS) 2370 # define IsHiddenColumn(X) (((X)->colFlags & COLFLAG_HIDDEN)!=0) 2371 # define IsOrdinaryHiddenColumn(X) (((X)->colFlags & COLFLAG_HIDDEN)!=0) 2372 #elif !defined(SQLITE_OMIT_VIRTUALTABLE) 2373 # define IsHiddenColumn(X) (((X)->colFlags & COLFLAG_HIDDEN)!=0) 2374 # define IsOrdinaryHiddenColumn(X) 0 2375 #else 2376 # define IsHiddenColumn(X) 0 2377 # define IsOrdinaryHiddenColumn(X) 0 2378 #endif 2379 2380 2381 /* Does the table have a rowid */ 2382 #define HasRowid(X) (((X)->tabFlags & TF_WithoutRowid)==0) 2383 #define VisibleRowid(X) (((X)->tabFlags & TF_NoVisibleRowid)==0) 2384 2385 /* 2386 ** Each foreign key constraint is an instance of the following structure. 2387 ** 2388 ** A foreign key is associated with two tables. The "from" table is 2389 ** the table that contains the REFERENCES clause that creates the foreign 2390 ** key. The "to" table is the table that is named in the REFERENCES clause. 2391 ** Consider this example: 2392 ** 2393 ** CREATE TABLE ex1( 2394 ** a INTEGER PRIMARY KEY, 2395 ** b INTEGER CONSTRAINT fk1 REFERENCES ex2(x) 2396 ** ); 2397 ** 2398 ** For foreign key "fk1", the from-table is "ex1" and the to-table is "ex2". 2399 ** Equivalent names: 2400 ** 2401 ** from-table == child-table 2402 ** to-table == parent-table 2403 ** 2404 ** Each REFERENCES clause generates an instance of the following structure 2405 ** which is attached to the from-table. The to-table need not exist when 2406 ** the from-table is created. The existence of the to-table is not checked. 2407 ** 2408 ** The list of all parents for child Table X is held at X.pFKey. 2409 ** 2410 ** A list of all children for a table named Z (which might not even exist) 2411 ** is held in Schema.fkeyHash with a hash key of Z. 2412 */ 2413 struct FKey { 2414 Table *pFrom; /* Table containing the REFERENCES clause (aka: Child) */ 2415 FKey *pNextFrom; /* Next FKey with the same in pFrom. Next parent of pFrom */ 2416 char *zTo; /* Name of table that the key points to (aka: Parent) */ 2417 FKey *pNextTo; /* Next with the same zTo. Next child of zTo. */ 2418 FKey *pPrevTo; /* Previous with the same zTo */ 2419 int nCol; /* Number of columns in this key */ 2420 /* EV: R-30323-21917 */ 2421 u8 isDeferred; /* True if constraint checking is deferred till COMMIT */ 2422 u8 aAction[2]; /* ON DELETE and ON UPDATE actions, respectively */ 2423 Trigger *apTrigger[2];/* Triggers for aAction[] actions */ 2424 struct sColMap { /* Mapping of columns in pFrom to columns in zTo */ 2425 int iFrom; /* Index of column in pFrom */ 2426 char *zCol; /* Name of column in zTo. If NULL use PRIMARY KEY */ 2427 } aCol[1]; /* One entry for each of nCol columns */ 2428 }; 2429 2430 /* 2431 ** SQLite supports many different ways to resolve a constraint 2432 ** error. ROLLBACK processing means that a constraint violation 2433 ** causes the operation in process to fail and for the current transaction 2434 ** to be rolled back. ABORT processing means the operation in process 2435 ** fails and any prior changes from that one operation are backed out, 2436 ** but the transaction is not rolled back. FAIL processing means that 2437 ** the operation in progress stops and returns an error code. But prior 2438 ** changes due to the same operation are not backed out and no rollback 2439 ** occurs. IGNORE means that the particular row that caused the constraint 2440 ** error is not inserted or updated. Processing continues and no error 2441 ** is returned. REPLACE means that preexisting database rows that caused 2442 ** a UNIQUE constraint violation are removed so that the new insert or 2443 ** update can proceed. Processing continues and no error is reported. 2444 ** UPDATE applies to insert operations only and means that the insert 2445 ** is omitted and the DO UPDATE clause of an upsert is run instead. 2446 ** 2447 ** RESTRICT, SETNULL, SETDFLT, and CASCADE actions apply only to foreign keys. 2448 ** RESTRICT is the same as ABORT for IMMEDIATE foreign keys and the 2449 ** same as ROLLBACK for DEFERRED keys. SETNULL means that the foreign 2450 ** key is set to NULL. SETDFLT means that the foreign key is set 2451 ** to its default value. CASCADE means that a DELETE or UPDATE of the 2452 ** referenced table row is propagated into the row that holds the 2453 ** foreign key. 2454 ** 2455 ** The OE_Default value is a place holder that means to use whatever 2456 ** conflict resolution algorthm is required from context. 2457 ** 2458 ** The following symbolic values are used to record which type 2459 ** of conflict resolution action to take. 2460 */ 2461 #define OE_None 0 /* There is no constraint to check */ 2462 #define OE_Rollback 1 /* Fail the operation and rollback the transaction */ 2463 #define OE_Abort 2 /* Back out changes but do no rollback transaction */ 2464 #define OE_Fail 3 /* Stop the operation but leave all prior changes */ 2465 #define OE_Ignore 4 /* Ignore the error. Do not do the INSERT or UPDATE */ 2466 #define OE_Replace 5 /* Delete existing record, then do INSERT or UPDATE */ 2467 #define OE_Update 6 /* Process as a DO UPDATE in an upsert */ 2468 #define OE_Restrict 7 /* OE_Abort for IMMEDIATE, OE_Rollback for DEFERRED */ 2469 #define OE_SetNull 8 /* Set the foreign key value to NULL */ 2470 #define OE_SetDflt 9 /* Set the foreign key value to its default */ 2471 #define OE_Cascade 10 /* Cascade the changes */ 2472 #define OE_Default 11 /* Do whatever the default action is */ 2473 2474 2475 /* 2476 ** An instance of the following structure is passed as the first 2477 ** argument to sqlite3VdbeKeyCompare and is used to control the 2478 ** comparison of the two index keys. 2479 ** 2480 ** Note that aSortOrder[] and aColl[] have nField+1 slots. There 2481 ** are nField slots for the columns of an index then one extra slot 2482 ** for the rowid at the end. 2483 */ 2484 struct KeyInfo { 2485 u32 nRef; /* Number of references to this KeyInfo object */ 2486 u8 enc; /* Text encoding - one of the SQLITE_UTF* values */ 2487 u16 nKeyField; /* Number of key columns in the index */ 2488 u16 nAllField; /* Total columns, including key plus others */ 2489 sqlite3 *db; /* The database connection */ 2490 u8 *aSortFlags; /* Sort order for each column. */ 2491 CollSeq *aColl[1]; /* Collating sequence for each term of the key */ 2492 }; 2493 2494 /* 2495 ** Allowed bit values for entries in the KeyInfo.aSortFlags[] array. 2496 */ 2497 #define KEYINFO_ORDER_DESC 0x01 /* DESC sort order */ 2498 #define KEYINFO_ORDER_BIGNULL 0x02 /* NULL is larger than any other value */ 2499 2500 /* 2501 ** This object holds a record which has been parsed out into individual 2502 ** fields, for the purposes of doing a comparison. 2503 ** 2504 ** A record is an object that contains one or more fields of data. 2505 ** Records are used to store the content of a table row and to store 2506 ** the key of an index. A blob encoding of a record is created by 2507 ** the OP_MakeRecord opcode of the VDBE and is disassembled by the 2508 ** OP_Column opcode. 2509 ** 2510 ** An instance of this object serves as a "key" for doing a search on 2511 ** an index b+tree. The goal of the search is to find the entry that 2512 ** is closed to the key described by this object. This object might hold 2513 ** just a prefix of the key. The number of fields is given by 2514 ** pKeyInfo->nField. 2515 ** 2516 ** The r1 and r2 fields are the values to return if this key is less than 2517 ** or greater than a key in the btree, respectively. These are normally 2518 ** -1 and +1 respectively, but might be inverted to +1 and -1 if the b-tree 2519 ** is in DESC order. 2520 ** 2521 ** The key comparison functions actually return default_rc when they find 2522 ** an equals comparison. default_rc can be -1, 0, or +1. If there are 2523 ** multiple entries in the b-tree with the same key (when only looking 2524 ** at the first pKeyInfo->nFields,) then default_rc can be set to -1 to 2525 ** cause the search to find the last match, or +1 to cause the search to 2526 ** find the first match. 2527 ** 2528 ** The key comparison functions will set eqSeen to true if they ever 2529 ** get and equal results when comparing this structure to a b-tree record. 2530 ** When default_rc!=0, the search might end up on the record immediately 2531 ** before the first match or immediately after the last match. The 2532 ** eqSeen field will indicate whether or not an exact match exists in the 2533 ** b-tree. 2534 */ 2535 struct UnpackedRecord { 2536 KeyInfo *pKeyInfo; /* Collation and sort-order information */ 2537 Mem *aMem; /* Values */ 2538 union { 2539 char *z; /* Cache of aMem[0].z for vdbeRecordCompareString() */ 2540 i64 i; /* Cache of aMem[0].u.i for vdbeRecordCompareInt() */ 2541 } u; 2542 int n; /* Cache of aMem[0].n used by vdbeRecordCompareString() */ 2543 u16 nField; /* Number of entries in apMem[] */ 2544 i8 default_rc; /* Comparison result if keys are equal */ 2545 u8 errCode; /* Error detected by xRecordCompare (CORRUPT or NOMEM) */ 2546 i8 r1; /* Value to return if (lhs < rhs) */ 2547 i8 r2; /* Value to return if (lhs > rhs) */ 2548 u8 eqSeen; /* True if an equality comparison has been seen */ 2549 }; 2550 2551 2552 /* 2553 ** Each SQL index is represented in memory by an 2554 ** instance of the following structure. 2555 ** 2556 ** The columns of the table that are to be indexed are described 2557 ** by the aiColumn[] field of this structure. For example, suppose 2558 ** we have the following table and index: 2559 ** 2560 ** CREATE TABLE Ex1(c1 int, c2 int, c3 text); 2561 ** CREATE INDEX Ex2 ON Ex1(c3,c1); 2562 ** 2563 ** In the Table structure describing Ex1, nCol==3 because there are 2564 ** three columns in the table. In the Index structure describing 2565 ** Ex2, nColumn==2 since 2 of the 3 columns of Ex1 are indexed. 2566 ** The value of aiColumn is {2, 0}. aiColumn[0]==2 because the 2567 ** first column to be indexed (c3) has an index of 2 in Ex1.aCol[]. 2568 ** The second column to be indexed (c1) has an index of 0 in 2569 ** Ex1.aCol[], hence Ex2.aiColumn[1]==0. 2570 ** 2571 ** The Index.onError field determines whether or not the indexed columns 2572 ** must be unique and what to do if they are not. When Index.onError=OE_None, 2573 ** it means this is not a unique index. Otherwise it is a unique index 2574 ** and the value of Index.onError indicate the which conflict resolution 2575 ** algorithm to employ whenever an attempt is made to insert a non-unique 2576 ** element. 2577 ** 2578 ** While parsing a CREATE TABLE or CREATE INDEX statement in order to 2579 ** generate VDBE code (as opposed to parsing one read from an sqlite_schema 2580 ** table as part of parsing an existing database schema), transient instances 2581 ** of this structure may be created. In this case the Index.tnum variable is 2582 ** used to store the address of a VDBE instruction, not a database page 2583 ** number (it cannot - the database page is not allocated until the VDBE 2584 ** program is executed). See convertToWithoutRowidTable() for details. 2585 */ 2586 struct Index { 2587 char *zName; /* Name of this index */ 2588 i16 *aiColumn; /* Which columns are used by this index. 1st is 0 */ 2589 LogEst *aiRowLogEst; /* From ANALYZE: Est. rows selected by each column */ 2590 Table *pTable; /* The SQL table being indexed */ 2591 char *zColAff; /* String defining the affinity of each column */ 2592 Index *pNext; /* The next index associated with the same table */ 2593 Schema *pSchema; /* Schema containing this index */ 2594 u8 *aSortOrder; /* for each column: True==DESC, False==ASC */ 2595 const char **azColl; /* Array of collation sequence names for index */ 2596 Expr *pPartIdxWhere; /* WHERE clause for partial indices */ 2597 ExprList *aColExpr; /* Column expressions */ 2598 Pgno tnum; /* DB Page containing root of this index */ 2599 LogEst szIdxRow; /* Estimated average row size in bytes */ 2600 u16 nKeyCol; /* Number of columns forming the key */ 2601 u16 nColumn; /* Number of columns stored in the index */ 2602 u8 onError; /* OE_Abort, OE_Ignore, OE_Replace, or OE_None */ 2603 unsigned idxType:2; /* 0:Normal 1:UNIQUE, 2:PRIMARY KEY, 3:IPK */ 2604 unsigned bUnordered:1; /* Use this index for == or IN queries only */ 2605 unsigned uniqNotNull:1; /* True if UNIQUE and NOT NULL for all columns */ 2606 unsigned isResized:1; /* True if resizeIndexObject() has been called */ 2607 unsigned isCovering:1; /* True if this is a covering index */ 2608 unsigned noSkipScan:1; /* Do not try to use skip-scan if true */ 2609 unsigned hasStat1:1; /* aiRowLogEst values come from sqlite_stat1 */ 2610 unsigned bNoQuery:1; /* Do not use this index to optimize queries */ 2611 unsigned bAscKeyBug:1; /* True if the bba7b69f9849b5bf bug applies */ 2612 unsigned bHasVCol:1; /* Index references one or more VIRTUAL columns */ 2613 #ifdef SQLITE_ENABLE_STAT4 2614 int nSample; /* Number of elements in aSample[] */ 2615 int nSampleCol; /* Size of IndexSample.anEq[] and so on */ 2616 tRowcnt *aAvgEq; /* Average nEq values for keys not in aSample */ 2617 IndexSample *aSample; /* Samples of the left-most key */ 2618 tRowcnt *aiRowEst; /* Non-logarithmic stat1 data for this index */ 2619 tRowcnt nRowEst0; /* Non-logarithmic number of rows in the index */ 2620 #endif 2621 Bitmask colNotIdxed; /* 0 for unindexed columns in pTab */ 2622 }; 2623 2624 /* 2625 ** Allowed values for Index.idxType 2626 */ 2627 #define SQLITE_IDXTYPE_APPDEF 0 /* Created using CREATE INDEX */ 2628 #define SQLITE_IDXTYPE_UNIQUE 1 /* Implements a UNIQUE constraint */ 2629 #define SQLITE_IDXTYPE_PRIMARYKEY 2 /* Is the PRIMARY KEY for the table */ 2630 #define SQLITE_IDXTYPE_IPK 3 /* INTEGER PRIMARY KEY index */ 2631 2632 /* Return true if index X is a PRIMARY KEY index */ 2633 #define IsPrimaryKeyIndex(X) ((X)->idxType==SQLITE_IDXTYPE_PRIMARYKEY) 2634 2635 /* Return true if index X is a UNIQUE index */ 2636 #define IsUniqueIndex(X) ((X)->onError!=OE_None) 2637 2638 /* The Index.aiColumn[] values are normally positive integer. But 2639 ** there are some negative values that have special meaning: 2640 */ 2641 #define XN_ROWID (-1) /* Indexed column is the rowid */ 2642 #define XN_EXPR (-2) /* Indexed column is an expression */ 2643 2644 /* 2645 ** Each sample stored in the sqlite_stat4 table is represented in memory 2646 ** using a structure of this type. See documentation at the top of the 2647 ** analyze.c source file for additional information. 2648 */ 2649 struct IndexSample { 2650 void *p; /* Pointer to sampled record */ 2651 int n; /* Size of record in bytes */ 2652 tRowcnt *anEq; /* Est. number of rows where the key equals this sample */ 2653 tRowcnt *anLt; /* Est. number of rows where key is less than this sample */ 2654 tRowcnt *anDLt; /* Est. number of distinct keys less than this sample */ 2655 }; 2656 2657 /* 2658 ** Possible values to use within the flags argument to sqlite3GetToken(). 2659 */ 2660 #define SQLITE_TOKEN_QUOTED 0x1 /* Token is a quoted identifier. */ 2661 #define SQLITE_TOKEN_KEYWORD 0x2 /* Token is a keyword. */ 2662 2663 /* 2664 ** Each token coming out of the lexer is an instance of 2665 ** this structure. Tokens are also used as part of an expression. 2666 ** 2667 ** The memory that "z" points to is owned by other objects. Take care 2668 ** that the owner of the "z" string does not deallocate the string before 2669 ** the Token goes out of scope! Very often, the "z" points to some place 2670 ** in the middle of the Parse.zSql text. But it might also point to a 2671 ** static string. 2672 */ 2673 struct Token { 2674 const char *z; /* Text of the token. Not NULL-terminated! */ 2675 unsigned int n; /* Number of characters in this token */ 2676 }; 2677 2678 /* 2679 ** An instance of this structure contains information needed to generate 2680 ** code for a SELECT that contains aggregate functions. 2681 ** 2682 ** If Expr.op==TK_AGG_COLUMN or TK_AGG_FUNCTION then Expr.pAggInfo is a 2683 ** pointer to this structure. The Expr.iAgg field is the index in 2684 ** AggInfo.aCol[] or AggInfo.aFunc[] of information needed to generate 2685 ** code for that node. 2686 ** 2687 ** AggInfo.pGroupBy and AggInfo.aFunc.pExpr point to fields within the 2688 ** original Select structure that describes the SELECT statement. These 2689 ** fields do not need to be freed when deallocating the AggInfo structure. 2690 */ 2691 struct AggInfo { 2692 u8 directMode; /* Direct rendering mode means take data directly 2693 ** from source tables rather than from accumulators */ 2694 u8 useSortingIdx; /* In direct mode, reference the sorting index rather 2695 ** than the source table */ 2696 int sortingIdx; /* Cursor number of the sorting index */ 2697 int sortingIdxPTab; /* Cursor number of pseudo-table */ 2698 int nSortingColumn; /* Number of columns in the sorting index */ 2699 int mnReg, mxReg; /* Range of registers allocated for aCol and aFunc */ 2700 ExprList *pGroupBy; /* The group by clause */ 2701 struct AggInfo_col { /* For each column used in source tables */ 2702 Table *pTab; /* Source table */ 2703 Expr *pCExpr; /* The original expression */ 2704 int iTable; /* Cursor number of the source table */ 2705 int iMem; /* Memory location that acts as accumulator */ 2706 i16 iColumn; /* Column number within the source table */ 2707 i16 iSorterColumn; /* Column number in the sorting index */ 2708 } *aCol; 2709 int nColumn; /* Number of used entries in aCol[] */ 2710 int nAccumulator; /* Number of columns that show through to the output. 2711 ** Additional columns are used only as parameters to 2712 ** aggregate functions */ 2713 struct AggInfo_func { /* For each aggregate function */ 2714 Expr *pFExpr; /* Expression encoding the function */ 2715 FuncDef *pFunc; /* The aggregate function implementation */ 2716 int iMem; /* Memory location that acts as accumulator */ 2717 int iDistinct; /* Ephemeral table used to enforce DISTINCT */ 2718 int iDistAddr; /* Address of OP_OpenEphemeral */ 2719 } *aFunc; 2720 int nFunc; /* Number of entries in aFunc[] */ 2721 u32 selId; /* Select to which this AggInfo belongs */ 2722 }; 2723 2724 /* 2725 ** The datatype ynVar is a signed integer, either 16-bit or 32-bit. 2726 ** Usually it is 16-bits. But if SQLITE_MAX_VARIABLE_NUMBER is greater 2727 ** than 32767 we have to make it 32-bit. 16-bit is preferred because 2728 ** it uses less memory in the Expr object, which is a big memory user 2729 ** in systems with lots of prepared statements. And few applications 2730 ** need more than about 10 or 20 variables. But some extreme users want 2731 ** to have prepared statements with over 32766 variables, and for them 2732 ** the option is available (at compile-time). 2733 */ 2734 #if SQLITE_MAX_VARIABLE_NUMBER<32767 2735 typedef i16 ynVar; 2736 #else 2737 typedef int ynVar; 2738 #endif 2739 2740 /* 2741 ** Each node of an expression in the parse tree is an instance 2742 ** of this structure. 2743 ** 2744 ** Expr.op is the opcode. The integer parser token codes are reused 2745 ** as opcodes here. For example, the parser defines TK_GE to be an integer 2746 ** code representing the ">=" operator. This same integer code is reused 2747 ** to represent the greater-than-or-equal-to operator in the expression 2748 ** tree. 2749 ** 2750 ** If the expression is an SQL literal (TK_INTEGER, TK_FLOAT, TK_BLOB, 2751 ** or TK_STRING), then Expr.u.zToken contains the text of the SQL literal. If 2752 ** the expression is a variable (TK_VARIABLE), then Expr.u.zToken contains the 2753 ** variable name. Finally, if the expression is an SQL function (TK_FUNCTION), 2754 ** then Expr.u.zToken contains the name of the function. 2755 ** 2756 ** Expr.pRight and Expr.pLeft are the left and right subexpressions of a 2757 ** binary operator. Either or both may be NULL. 2758 ** 2759 ** Expr.x.pList is a list of arguments if the expression is an SQL function, 2760 ** a CASE expression or an IN expression of the form "<lhs> IN (<y>, <z>...)". 2761 ** Expr.x.pSelect is used if the expression is a sub-select or an expression of 2762 ** the form "<lhs> IN (SELECT ...)". If the EP_xIsSelect bit is set in the 2763 ** Expr.flags mask, then Expr.x.pSelect is valid. Otherwise, Expr.x.pList is 2764 ** valid. 2765 ** 2766 ** An expression of the form ID or ID.ID refers to a column in a table. 2767 ** For such expressions, Expr.op is set to TK_COLUMN and Expr.iTable is 2768 ** the integer cursor number of a VDBE cursor pointing to that table and 2769 ** Expr.iColumn is the column number for the specific column. If the 2770 ** expression is used as a result in an aggregate SELECT, then the 2771 ** value is also stored in the Expr.iAgg column in the aggregate so that 2772 ** it can be accessed after all aggregates are computed. 2773 ** 2774 ** If the expression is an unbound variable marker (a question mark 2775 ** character '?' in the original SQL) then the Expr.iTable holds the index 2776 ** number for that variable. 2777 ** 2778 ** If the expression is a subquery then Expr.iColumn holds an integer 2779 ** register number containing the result of the subquery. If the 2780 ** subquery gives a constant result, then iTable is -1. If the subquery 2781 ** gives a different answer at different times during statement processing 2782 ** then iTable is the address of a subroutine that computes the subquery. 2783 ** 2784 ** If the Expr is of type OP_Column, and the table it is selecting from 2785 ** is a disk table or the "old.*" pseudo-table, then pTab points to the 2786 ** corresponding table definition. 2787 ** 2788 ** ALLOCATION NOTES: 2789 ** 2790 ** Expr objects can use a lot of memory space in database schema. To 2791 ** help reduce memory requirements, sometimes an Expr object will be 2792 ** truncated. And to reduce the number of memory allocations, sometimes 2793 ** two or more Expr objects will be stored in a single memory allocation, 2794 ** together with Expr.u.zToken strings. 2795 ** 2796 ** If the EP_Reduced and EP_TokenOnly flags are set when 2797 ** an Expr object is truncated. When EP_Reduced is set, then all 2798 ** the child Expr objects in the Expr.pLeft and Expr.pRight subtrees 2799 ** are contained within the same memory allocation. Note, however, that 2800 ** the subtrees in Expr.x.pList or Expr.x.pSelect are always separately 2801 ** allocated, regardless of whether or not EP_Reduced is set. 2802 */ 2803 struct Expr { 2804 u8 op; /* Operation performed by this node */ 2805 char affExpr; /* affinity, or RAISE type */ 2806 u8 op2; /* TK_REGISTER/TK_TRUTH: original value of Expr.op 2807 ** TK_COLUMN: the value of p5 for OP_Column 2808 ** TK_AGG_FUNCTION: nesting depth 2809 ** TK_FUNCTION: NC_SelfRef flag if needs OP_PureFunc */ 2810 #ifdef SQLITE_DEBUG 2811 u8 vvaFlags; /* Verification flags. */ 2812 #endif 2813 u32 flags; /* Various flags. EP_* See below */ 2814 union { 2815 char *zToken; /* Token value. Zero terminated and dequoted */ 2816 int iValue; /* Non-negative integer value if EP_IntValue */ 2817 } u; 2818 2819 /* If the EP_TokenOnly flag is set in the Expr.flags mask, then no 2820 ** space is allocated for the fields below this point. An attempt to 2821 ** access them will result in a segfault or malfunction. 2822 *********************************************************************/ 2823 2824 Expr *pLeft; /* Left subnode */ 2825 Expr *pRight; /* Right subnode */ 2826 union { 2827 ExprList *pList; /* op = IN, EXISTS, SELECT, CASE, FUNCTION, BETWEEN */ 2828 Select *pSelect; /* EP_xIsSelect and op = IN, EXISTS, SELECT */ 2829 } x; 2830 2831 /* If the EP_Reduced flag is set in the Expr.flags mask, then no 2832 ** space is allocated for the fields below this point. An attempt to 2833 ** access them will result in a segfault or malfunction. 2834 *********************************************************************/ 2835 2836 #if SQLITE_MAX_EXPR_DEPTH>0 2837 int nHeight; /* Height of the tree headed by this node */ 2838 #endif 2839 int iTable; /* TK_COLUMN: cursor number of table holding column 2840 ** TK_REGISTER: register number 2841 ** TK_TRIGGER: 1 -> new, 0 -> old 2842 ** EP_Unlikely: 134217728 times likelihood 2843 ** TK_IN: ephemerial table holding RHS 2844 ** TK_SELECT_COLUMN: Number of columns on the LHS 2845 ** TK_SELECT: 1st register of result vector */ 2846 ynVar iColumn; /* TK_COLUMN: column index. -1 for rowid. 2847 ** TK_VARIABLE: variable number (always >= 1). 2848 ** TK_SELECT_COLUMN: column of the result vector */ 2849 i16 iAgg; /* Which entry in pAggInfo->aCol[] or ->aFunc[] */ 2850 union { 2851 int iJoin; /* If EP_OuterON or EP_InnerON, the right table */ 2852 int iOfst; /* else: start of token from start of statement */ 2853 } w; 2854 AggInfo *pAggInfo; /* Used by TK_AGG_COLUMN and TK_AGG_FUNCTION */ 2855 union { 2856 Table *pTab; /* TK_COLUMN: Table containing column. Can be NULL 2857 ** for a column of an index on an expression */ 2858 Window *pWin; /* EP_WinFunc: Window/Filter defn for a function */ 2859 struct { /* TK_IN, TK_SELECT, and TK_EXISTS */ 2860 int iAddr; /* Subroutine entry address */ 2861 int regReturn; /* Register used to hold return address */ 2862 } sub; 2863 } y; 2864 }; 2865 2866 /* The following are the meanings of bits in the Expr.flags field. 2867 ** Value restrictions: 2868 ** 2869 ** EP_Agg == NC_HasAgg == SF_HasAgg 2870 ** EP_Win == NC_HasWin 2871 */ 2872 #define EP_OuterON 0x000001 /* Originates in ON/USING clause of outer join */ 2873 #define EP_InnerON 0x000002 /* Originates in ON/USING of an inner join */ 2874 #define EP_Distinct 0x000004 /* Aggregate function with DISTINCT keyword */ 2875 #define EP_HasFunc 0x000008 /* Contains one or more functions of any kind */ 2876 #define EP_Agg 0x000010 /* Contains one or more aggregate functions */ 2877 #define EP_FixedCol 0x000020 /* TK_Column with a known fixed value */ 2878 #define EP_VarSelect 0x000040 /* pSelect is correlated, not constant */ 2879 #define EP_DblQuoted 0x000080 /* token.z was originally in "..." */ 2880 #define EP_InfixFunc 0x000100 /* True for an infix function: LIKE, GLOB, etc */ 2881 #define EP_Collate 0x000200 /* Tree contains a TK_COLLATE operator */ 2882 #define EP_Commuted 0x000400 /* Comparison operator has been commuted */ 2883 #define EP_IntValue 0x000800 /* Integer value contained in u.iValue */ 2884 #define EP_xIsSelect 0x001000 /* x.pSelect is valid (otherwise x.pList is) */ 2885 #define EP_Skip 0x002000 /* Operator does not contribute to affinity */ 2886 #define EP_Reduced 0x004000 /* Expr struct EXPR_REDUCEDSIZE bytes only */ 2887 #define EP_Win 0x008000 /* Contains window functions */ 2888 #define EP_TokenOnly 0x010000 /* Expr struct EXPR_TOKENONLYSIZE bytes only */ 2889 /* 0x020000 // Available for reuse */ 2890 #define EP_IfNullRow 0x040000 /* The TK_IF_NULL_ROW opcode */ 2891 #define EP_Unlikely 0x080000 /* unlikely() or likelihood() function */ 2892 #define EP_ConstFunc 0x100000 /* A SQLITE_FUNC_CONSTANT or _SLOCHNG function */ 2893 #define EP_CanBeNull 0x200000 /* Can be null despite NOT NULL constraint */ 2894 #define EP_Subquery 0x400000 /* Tree contains a TK_SELECT operator */ 2895 #define EP_Leaf 0x800000 /* Expr.pLeft, .pRight, .u.pSelect all NULL */ 2896 #define EP_WinFunc 0x1000000 /* TK_FUNCTION with Expr.y.pWin set */ 2897 #define EP_Subrtn 0x2000000 /* Uses Expr.y.sub. TK_IN, _SELECT, or _EXISTS */ 2898 #define EP_Quoted 0x4000000 /* TK_ID was originally quoted */ 2899 #define EP_Static 0x8000000 /* Held in memory not obtained from malloc() */ 2900 #define EP_IsTrue 0x10000000 /* Always has boolean value of TRUE */ 2901 #define EP_IsFalse 0x20000000 /* Always has boolean value of FALSE */ 2902 #define EP_FromDDL 0x40000000 /* Originates from sqlite_schema */ 2903 /* 0x80000000 // Available */ 2904 2905 /* The EP_Propagate mask is a set of properties that automatically propagate 2906 ** upwards into parent nodes. 2907 */ 2908 #define EP_Propagate (EP_Collate|EP_Subquery|EP_HasFunc) 2909 2910 /* Macros can be used to test, set, or clear bits in the 2911 ** Expr.flags field. 2912 */ 2913 #define ExprHasProperty(E,P) (((E)->flags&(P))!=0) 2914 #define ExprHasAllProperty(E,P) (((E)->flags&(P))==(P)) 2915 #define ExprSetProperty(E,P) (E)->flags|=(P) 2916 #define ExprClearProperty(E,P) (E)->flags&=~(P) 2917 #define ExprAlwaysTrue(E) (((E)->flags&(EP_OuterON|EP_IsTrue))==EP_IsTrue) 2918 #define ExprAlwaysFalse(E) (((E)->flags&(EP_OuterON|EP_IsFalse))==EP_IsFalse) 2919 2920 /* Macros used to ensure that the correct members of unions are accessed 2921 ** in Expr. 2922 */ 2923 #define ExprUseUToken(E) (((E)->flags&EP_IntValue)==0) 2924 #define ExprUseUValue(E) (((E)->flags&EP_IntValue)!=0) 2925 #define ExprUseXList(E) (((E)->flags&EP_xIsSelect)==0) 2926 #define ExprUseXSelect(E) (((E)->flags&EP_xIsSelect)!=0) 2927 #define ExprUseYTab(E) (((E)->flags&(EP_WinFunc|EP_Subrtn))==0) 2928 #define ExprUseYWin(E) (((E)->flags&EP_WinFunc)!=0) 2929 #define ExprUseYSub(E) (((E)->flags&EP_Subrtn)!=0) 2930 2931 /* Flags for use with Expr.vvaFlags 2932 */ 2933 #define EP_NoReduce 0x01 /* Cannot EXPRDUP_REDUCE this Expr */ 2934 #define EP_Immutable 0x02 /* Do not change this Expr node */ 2935 2936 /* The ExprSetVVAProperty() macro is used for Verification, Validation, 2937 ** and Accreditation only. It works like ExprSetProperty() during VVA 2938 ** processes but is a no-op for delivery. 2939 */ 2940 #ifdef SQLITE_DEBUG 2941 # define ExprSetVVAProperty(E,P) (E)->vvaFlags|=(P) 2942 # define ExprHasVVAProperty(E,P) (((E)->vvaFlags&(P))!=0) 2943 # define ExprClearVVAProperties(E) (E)->vvaFlags = 0 2944 #else 2945 # define ExprSetVVAProperty(E,P) 2946 # define ExprHasVVAProperty(E,P) 0 2947 # define ExprClearVVAProperties(E) 2948 #endif 2949 2950 /* 2951 ** Macros to determine the number of bytes required by a normal Expr 2952 ** struct, an Expr struct with the EP_Reduced flag set in Expr.flags 2953 ** and an Expr struct with the EP_TokenOnly flag set. 2954 */ 2955 #define EXPR_FULLSIZE sizeof(Expr) /* Full size */ 2956 #define EXPR_REDUCEDSIZE offsetof(Expr,iTable) /* Common features */ 2957 #define EXPR_TOKENONLYSIZE offsetof(Expr,pLeft) /* Fewer features */ 2958 2959 /* 2960 ** Flags passed to the sqlite3ExprDup() function. See the header comment 2961 ** above sqlite3ExprDup() for details. 2962 */ 2963 #define EXPRDUP_REDUCE 0x0001 /* Used reduced-size Expr nodes */ 2964 2965 /* 2966 ** True if the expression passed as an argument was a function with 2967 ** an OVER() clause (a window function). 2968 */ 2969 #ifdef SQLITE_OMIT_WINDOWFUNC 2970 # define IsWindowFunc(p) 0 2971 #else 2972 # define IsWindowFunc(p) ( \ 2973 ExprHasProperty((p), EP_WinFunc) && p->y.pWin->eFrmType!=TK_FILTER \ 2974 ) 2975 #endif 2976 2977 /* 2978 ** A list of expressions. Each expression may optionally have a 2979 ** name. An expr/name combination can be used in several ways, such 2980 ** as the list of "expr AS ID" fields following a "SELECT" or in the 2981 ** list of "ID = expr" items in an UPDATE. A list of expressions can 2982 ** also be used as the argument to a function, in which case the a.zName 2983 ** field is not used. 2984 ** 2985 ** In order to try to keep memory usage down, the Expr.a.zEName field 2986 ** is used for multiple purposes: 2987 ** 2988 ** eEName Usage 2989 ** ---------- ------------------------- 2990 ** ENAME_NAME (1) the AS of result set column 2991 ** (2) COLUMN= of an UPDATE 2992 ** 2993 ** ENAME_TAB DB.TABLE.NAME used to resolve names 2994 ** of subqueries 2995 ** 2996 ** ENAME_SPAN Text of the original result set 2997 ** expression. 2998 */ 2999 struct ExprList { 3000 int nExpr; /* Number of expressions on the list */ 3001 int nAlloc; /* Number of a[] slots allocated */ 3002 struct ExprList_item { /* For each expression in the list */ 3003 Expr *pExpr; /* The parse tree for this expression */ 3004 char *zEName; /* Token associated with this expression */ 3005 struct { 3006 u8 sortFlags; /* Mask of KEYINFO_ORDER_* flags */ 3007 unsigned eEName :2; /* Meaning of zEName */ 3008 unsigned done :1; /* Indicates when processing is finished */ 3009 unsigned reusable :1; /* Constant expression is reusable */ 3010 unsigned bSorterRef :1; /* Defer evaluation until after sorting */ 3011 unsigned bNulls :1; /* True if explicit "NULLS FIRST/LAST" */ 3012 unsigned bUsed :1; /* This column used in a SF_NestedFrom subquery */ 3013 unsigned bUsingTerm:1; /* Term from the USING clause of a NestedFrom */ 3014 unsigned bNoExpand: 1; /* Term is an auxiliary in NestedFrom and should 3015 ** not be expanded by "*" in parent queries */ 3016 } fg; 3017 union { 3018 struct { /* Used by any ExprList other than Parse.pConsExpr */ 3019 u16 iOrderByCol; /* For ORDER BY, column number in result set */ 3020 u16 iAlias; /* Index into Parse.aAlias[] for zName */ 3021 } x; 3022 int iConstExprReg; /* Register in which Expr value is cached. Used only 3023 ** by Parse.pConstExpr */ 3024 } u; 3025 } a[1]; /* One slot for each expression in the list */ 3026 }; 3027 3028 /* 3029 ** Allowed values for Expr.a.eEName 3030 */ 3031 #define ENAME_NAME 0 /* The AS clause of a result set */ 3032 #define ENAME_SPAN 1 /* Complete text of the result set expression */ 3033 #define ENAME_TAB 2 /* "DB.TABLE.NAME" for the result set */ 3034 3035 /* 3036 ** An instance of this structure can hold a simple list of identifiers, 3037 ** such as the list "a,b,c" in the following statements: 3038 ** 3039 ** INSERT INTO t(a,b,c) VALUES ...; 3040 ** CREATE INDEX idx ON t(a,b,c); 3041 ** CREATE TRIGGER trig BEFORE UPDATE ON t(a,b,c) ...; 3042 ** 3043 ** The IdList.a.idx field is used when the IdList represents the list of 3044 ** column names after a table name in an INSERT statement. In the statement 3045 ** 3046 ** INSERT INTO t(a,b,c) ... 3047 ** 3048 ** If "a" is the k-th column of table "t", then IdList.a[0].idx==k. 3049 */ 3050 struct IdList { 3051 int nId; /* Number of identifiers on the list */ 3052 u8 eU4; /* Which element of a.u4 is valid */ 3053 struct IdList_item { 3054 char *zName; /* Name of the identifier */ 3055 union { 3056 int idx; /* Index in some Table.aCol[] of a column named zName */ 3057 Expr *pExpr; /* Expr to implement a USING variable -- NOT USED */ 3058 } u4; 3059 } a[1]; 3060 }; 3061 3062 /* 3063 ** Allowed values for IdList.eType, which determines which value of the a.u4 3064 ** is valid. 3065 */ 3066 #define EU4_NONE 0 /* Does not use IdList.a.u4 */ 3067 #define EU4_IDX 1 /* Uses IdList.a.u4.idx */ 3068 #define EU4_EXPR 2 /* Uses IdList.a.u4.pExpr -- NOT CURRENTLY USED */ 3069 3070 /* 3071 ** The SrcItem object represents a single term in the FROM clause of a query. 3072 ** The SrcList object is mostly an array of SrcItems. 3073 ** 3074 ** Union member validity: 3075 ** 3076 ** u1.zIndexedBy fg.isIndexedBy && !fg.isTabFunc 3077 ** u1.pFuncArg fg.isTabFunc && !fg.isIndexedBy 3078 ** u2.pIBIndex fg.isIndexedBy && !fg.isCte 3079 ** u2.pCteUse fg.isCte && !fg.isIndexedBy 3080 */ 3081 struct SrcItem { 3082 Schema *pSchema; /* Schema to which this item is fixed */ 3083 char *zDatabase; /* Name of database holding this table */ 3084 char *zName; /* Name of the table */ 3085 char *zAlias; /* The "B" part of a "A AS B" phrase. zName is the "A" */ 3086 Table *pTab; /* An SQL table corresponding to zName */ 3087 Select *pSelect; /* A SELECT statement used in place of a table name */ 3088 int addrFillSub; /* Address of subroutine to manifest a subquery */ 3089 int regReturn; /* Register holding return address of addrFillSub */ 3090 int regResult; /* Registers holding results of a co-routine */ 3091 struct { 3092 u8 jointype; /* Type of join between this table and the previous */ 3093 unsigned notIndexed :1; /* True if there is a NOT INDEXED clause */ 3094 unsigned isIndexedBy :1; /* True if there is an INDEXED BY clause */ 3095 unsigned isTabFunc :1; /* True if table-valued-function syntax */ 3096 unsigned isCorrelated :1; /* True if sub-query is correlated */ 3097 unsigned isMaterialized:1; /* This is a materialized view */ 3098 unsigned viaCoroutine :1; /* Implemented as a co-routine */ 3099 unsigned isRecursive :1; /* True for recursive reference in WITH */ 3100 unsigned fromDDL :1; /* Comes from sqlite_schema */ 3101 unsigned isCte :1; /* This is a CTE */ 3102 unsigned notCte :1; /* This item may not match a CTE */ 3103 unsigned isUsing :1; /* u3.pUsing is valid */ 3104 unsigned isOn :1; /* u3.pOn was once valid and non-NULL */ 3105 unsigned isSynthUsing :1; /* u3.pUsing is synthensized from NATURAL */ 3106 unsigned isNestedFrom :1; /* pSelect is a SF_NestedFrom subquery */ 3107 } fg; 3108 int iCursor; /* The VDBE cursor number used to access this table */ 3109 union { 3110 Expr *pOn; /* fg.isUsing==0 => The ON clause of a join */ 3111 IdList *pUsing; /* fg.isUsing==1 => The USING clause of a join */ 3112 } u3; 3113 Bitmask colUsed; /* Bit N (1<<N) set if column N of pTab is used */ 3114 union { 3115 char *zIndexedBy; /* Identifier from "INDEXED BY <zIndex>" clause */ 3116 ExprList *pFuncArg; /* Arguments to table-valued-function */ 3117 } u1; 3118 union { 3119 Index *pIBIndex; /* Index structure corresponding to u1.zIndexedBy */ 3120 CteUse *pCteUse; /* CTE Usage info info fg.isCte is true */ 3121 } u2; 3122 }; 3123 3124 /* 3125 ** The OnOrUsing object represents either an ON clause or a USING clause. 3126 ** It can never be both at the same time, but it can be neither. 3127 */ 3128 struct OnOrUsing { 3129 Expr *pOn; /* The ON clause of a join */ 3130 IdList *pUsing; /* The USING clause of a join */ 3131 }; 3132 3133 /* 3134 ** The following structure describes the FROM clause of a SELECT statement. 3135 ** Each table or subquery in the FROM clause is a separate element of 3136 ** the SrcList.a[] array. 3137 ** 3138 ** With the addition of multiple database support, the following structure 3139 ** can also be used to describe a particular table such as the table that 3140 ** is modified by an INSERT, DELETE, or UPDATE statement. In standard SQL, 3141 ** such a table must be a simple name: ID. But in SQLite, the table can 3142 ** now be identified by a database name, a dot, then the table name: ID.ID. 3143 ** 3144 ** The jointype starts out showing the join type between the current table 3145 ** and the next table on the list. The parser builds the list this way. 3146 ** But sqlite3SrcListShiftJoinType() later shifts the jointypes so that each 3147 ** jointype expresses the join between the table and the previous table. 3148 ** 3149 ** In the colUsed field, the high-order bit (bit 63) is set if the table 3150 ** contains more than 63 columns and the 64-th or later column is used. 3151 */ 3152 struct SrcList { 3153 int nSrc; /* Number of tables or subqueries in the FROM clause */ 3154 u32 nAlloc; /* Number of entries allocated in a[] below */ 3155 SrcItem a[1]; /* One entry for each identifier on the list */ 3156 }; 3157 3158 /* 3159 ** Permitted values of the SrcList.a.jointype field 3160 */ 3161 #define JT_INNER 0x01 /* Any kind of inner or cross join */ 3162 #define JT_CROSS 0x02 /* Explicit use of the CROSS keyword */ 3163 #define JT_NATURAL 0x04 /* True for a "natural" join */ 3164 #define JT_LEFT 0x08 /* Left outer join */ 3165 #define JT_RIGHT 0x10 /* Right outer join */ 3166 #define JT_OUTER 0x20 /* The "OUTER" keyword is present */ 3167 #define JT_LTORJ 0x40 /* One of the LEFT operands of a RIGHT JOIN 3168 ** Mnemonic: Left Table Of Right Join */ 3169 #define JT_ERROR 0x80 /* unknown or unsupported join type */ 3170 3171 /* 3172 ** Flags appropriate for the wctrlFlags parameter of sqlite3WhereBegin() 3173 ** and the WhereInfo.wctrlFlags member. 3174 ** 3175 ** Value constraints (enforced via assert()): 3176 ** WHERE_USE_LIMIT == SF_FixedLimit 3177 */ 3178 #define WHERE_ORDERBY_NORMAL 0x0000 /* No-op */ 3179 #define WHERE_ORDERBY_MIN 0x0001 /* ORDER BY processing for min() func */ 3180 #define WHERE_ORDERBY_MAX 0x0002 /* ORDER BY processing for max() func */ 3181 #define WHERE_ONEPASS_DESIRED 0x0004 /* Want to do one-pass UPDATE/DELETE */ 3182 #define WHERE_ONEPASS_MULTIROW 0x0008 /* ONEPASS is ok with multiple rows */ 3183 #define WHERE_DUPLICATES_OK 0x0010 /* Ok to return a row more than once */ 3184 #define WHERE_OR_SUBCLAUSE 0x0020 /* Processing a sub-WHERE as part of 3185 ** the OR optimization */ 3186 #define WHERE_GROUPBY 0x0040 /* pOrderBy is really a GROUP BY */ 3187 #define WHERE_DISTINCTBY 0x0080 /* pOrderby is really a DISTINCT clause */ 3188 #define WHERE_WANT_DISTINCT 0x0100 /* All output needs to be distinct */ 3189 #define WHERE_SORTBYGROUP 0x0200 /* Support sqlite3WhereIsSorted() */ 3190 #define WHERE_AGG_DISTINCT 0x0400 /* Query is "SELECT agg(DISTINCT ...)" */ 3191 #define WHERE_ORDERBY_LIMIT 0x0800 /* ORDERBY+LIMIT on the inner loop */ 3192 #define WHERE_RIGHT_JOIN 0x1000 /* Processing a RIGHT JOIN */ 3193 /* 0x2000 not currently used */ 3194 #define WHERE_USE_LIMIT 0x4000 /* Use the LIMIT in cost estimates */ 3195 /* 0x8000 not currently used */ 3196 3197 /* Allowed return values from sqlite3WhereIsDistinct() 3198 */ 3199 #define WHERE_DISTINCT_NOOP 0 /* DISTINCT keyword not used */ 3200 #define WHERE_DISTINCT_UNIQUE 1 /* No duplicates */ 3201 #define WHERE_DISTINCT_ORDERED 2 /* All duplicates are adjacent */ 3202 #define WHERE_DISTINCT_UNORDERED 3 /* Duplicates are scattered */ 3203 3204 /* 3205 ** A NameContext defines a context in which to resolve table and column 3206 ** names. The context consists of a list of tables (the pSrcList) field and 3207 ** a list of named expression (pEList). The named expression list may 3208 ** be NULL. The pSrc corresponds to the FROM clause of a SELECT or 3209 ** to the table being operated on by INSERT, UPDATE, or DELETE. The 3210 ** pEList corresponds to the result set of a SELECT and is NULL for 3211 ** other statements. 3212 ** 3213 ** NameContexts can be nested. When resolving names, the inner-most 3214 ** context is searched first. If no match is found, the next outer 3215 ** context is checked. If there is still no match, the next context 3216 ** is checked. This process continues until either a match is found 3217 ** or all contexts are check. When a match is found, the nRef member of 3218 ** the context containing the match is incremented. 3219 ** 3220 ** Each subquery gets a new NameContext. The pNext field points to the 3221 ** NameContext in the parent query. Thus the process of scanning the 3222 ** NameContext list corresponds to searching through successively outer 3223 ** subqueries looking for a match. 3224 */ 3225 struct NameContext { 3226 Parse *pParse; /* The parser */ 3227 SrcList *pSrcList; /* One or more tables used to resolve names */ 3228 union { 3229 ExprList *pEList; /* Optional list of result-set columns */ 3230 AggInfo *pAggInfo; /* Information about aggregates at this level */ 3231 Upsert *pUpsert; /* ON CONFLICT clause information from an upsert */ 3232 int iBaseReg; /* For TK_REGISTER when parsing RETURNING */ 3233 } uNC; 3234 NameContext *pNext; /* Next outer name context. NULL for outermost */ 3235 int nRef; /* Number of names resolved by this context */ 3236 int nNcErr; /* Number of errors encountered while resolving names */ 3237 int ncFlags; /* Zero or more NC_* flags defined below */ 3238 Select *pWinSelect; /* SELECT statement for any window functions */ 3239 }; 3240 3241 /* 3242 ** Allowed values for the NameContext, ncFlags field. 3243 ** 3244 ** Value constraints (all checked via assert()): 3245 ** NC_HasAgg == SF_HasAgg == EP_Agg 3246 ** NC_MinMaxAgg == SF_MinMaxAgg == SQLITE_FUNC_MINMAX 3247 ** NC_OrderAgg == SF_OrderByReqd == SQLITE_FUNC_ANYORDER 3248 ** NC_HasWin == EP_Win 3249 ** 3250 */ 3251 #define NC_AllowAgg 0x000001 /* Aggregate functions are allowed here */ 3252 #define NC_PartIdx 0x000002 /* True if resolving a partial index WHERE */ 3253 #define NC_IsCheck 0x000004 /* True if resolving a CHECK constraint */ 3254 #define NC_GenCol 0x000008 /* True for a GENERATED ALWAYS AS clause */ 3255 #define NC_HasAgg 0x000010 /* One or more aggregate functions seen */ 3256 #define NC_IdxExpr 0x000020 /* True if resolving columns of CREATE INDEX */ 3257 #define NC_SelfRef 0x00002e /* Combo: PartIdx, isCheck, GenCol, and IdxExpr */ 3258 #define NC_VarSelect 0x000040 /* A correlated subquery has been seen */ 3259 #define NC_UEList 0x000080 /* True if uNC.pEList is used */ 3260 #define NC_UAggInfo 0x000100 /* True if uNC.pAggInfo is used */ 3261 #define NC_UUpsert 0x000200 /* True if uNC.pUpsert is used */ 3262 #define NC_UBaseReg 0x000400 /* True if uNC.iBaseReg is used */ 3263 #define NC_MinMaxAgg 0x001000 /* min/max aggregates seen. See note above */ 3264 #define NC_Complex 0x002000 /* True if a function or subquery seen */ 3265 #define NC_AllowWin 0x004000 /* Window functions are allowed here */ 3266 #define NC_HasWin 0x008000 /* One or more window functions seen */ 3267 #define NC_IsDDL 0x010000 /* Resolving names in a CREATE statement */ 3268 #define NC_InAggFunc 0x020000 /* True if analyzing arguments to an agg func */ 3269 #define NC_FromDDL 0x040000 /* SQL text comes from sqlite_schema */ 3270 #define NC_NoSelect 0x080000 /* Do not descend into sub-selects */ 3271 #define NC_OrderAgg 0x8000000 /* Has an aggregate other than count/min/max */ 3272 3273 /* 3274 ** An instance of the following object describes a single ON CONFLICT 3275 ** clause in an upsert. 3276 ** 3277 ** The pUpsertTarget field is only set if the ON CONFLICT clause includes 3278 ** conflict-target clause. (In "ON CONFLICT(a,b)" the "(a,b)" is the 3279 ** conflict-target clause.) The pUpsertTargetWhere is the optional 3280 ** WHERE clause used to identify partial unique indexes. 3281 ** 3282 ** pUpsertSet is the list of column=expr terms of the UPDATE statement. 3283 ** The pUpsertSet field is NULL for a ON CONFLICT DO NOTHING. The 3284 ** pUpsertWhere is the WHERE clause for the UPDATE and is NULL if the 3285 ** WHERE clause is omitted. 3286 */ 3287 struct Upsert { 3288 ExprList *pUpsertTarget; /* Optional description of conflict target */ 3289 Expr *pUpsertTargetWhere; /* WHERE clause for partial index targets */ 3290 ExprList *pUpsertSet; /* The SET clause from an ON CONFLICT UPDATE */ 3291 Expr *pUpsertWhere; /* WHERE clause for the ON CONFLICT UPDATE */ 3292 Upsert *pNextUpsert; /* Next ON CONFLICT clause in the list */ 3293 u8 isDoUpdate; /* True for DO UPDATE. False for DO NOTHING */ 3294 /* Above this point is the parse tree for the ON CONFLICT clauses. 3295 ** The next group of fields stores intermediate data. */ 3296 void *pToFree; /* Free memory when deleting the Upsert object */ 3297 /* All fields above are owned by the Upsert object and must be freed 3298 ** when the Upsert is destroyed. The fields below are used to transfer 3299 ** information from the INSERT processing down into the UPDATE processing 3300 ** while generating code. The fields below are owned by the INSERT 3301 ** statement and will be freed by INSERT processing. */ 3302 Index *pUpsertIdx; /* UNIQUE constraint specified by pUpsertTarget */ 3303 SrcList *pUpsertSrc; /* Table to be updated */ 3304 int regData; /* First register holding array of VALUES */ 3305 int iDataCur; /* Index of the data cursor */ 3306 int iIdxCur; /* Index of the first index cursor */ 3307 }; 3308 3309 /* 3310 ** An instance of the following structure contains all information 3311 ** needed to generate code for a single SELECT statement. 3312 ** 3313 ** See the header comment on the computeLimitRegisters() routine for a 3314 ** detailed description of the meaning of the iLimit and iOffset fields. 3315 ** 3316 ** addrOpenEphm[] entries contain the address of OP_OpenEphemeral opcodes. 3317 ** These addresses must be stored so that we can go back and fill in 3318 ** the P4_KEYINFO and P2 parameters later. Neither the KeyInfo nor 3319 ** the number of columns in P2 can be computed at the same time 3320 ** as the OP_OpenEphm instruction is coded because not 3321 ** enough information about the compound query is known at that point. 3322 ** The KeyInfo for addrOpenTran[0] and [1] contains collating sequences 3323 ** for the result set. The KeyInfo for addrOpenEphm[2] contains collating 3324 ** sequences for the ORDER BY clause. 3325 */ 3326 struct Select { 3327 u8 op; /* One of: TK_UNION TK_ALL TK_INTERSECT TK_EXCEPT */ 3328 LogEst nSelectRow; /* Estimated number of result rows */ 3329 u32 selFlags; /* Various SF_* values */ 3330 int iLimit, iOffset; /* Memory registers holding LIMIT & OFFSET counters */ 3331 u32 selId; /* Unique identifier number for this SELECT */ 3332 int addrOpenEphm[2]; /* OP_OpenEphem opcodes related to this select */ 3333 ExprList *pEList; /* The fields of the result */ 3334 SrcList *pSrc; /* The FROM clause */ 3335 Expr *pWhere; /* The WHERE clause */ 3336 ExprList *pGroupBy; /* The GROUP BY clause */ 3337 Expr *pHaving; /* The HAVING clause */ 3338 ExprList *pOrderBy; /* The ORDER BY clause */ 3339 Select *pPrior; /* Prior select in a compound select statement */ 3340 Select *pNext; /* Next select to the left in a compound */ 3341 Expr *pLimit; /* LIMIT expression. NULL means not used. */ 3342 With *pWith; /* WITH clause attached to this select. Or NULL. */ 3343 #ifndef SQLITE_OMIT_WINDOWFUNC 3344 Window *pWin; /* List of window functions */ 3345 Window *pWinDefn; /* List of named window definitions */ 3346 #endif 3347 }; 3348 3349 /* 3350 ** Allowed values for Select.selFlags. The "SF" prefix stands for 3351 ** "Select Flag". 3352 ** 3353 ** Value constraints (all checked via assert()) 3354 ** SF_HasAgg == NC_HasAgg 3355 ** SF_MinMaxAgg == NC_MinMaxAgg == SQLITE_FUNC_MINMAX 3356 ** SF_OrderByReqd == NC_OrderAgg == SQLITE_FUNC_ANYORDER 3357 ** SF_FixedLimit == WHERE_USE_LIMIT 3358 */ 3359 #define SF_Distinct 0x0000001 /* Output should be DISTINCT */ 3360 #define SF_All 0x0000002 /* Includes the ALL keyword */ 3361 #define SF_Resolved 0x0000004 /* Identifiers have been resolved */ 3362 #define SF_Aggregate 0x0000008 /* Contains agg functions or a GROUP BY */ 3363 #define SF_HasAgg 0x0000010 /* Contains aggregate functions */ 3364 #define SF_UsesEphemeral 0x0000020 /* Uses the OpenEphemeral opcode */ 3365 #define SF_Expanded 0x0000040 /* sqlite3SelectExpand() called on this */ 3366 #define SF_HasTypeInfo 0x0000080 /* FROM subqueries have Table metadata */ 3367 #define SF_Compound 0x0000100 /* Part of a compound query */ 3368 #define SF_Values 0x0000200 /* Synthesized from VALUES clause */ 3369 #define SF_MultiValue 0x0000400 /* Single VALUES term with multiple rows */ 3370 #define SF_NestedFrom 0x0000800 /* Part of a parenthesized FROM clause */ 3371 #define SF_MinMaxAgg 0x0001000 /* Aggregate containing min() or max() */ 3372 #define SF_Recursive 0x0002000 /* The recursive part of a recursive CTE */ 3373 #define SF_FixedLimit 0x0004000 /* nSelectRow set by a constant LIMIT */ 3374 #define SF_MaybeConvert 0x0008000 /* Need convertCompoundSelectToSubquery() */ 3375 #define SF_Converted 0x0010000 /* By convertCompoundSelectToSubquery() */ 3376 #define SF_IncludeHidden 0x0020000 /* Include hidden columns in output */ 3377 #define SF_ComplexResult 0x0040000 /* Result contains subquery or function */ 3378 #define SF_WhereBegin 0x0080000 /* Really a WhereBegin() call. Debug Only */ 3379 #define SF_WinRewrite 0x0100000 /* Window function rewrite accomplished */ 3380 #define SF_View 0x0200000 /* SELECT statement is a view */ 3381 #define SF_NoopOrderBy 0x0400000 /* ORDER BY is ignored for this query */ 3382 #define SF_UFSrcCheck 0x0800000 /* Check pSrc as required by UPDATE...FROM */ 3383 #define SF_PushDown 0x1000000 /* SELECT has be modified by push-down opt */ 3384 #define SF_MultiPart 0x2000000 /* Has multiple incompatible PARTITIONs */ 3385 #define SF_CopyCte 0x4000000 /* SELECT statement is a copy of a CTE */ 3386 #define SF_OrderByReqd 0x8000000 /* The ORDER BY clause may not be omitted */ 3387 3388 /* True if S exists and has SF_NestedFrom */ 3389 #define IsNestedFrom(S) ((S)!=0 && ((S)->selFlags&SF_NestedFrom)!=0) 3390 3391 /* 3392 ** The results of a SELECT can be distributed in several ways, as defined 3393 ** by one of the following macros. The "SRT" prefix means "SELECT Result 3394 ** Type". 3395 ** 3396 ** SRT_Union Store results as a key in a temporary index 3397 ** identified by pDest->iSDParm. 3398 ** 3399 ** SRT_Except Remove results from the temporary index pDest->iSDParm. 3400 ** 3401 ** SRT_Exists Store a 1 in memory cell pDest->iSDParm if the result 3402 ** set is not empty. 3403 ** 3404 ** SRT_Discard Throw the results away. This is used by SELECT 3405 ** statements within triggers whose only purpose is 3406 ** the side-effects of functions. 3407 ** 3408 ** SRT_Output Generate a row of output (using the OP_ResultRow 3409 ** opcode) for each row in the result set. 3410 ** 3411 ** SRT_Mem Only valid if the result is a single column. 3412 ** Store the first column of the first result row 3413 ** in register pDest->iSDParm then abandon the rest 3414 ** of the query. This destination implies "LIMIT 1". 3415 ** 3416 ** SRT_Set The result must be a single column. Store each 3417 ** row of result as the key in table pDest->iSDParm. 3418 ** Apply the affinity pDest->affSdst before storing 3419 ** results. Used to implement "IN (SELECT ...)". 3420 ** 3421 ** SRT_EphemTab Create an temporary table pDest->iSDParm and store 3422 ** the result there. The cursor is left open after 3423 ** returning. This is like SRT_Table except that 3424 ** this destination uses OP_OpenEphemeral to create 3425 ** the table first. 3426 ** 3427 ** SRT_Coroutine Generate a co-routine that returns a new row of 3428 ** results each time it is invoked. The entry point 3429 ** of the co-routine is stored in register pDest->iSDParm 3430 ** and the result row is stored in pDest->nDest registers 3431 ** starting with pDest->iSdst. 3432 ** 3433 ** SRT_Table Store results in temporary table pDest->iSDParm. 3434 ** SRT_Fifo This is like SRT_EphemTab except that the table 3435 ** is assumed to already be open. SRT_Fifo has 3436 ** the additional property of being able to ignore 3437 ** the ORDER BY clause. 3438 ** 3439 ** SRT_DistFifo Store results in a temporary table pDest->iSDParm. 3440 ** But also use temporary table pDest->iSDParm+1 as 3441 ** a record of all prior results and ignore any duplicate 3442 ** rows. Name means: "Distinct Fifo". 3443 ** 3444 ** SRT_Queue Store results in priority queue pDest->iSDParm (really 3445 ** an index). Append a sequence number so that all entries 3446 ** are distinct. 3447 ** 3448 ** SRT_DistQueue Store results in priority queue pDest->iSDParm only if 3449 ** the same record has never been stored before. The 3450 ** index at pDest->iSDParm+1 hold all prior stores. 3451 ** 3452 ** SRT_Upfrom Store results in the temporary table already opened by 3453 ** pDest->iSDParm. If (pDest->iSDParm<0), then the temp 3454 ** table is an intkey table - in this case the first 3455 ** column returned by the SELECT is used as the integer 3456 ** key. If (pDest->iSDParm>0), then the table is an index 3457 ** table. (pDest->iSDParm) is the number of key columns in 3458 ** each index record in this case. 3459 */ 3460 #define SRT_Union 1 /* Store result as keys in an index */ 3461 #define SRT_Except 2 /* Remove result from a UNION index */ 3462 #define SRT_Exists 3 /* Store 1 if the result is not empty */ 3463 #define SRT_Discard 4 /* Do not save the results anywhere */ 3464 #define SRT_DistFifo 5 /* Like SRT_Fifo, but unique results only */ 3465 #define SRT_DistQueue 6 /* Like SRT_Queue, but unique results only */ 3466 3467 /* The DISTINCT clause is ignored for all of the above. Not that 3468 ** IgnorableDistinct() implies IgnorableOrderby() */ 3469 #define IgnorableDistinct(X) ((X->eDest)<=SRT_DistQueue) 3470 3471 #define SRT_Queue 7 /* Store result in an queue */ 3472 #define SRT_Fifo 8 /* Store result as data with an automatic rowid */ 3473 3474 /* The ORDER BY clause is ignored for all of the above */ 3475 #define IgnorableOrderby(X) ((X->eDest)<=SRT_Fifo) 3476 3477 #define SRT_Output 9 /* Output each row of result */ 3478 #define SRT_Mem 10 /* Store result in a memory cell */ 3479 #define SRT_Set 11 /* Store results as keys in an index */ 3480 #define SRT_EphemTab 12 /* Create transient tab and store like SRT_Table */ 3481 #define SRT_Coroutine 13 /* Generate a single row of result */ 3482 #define SRT_Table 14 /* Store result as data with an automatic rowid */ 3483 #define SRT_Upfrom 15 /* Store result as data with rowid */ 3484 3485 /* 3486 ** An instance of this object describes where to put of the results of 3487 ** a SELECT statement. 3488 */ 3489 struct SelectDest { 3490 u8 eDest; /* How to dispose of the results. One of SRT_* above. */ 3491 int iSDParm; /* A parameter used by the eDest disposal method */ 3492 int iSDParm2; /* A second parameter for the eDest disposal method */ 3493 int iSdst; /* Base register where results are written */ 3494 int nSdst; /* Number of registers allocated */ 3495 char *zAffSdst; /* Affinity used when eDest==SRT_Set */ 3496 ExprList *pOrderBy; /* Key columns for SRT_Queue and SRT_DistQueue */ 3497 }; 3498 3499 /* 3500 ** During code generation of statements that do inserts into AUTOINCREMENT 3501 ** tables, the following information is attached to the Table.u.autoInc.p 3502 ** pointer of each autoincrement table to record some side information that 3503 ** the code generator needs. We have to keep per-table autoincrement 3504 ** information in case inserts are done within triggers. Triggers do not 3505 ** normally coordinate their activities, but we do need to coordinate the 3506 ** loading and saving of autoincrement information. 3507 */ 3508 struct AutoincInfo { 3509 AutoincInfo *pNext; /* Next info block in a list of them all */ 3510 Table *pTab; /* Table this info block refers to */ 3511 int iDb; /* Index in sqlite3.aDb[] of database holding pTab */ 3512 int regCtr; /* Memory register holding the rowid counter */ 3513 }; 3514 3515 /* 3516 ** At least one instance of the following structure is created for each 3517 ** trigger that may be fired while parsing an INSERT, UPDATE or DELETE 3518 ** statement. All such objects are stored in the linked list headed at 3519 ** Parse.pTriggerPrg and deleted once statement compilation has been 3520 ** completed. 3521 ** 3522 ** A Vdbe sub-program that implements the body and WHEN clause of trigger 3523 ** TriggerPrg.pTrigger, assuming a default ON CONFLICT clause of 3524 ** TriggerPrg.orconf, is stored in the TriggerPrg.pProgram variable. 3525 ** The Parse.pTriggerPrg list never contains two entries with the same 3526 ** values for both pTrigger and orconf. 3527 ** 3528 ** The TriggerPrg.aColmask[0] variable is set to a mask of old.* columns 3529 ** accessed (or set to 0 for triggers fired as a result of INSERT 3530 ** statements). Similarly, the TriggerPrg.aColmask[1] variable is set to 3531 ** a mask of new.* columns used by the program. 3532 */ 3533 struct TriggerPrg { 3534 Trigger *pTrigger; /* Trigger this program was coded from */ 3535 TriggerPrg *pNext; /* Next entry in Parse.pTriggerPrg list */ 3536 SubProgram *pProgram; /* Program implementing pTrigger/orconf */ 3537 int orconf; /* Default ON CONFLICT policy */ 3538 u32 aColmask[2]; /* Masks of old.*, new.* columns accessed */ 3539 }; 3540 3541 /* 3542 ** The yDbMask datatype for the bitmask of all attached databases. 3543 */ 3544 #if SQLITE_MAX_ATTACHED>30 3545 typedef unsigned char yDbMask[(SQLITE_MAX_ATTACHED+9)/8]; 3546 # define DbMaskTest(M,I) (((M)[(I)/8]&(1<<((I)&7)))!=0) 3547 # define DbMaskZero(M) memset((M),0,sizeof(M)) 3548 # define DbMaskSet(M,I) (M)[(I)/8]|=(1<<((I)&7)) 3549 # define DbMaskAllZero(M) sqlite3DbMaskAllZero(M) 3550 # define DbMaskNonZero(M) (sqlite3DbMaskAllZero(M)==0) 3551 #else 3552 typedef unsigned int yDbMask; 3553 # define DbMaskTest(M,I) (((M)&(((yDbMask)1)<<(I)))!=0) 3554 # define DbMaskZero(M) (M)=0 3555 # define DbMaskSet(M,I) (M)|=(((yDbMask)1)<<(I)) 3556 # define DbMaskAllZero(M) (M)==0 3557 # define DbMaskNonZero(M) (M)!=0 3558 #endif 3559 3560 /* 3561 ** An instance of the ParseCleanup object specifies an operation that 3562 ** should be performed after parsing to deallocation resources obtained 3563 ** during the parse and which are no longer needed. 3564 */ 3565 struct ParseCleanup { 3566 ParseCleanup *pNext; /* Next cleanup task */ 3567 void *pPtr; /* Pointer to object to deallocate */ 3568 void (*xCleanup)(sqlite3*,void*); /* Deallocation routine */ 3569 }; 3570 3571 /* 3572 ** An SQL parser context. A copy of this structure is passed through 3573 ** the parser and down into all the parser action routine in order to 3574 ** carry around information that is global to the entire parse. 3575 ** 3576 ** The structure is divided into two parts. When the parser and code 3577 ** generate call themselves recursively, the first part of the structure 3578 ** is constant but the second part is reset at the beginning and end of 3579 ** each recursion. 3580 ** 3581 ** The nTableLock and aTableLock variables are only used if the shared-cache 3582 ** feature is enabled (if sqlite3Tsd()->useSharedData is true). They are 3583 ** used to store the set of table-locks required by the statement being 3584 ** compiled. Function sqlite3TableLock() is used to add entries to the 3585 ** list. 3586 */ 3587 struct Parse { 3588 sqlite3 *db; /* The main database structure */ 3589 char *zErrMsg; /* An error message */ 3590 Vdbe *pVdbe; /* An engine for executing database bytecode */ 3591 int rc; /* Return code from execution */ 3592 u8 colNamesSet; /* TRUE after OP_ColumnName has been issued to pVdbe */ 3593 u8 checkSchema; /* Causes schema cookie check after an error */ 3594 u8 nested; /* Number of nested calls to the parser/code generator */ 3595 u8 nTempReg; /* Number of temporary registers in aTempReg[] */ 3596 u8 isMultiWrite; /* True if statement may modify/insert multiple rows */ 3597 u8 mayAbort; /* True if statement may throw an ABORT exception */ 3598 u8 hasCompound; /* Need to invoke convertCompoundSelectToSubquery() */ 3599 u8 okConstFactor; /* OK to factor out constants */ 3600 u8 disableLookaside; /* Number of times lookaside has been disabled */ 3601 u8 disableVtab; /* Disable all virtual tables for this parse */ 3602 u8 withinRJSubrtn; /* Nesting level for RIGHT JOIN body subroutines */ 3603 #if defined(SQLITE_DEBUG) || defined(SQLITE_COVERAGE_TEST) 3604 u8 earlyCleanup; /* OOM inside sqlite3ParserAddCleanup() */ 3605 #endif 3606 int nRangeReg; /* Size of the temporary register block */ 3607 int iRangeReg; /* First register in temporary register block */ 3608 int nErr; /* Number of errors seen */ 3609 int nTab; /* Number of previously allocated VDBE cursors */ 3610 int nMem; /* Number of memory cells used so far */ 3611 int szOpAlloc; /* Bytes of memory space allocated for Vdbe.aOp[] */ 3612 int iSelfTab; /* Table associated with an index on expr, or negative 3613 ** of the base register during check-constraint eval */ 3614 int nLabel; /* The *negative* of the number of labels used */ 3615 int nLabelAlloc; /* Number of slots in aLabel */ 3616 int *aLabel; /* Space to hold the labels */ 3617 ExprList *pConstExpr;/* Constant expressions */ 3618 Token constraintName;/* Name of the constraint currently being parsed */ 3619 yDbMask writeMask; /* Start a write transaction on these databases */ 3620 yDbMask cookieMask; /* Bitmask of schema verified databases */ 3621 int regRowid; /* Register holding rowid of CREATE TABLE entry */ 3622 int regRoot; /* Register holding root page number for new objects */ 3623 int nMaxArg; /* Max args passed to user function by sub-program */ 3624 int nSelect; /* Number of SELECT stmts. Counter for Select.selId */ 3625 #ifndef SQLITE_OMIT_SHARED_CACHE 3626 int nTableLock; /* Number of locks in aTableLock */ 3627 TableLock *aTableLock; /* Required table locks for shared-cache mode */ 3628 #endif 3629 AutoincInfo *pAinc; /* Information about AUTOINCREMENT counters */ 3630 Parse *pToplevel; /* Parse structure for main program (or NULL) */ 3631 Table *pTriggerTab; /* Table triggers are being coded for */ 3632 TriggerPrg *pTriggerPrg; /* Linked list of coded triggers */ 3633 ParseCleanup *pCleanup; /* List of cleanup operations to run after parse */ 3634 union { 3635 int addrCrTab; /* Address of OP_CreateBtree on CREATE TABLE */ 3636 Returning *pReturning; /* The RETURNING clause */ 3637 } u1; 3638 u32 nQueryLoop; /* Est number of iterations of a query (10*log2(N)) */ 3639 u32 oldmask; /* Mask of old.* columns referenced */ 3640 u32 newmask; /* Mask of new.* columns referenced */ 3641 u8 eTriggerOp; /* TK_UPDATE, TK_INSERT or TK_DELETE */ 3642 u8 bReturning; /* Coding a RETURNING trigger */ 3643 u8 eOrconf; /* Default ON CONFLICT policy for trigger steps */ 3644 u8 disableTriggers; /* True to disable triggers */ 3645 3646 /************************************************************************** 3647 ** Fields above must be initialized to zero. The fields that follow, 3648 ** down to the beginning of the recursive section, do not need to be 3649 ** initialized as they will be set before being used. The boundary is 3650 ** determined by offsetof(Parse,aTempReg). 3651 **************************************************************************/ 3652 3653 int aTempReg[8]; /* Holding area for temporary registers */ 3654 Parse *pOuterParse; /* Outer Parse object when nested */ 3655 Token sNameToken; /* Token with unqualified schema object name */ 3656 3657 /************************************************************************ 3658 ** Above is constant between recursions. Below is reset before and after 3659 ** each recursion. The boundary between these two regions is determined 3660 ** using offsetof(Parse,sLastToken) so the sLastToken field must be the 3661 ** first field in the recursive region. 3662 ************************************************************************/ 3663 3664 Token sLastToken; /* The last token parsed */ 3665 ynVar nVar; /* Number of '?' variables seen in the SQL so far */ 3666 u8 iPkSortOrder; /* ASC or DESC for INTEGER PRIMARY KEY */ 3667 u8 explain; /* True if the EXPLAIN flag is found on the query */ 3668 u8 eParseMode; /* PARSE_MODE_XXX constant */ 3669 #ifndef SQLITE_OMIT_VIRTUALTABLE 3670 int nVtabLock; /* Number of virtual tables to lock */ 3671 #endif 3672 int nHeight; /* Expression tree height of current sub-select */ 3673 #ifndef SQLITE_OMIT_EXPLAIN 3674 int addrExplain; /* Address of current OP_Explain opcode */ 3675 #endif 3676 VList *pVList; /* Mapping between variable names and numbers */ 3677 Vdbe *pReprepare; /* VM being reprepared (sqlite3Reprepare()) */ 3678 const char *zTail; /* All SQL text past the last semicolon parsed */ 3679 Table *pNewTable; /* A table being constructed by CREATE TABLE */ 3680 Index *pNewIndex; /* An index being constructed by CREATE INDEX. 3681 ** Also used to hold redundant UNIQUE constraints 3682 ** during a RENAME COLUMN */ 3683 Trigger *pNewTrigger; /* Trigger under construct by a CREATE TRIGGER */ 3684 const char *zAuthContext; /* The 6th parameter to db->xAuth callbacks */ 3685 #ifndef SQLITE_OMIT_VIRTUALTABLE 3686 Token sArg; /* Complete text of a module argument */ 3687 Table **apVtabLock; /* Pointer to virtual tables needing locking */ 3688 #endif 3689 With *pWith; /* Current WITH clause, or NULL */ 3690 #ifndef SQLITE_OMIT_ALTERTABLE 3691 RenameToken *pRename; /* Tokens subject to renaming by ALTER TABLE */ 3692 #endif 3693 }; 3694 3695 /* Allowed values for Parse.eParseMode 3696 */ 3697 #define PARSE_MODE_NORMAL 0 3698 #define PARSE_MODE_DECLARE_VTAB 1 3699 #define PARSE_MODE_RENAME 2 3700 #define PARSE_MODE_UNMAP 3 3701 3702 /* 3703 ** Sizes and pointers of various parts of the Parse object. 3704 */ 3705 #define PARSE_HDR(X) (((char*)(X))+offsetof(Parse,zErrMsg)) 3706 #define PARSE_HDR_SZ (offsetof(Parse,aTempReg)-offsetof(Parse,zErrMsg)) /* Recursive part w/o aColCache*/ 3707 #define PARSE_RECURSE_SZ offsetof(Parse,sLastToken) /* Recursive part */ 3708 #define PARSE_TAIL_SZ (sizeof(Parse)-PARSE_RECURSE_SZ) /* Non-recursive part */ 3709 #define PARSE_TAIL(X) (((char*)(X))+PARSE_RECURSE_SZ) /* Pointer to tail */ 3710 3711 /* 3712 ** Return true if currently inside an sqlite3_declare_vtab() call. 3713 */ 3714 #ifdef SQLITE_OMIT_VIRTUALTABLE 3715 #define IN_DECLARE_VTAB 0 3716 #else 3717 #define IN_DECLARE_VTAB (pParse->eParseMode==PARSE_MODE_DECLARE_VTAB) 3718 #endif 3719 3720 #if defined(SQLITE_OMIT_ALTERTABLE) 3721 #define IN_RENAME_OBJECT 0 3722 #else 3723 #define IN_RENAME_OBJECT (pParse->eParseMode>=PARSE_MODE_RENAME) 3724 #endif 3725 3726 #if defined(SQLITE_OMIT_VIRTUALTABLE) && defined(SQLITE_OMIT_ALTERTABLE) 3727 #define IN_SPECIAL_PARSE 0 3728 #else 3729 #define IN_SPECIAL_PARSE (pParse->eParseMode!=PARSE_MODE_NORMAL) 3730 #endif 3731 3732 /* 3733 ** An instance of the following structure can be declared on a stack and used 3734 ** to save the Parse.zAuthContext value so that it can be restored later. 3735 */ 3736 struct AuthContext { 3737 const char *zAuthContext; /* Put saved Parse.zAuthContext here */ 3738 Parse *pParse; /* The Parse structure */ 3739 }; 3740 3741 /* 3742 ** Bitfield flags for P5 value in various opcodes. 3743 ** 3744 ** Value constraints (enforced via assert()): 3745 ** OPFLAG_LENGTHARG == SQLITE_FUNC_LENGTH 3746 ** OPFLAG_TYPEOFARG == SQLITE_FUNC_TYPEOF 3747 ** OPFLAG_BULKCSR == BTREE_BULKLOAD 3748 ** OPFLAG_SEEKEQ == BTREE_SEEK_EQ 3749 ** OPFLAG_FORDELETE == BTREE_FORDELETE 3750 ** OPFLAG_SAVEPOSITION == BTREE_SAVEPOSITION 3751 ** OPFLAG_AUXDELETE == BTREE_AUXDELETE 3752 */ 3753 #define OPFLAG_NCHANGE 0x01 /* OP_Insert: Set to update db->nChange */ 3754 /* Also used in P2 (not P5) of OP_Delete */ 3755 #define OPFLAG_NOCHNG 0x01 /* OP_VColumn nochange for UPDATE */ 3756 #define OPFLAG_EPHEM 0x01 /* OP_Column: Ephemeral output is ok */ 3757 #define OPFLAG_LASTROWID 0x20 /* Set to update db->lastRowid */ 3758 #define OPFLAG_ISUPDATE 0x04 /* This OP_Insert is an sql UPDATE */ 3759 #define OPFLAG_APPEND 0x08 /* This is likely to be an append */ 3760 #define OPFLAG_USESEEKRESULT 0x10 /* Try to avoid a seek in BtreeInsert() */ 3761 #define OPFLAG_ISNOOP 0x40 /* OP_Delete does pre-update-hook only */ 3762 #define OPFLAG_LENGTHARG 0x40 /* OP_Column only used for length() */ 3763 #define OPFLAG_TYPEOFARG 0x80 /* OP_Column only used for typeof() */ 3764 #define OPFLAG_BULKCSR 0x01 /* OP_Open** used to open bulk cursor */ 3765 #define OPFLAG_SEEKEQ 0x02 /* OP_Open** cursor uses EQ seek only */ 3766 #define OPFLAG_FORDELETE 0x08 /* OP_Open should use BTREE_FORDELETE */ 3767 #define OPFLAG_P2ISREG 0x10 /* P2 to OP_Open** is a register number */ 3768 #define OPFLAG_PERMUTE 0x01 /* OP_Compare: use the permutation */ 3769 #define OPFLAG_SAVEPOSITION 0x02 /* OP_Delete/Insert: save cursor pos */ 3770 #define OPFLAG_AUXDELETE 0x04 /* OP_Delete: index in a DELETE op */ 3771 #define OPFLAG_NOCHNG_MAGIC 0x6d /* OP_MakeRecord: serialtype 10 is ok */ 3772 #define OPFLAG_PREFORMAT 0x80 /* OP_Insert uses preformatted cell */ 3773 3774 /* 3775 ** Each trigger present in the database schema is stored as an instance of 3776 ** struct Trigger. 3777 ** 3778 ** Pointers to instances of struct Trigger are stored in two ways. 3779 ** 1. In the "trigHash" hash table (part of the sqlite3* that represents the 3780 ** database). This allows Trigger structures to be retrieved by name. 3781 ** 2. All triggers associated with a single table form a linked list, using the 3782 ** pNext member of struct Trigger. A pointer to the first element of the 3783 ** linked list is stored as the "pTrigger" member of the associated 3784 ** struct Table. 3785 ** 3786 ** The "step_list" member points to the first element of a linked list 3787 ** containing the SQL statements specified as the trigger program. 3788 */ 3789 struct Trigger { 3790 char *zName; /* The name of the trigger */ 3791 char *table; /* The table or view to which the trigger applies */ 3792 u8 op; /* One of TK_DELETE, TK_UPDATE, TK_INSERT */ 3793 u8 tr_tm; /* One of TRIGGER_BEFORE, TRIGGER_AFTER */ 3794 u8 bReturning; /* This trigger implements a RETURNING clause */ 3795 Expr *pWhen; /* The WHEN clause of the expression (may be NULL) */ 3796 IdList *pColumns; /* If this is an UPDATE OF <column-list> trigger, 3797 the <column-list> is stored here */ 3798 Schema *pSchema; /* Schema containing the trigger */ 3799 Schema *pTabSchema; /* Schema containing the table */ 3800 TriggerStep *step_list; /* Link list of trigger program steps */ 3801 Trigger *pNext; /* Next trigger associated with the table */ 3802 }; 3803 3804 /* 3805 ** A trigger is either a BEFORE or an AFTER trigger. The following constants 3806 ** determine which. 3807 ** 3808 ** If there are multiple triggers, you might of some BEFORE and some AFTER. 3809 ** In that cases, the constants below can be ORed together. 3810 */ 3811 #define TRIGGER_BEFORE 1 3812 #define TRIGGER_AFTER 2 3813 3814 /* 3815 ** An instance of struct TriggerStep is used to store a single SQL statement 3816 ** that is a part of a trigger-program. 3817 ** 3818 ** Instances of struct TriggerStep are stored in a singly linked list (linked 3819 ** using the "pNext" member) referenced by the "step_list" member of the 3820 ** associated struct Trigger instance. The first element of the linked list is 3821 ** the first step of the trigger-program. 3822 ** 3823 ** The "op" member indicates whether this is a "DELETE", "INSERT", "UPDATE" or 3824 ** "SELECT" statement. The meanings of the other members is determined by the 3825 ** value of "op" as follows: 3826 ** 3827 ** (op == TK_INSERT) 3828 ** orconf -> stores the ON CONFLICT algorithm 3829 ** pSelect -> The content to be inserted - either a SELECT statement or 3830 ** a VALUES clause. 3831 ** zTarget -> Dequoted name of the table to insert into. 3832 ** pIdList -> If this is an INSERT INTO ... (<column-names>) VALUES ... 3833 ** statement, then this stores the column-names to be 3834 ** inserted into. 3835 ** pUpsert -> The ON CONFLICT clauses for an Upsert 3836 ** 3837 ** (op == TK_DELETE) 3838 ** zTarget -> Dequoted name of the table to delete from. 3839 ** pWhere -> The WHERE clause of the DELETE statement if one is specified. 3840 ** Otherwise NULL. 3841 ** 3842 ** (op == TK_UPDATE) 3843 ** zTarget -> Dequoted name of the table to update. 3844 ** pWhere -> The WHERE clause of the UPDATE statement if one is specified. 3845 ** Otherwise NULL. 3846 ** pExprList -> A list of the columns to update and the expressions to update 3847 ** them to. See sqlite3Update() documentation of "pChanges" 3848 ** argument. 3849 ** 3850 ** (op == TK_SELECT) 3851 ** pSelect -> The SELECT statement 3852 ** 3853 ** (op == TK_RETURNING) 3854 ** pExprList -> The list of expressions that follow the RETURNING keyword. 3855 ** 3856 */ 3857 struct TriggerStep { 3858 u8 op; /* One of TK_DELETE, TK_UPDATE, TK_INSERT, TK_SELECT, 3859 ** or TK_RETURNING */ 3860 u8 orconf; /* OE_Rollback etc. */ 3861 Trigger *pTrig; /* The trigger that this step is a part of */ 3862 Select *pSelect; /* SELECT statement or RHS of INSERT INTO SELECT ... */ 3863 char *zTarget; /* Target table for DELETE, UPDATE, INSERT */ 3864 SrcList *pFrom; /* FROM clause for UPDATE statement (if any) */ 3865 Expr *pWhere; /* The WHERE clause for DELETE or UPDATE steps */ 3866 ExprList *pExprList; /* SET clause for UPDATE, or RETURNING clause */ 3867 IdList *pIdList; /* Column names for INSERT */ 3868 Upsert *pUpsert; /* Upsert clauses on an INSERT */ 3869 char *zSpan; /* Original SQL text of this command */ 3870 TriggerStep *pNext; /* Next in the link-list */ 3871 TriggerStep *pLast; /* Last element in link-list. Valid for 1st elem only */ 3872 }; 3873 3874 /* 3875 ** Information about a RETURNING clause 3876 */ 3877 struct Returning { 3878 Parse *pParse; /* The parse that includes the RETURNING clause */ 3879 ExprList *pReturnEL; /* List of expressions to return */ 3880 Trigger retTrig; /* The transient trigger that implements RETURNING */ 3881 TriggerStep retTStep; /* The trigger step */ 3882 int iRetCur; /* Transient table holding RETURNING results */ 3883 int nRetCol; /* Number of in pReturnEL after expansion */ 3884 int iRetReg; /* Register array for holding a row of RETURNING */ 3885 }; 3886 3887 /* 3888 ** An objected used to accumulate the text of a string where we 3889 ** do not necessarily know how big the string will be in the end. 3890 */ 3891 struct sqlite3_str { 3892 sqlite3 *db; /* Optional database for lookaside. Can be NULL */ 3893 char *zText; /* The string collected so far */ 3894 u32 nAlloc; /* Amount of space allocated in zText */ 3895 u32 mxAlloc; /* Maximum allowed allocation. 0 for no malloc usage */ 3896 u32 nChar; /* Length of the string so far */ 3897 u8 accError; /* SQLITE_NOMEM or SQLITE_TOOBIG */ 3898 u8 printfFlags; /* SQLITE_PRINTF flags below */ 3899 }; 3900 #define SQLITE_PRINTF_INTERNAL 0x01 /* Internal-use-only converters allowed */ 3901 #define SQLITE_PRINTF_SQLFUNC 0x02 /* SQL function arguments to VXPrintf */ 3902 #define SQLITE_PRINTF_MALLOCED 0x04 /* True if xText is allocated space */ 3903 3904 #define isMalloced(X) (((X)->printfFlags & SQLITE_PRINTF_MALLOCED)!=0) 3905 3906 3907 /* 3908 ** A pointer to this structure is used to communicate information 3909 ** from sqlite3Init and OP_ParseSchema into the sqlite3InitCallback. 3910 */ 3911 typedef struct { 3912 sqlite3 *db; /* The database being initialized */ 3913 char **pzErrMsg; /* Error message stored here */ 3914 int iDb; /* 0 for main database. 1 for TEMP, 2.. for ATTACHed */ 3915 int rc; /* Result code stored here */ 3916 u32 mInitFlags; /* Flags controlling error messages */ 3917 u32 nInitRow; /* Number of rows processed */ 3918 Pgno mxPage; /* Maximum page number. 0 for no limit. */ 3919 } InitData; 3920 3921 /* 3922 ** Allowed values for mInitFlags 3923 */ 3924 #define INITFLAG_AlterMask 0x0003 /* Types of ALTER */ 3925 #define INITFLAG_AlterRename 0x0001 /* Reparse after a RENAME */ 3926 #define INITFLAG_AlterDrop 0x0002 /* Reparse after a DROP COLUMN */ 3927 #define INITFLAG_AlterAdd 0x0003 /* Reparse after an ADD COLUMN */ 3928 3929 /* Tuning parameters are set using SQLITE_TESTCTRL_TUNE and are controlled 3930 ** on debug-builds of the CLI using ".testctrl tune ID VALUE". Tuning 3931 ** parameters are for temporary use during development, to help find 3932 ** optimial values for parameters in the query planner. The should not 3933 ** be used on trunk check-ins. They are a temporary mechanism available 3934 ** for transient development builds only. 3935 ** 3936 ** Tuning parameters are numbered starting with 1. 3937 */ 3938 #define SQLITE_NTUNE 6 /* Should be zero for all trunk check-ins */ 3939 #ifdef SQLITE_DEBUG 3940 # define Tuning(X) (sqlite3Config.aTune[(X)-1]) 3941 #else 3942 # define Tuning(X) 0 3943 #endif 3944 3945 /* 3946 ** Structure containing global configuration data for the SQLite library. 3947 ** 3948 ** This structure also contains some state information. 3949 */ 3950 struct Sqlite3Config { 3951 int bMemstat; /* True to enable memory status */ 3952 u8 bCoreMutex; /* True to enable core mutexing */ 3953 u8 bFullMutex; /* True to enable full mutexing */ 3954 u8 bOpenUri; /* True to interpret filenames as URIs */ 3955 u8 bUseCis; /* Use covering indices for full-scans */ 3956 u8 bSmallMalloc; /* Avoid large memory allocations if true */ 3957 u8 bExtraSchemaChecks; /* Verify type,name,tbl_name in schema */ 3958 int mxStrlen; /* Maximum string length */ 3959 int neverCorrupt; /* Database is always well-formed */ 3960 int szLookaside; /* Default lookaside buffer size */ 3961 int nLookaside; /* Default lookaside buffer count */ 3962 int nStmtSpill; /* Stmt-journal spill-to-disk threshold */ 3963 sqlite3_mem_methods m; /* Low-level memory allocation interface */ 3964 sqlite3_mutex_methods mutex; /* Low-level mutex interface */ 3965 sqlite3_pcache_methods2 pcache2; /* Low-level page-cache interface */ 3966 void *pHeap; /* Heap storage space */ 3967 int nHeap; /* Size of pHeap[] */ 3968 int mnReq, mxReq; /* Min and max heap requests sizes */ 3969 sqlite3_int64 szMmap; /* mmap() space per open file */ 3970 sqlite3_int64 mxMmap; /* Maximum value for szMmap */ 3971 void *pPage; /* Page cache memory */ 3972 int szPage; /* Size of each page in pPage[] */ 3973 int nPage; /* Number of pages in pPage[] */ 3974 int mxParserStack; /* maximum depth of the parser stack */ 3975 int sharedCacheEnabled; /* true if shared-cache mode enabled */ 3976 u32 szPma; /* Maximum Sorter PMA size */ 3977 /* The above might be initialized to non-zero. The following need to always 3978 ** initially be zero, however. */ 3979 int isInit; /* True after initialization has finished */ 3980 int inProgress; /* True while initialization in progress */ 3981 int isMutexInit; /* True after mutexes are initialized */ 3982 int isMallocInit; /* True after malloc is initialized */ 3983 int isPCacheInit; /* True after malloc is initialized */ 3984 int nRefInitMutex; /* Number of users of pInitMutex */ 3985 sqlite3_mutex *pInitMutex; /* Mutex used by sqlite3_initialize() */ 3986 void (*xLog)(void*,int,const char*); /* Function for logging */ 3987 void *pLogArg; /* First argument to xLog() */ 3988 #ifdef SQLITE_ENABLE_SQLLOG 3989 void(*xSqllog)(void*,sqlite3*,const char*, int); 3990 void *pSqllogArg; 3991 #endif 3992 #ifdef SQLITE_VDBE_COVERAGE 3993 /* The following callback (if not NULL) is invoked on every VDBE branch 3994 ** operation. Set the callback using SQLITE_TESTCTRL_VDBE_COVERAGE. 3995 */ 3996 void (*xVdbeBranch)(void*,unsigned iSrcLine,u8 eThis,u8 eMx); /* Callback */ 3997 void *pVdbeBranchArg; /* 1st argument */ 3998 #endif 3999 #ifndef SQLITE_OMIT_DESERIALIZE 4000 sqlite3_int64 mxMemdbSize; /* Default max memdb size */ 4001 #endif 4002 #ifndef SQLITE_UNTESTABLE 4003 int (*xTestCallback)(int); /* Invoked by sqlite3FaultSim() */ 4004 #endif 4005 int bLocaltimeFault; /* True to fail localtime() calls */ 4006 int (*xAltLocaltime)(const void*,void*); /* Alternative localtime() routine */ 4007 int iOnceResetThreshold; /* When to reset OP_Once counters */ 4008 u32 szSorterRef; /* Min size in bytes to use sorter-refs */ 4009 unsigned int iPrngSeed; /* Alternative fixed seed for the PRNG */ 4010 /* vvvv--- must be last ---vvv */ 4011 #ifdef SQLITE_DEBUG 4012 sqlite3_int64 aTune[SQLITE_NTUNE]; /* Tuning parameters */ 4013 #endif 4014 }; 4015 4016 /* 4017 ** This macro is used inside of assert() statements to indicate that 4018 ** the assert is only valid on a well-formed database. Instead of: 4019 ** 4020 ** assert( X ); 4021 ** 4022 ** One writes: 4023 ** 4024 ** assert( X || CORRUPT_DB ); 4025 ** 4026 ** CORRUPT_DB is true during normal operation. CORRUPT_DB does not indicate 4027 ** that the database is definitely corrupt, only that it might be corrupt. 4028 ** For most test cases, CORRUPT_DB is set to false using a special 4029 ** sqlite3_test_control(). This enables assert() statements to prove 4030 ** things that are always true for well-formed databases. 4031 */ 4032 #define CORRUPT_DB (sqlite3Config.neverCorrupt==0) 4033 4034 /* 4035 ** Context pointer passed down through the tree-walk. 4036 */ 4037 struct Walker { 4038 Parse *pParse; /* Parser context. */ 4039 int (*xExprCallback)(Walker*, Expr*); /* Callback for expressions */ 4040 int (*xSelectCallback)(Walker*,Select*); /* Callback for SELECTs */ 4041 void (*xSelectCallback2)(Walker*,Select*);/* Second callback for SELECTs */ 4042 int walkerDepth; /* Number of subqueries */ 4043 u16 eCode; /* A small processing code */ 4044 union { /* Extra data for callback */ 4045 NameContext *pNC; /* Naming context */ 4046 int n; /* A counter */ 4047 int iCur; /* A cursor number */ 4048 SrcList *pSrcList; /* FROM clause */ 4049 struct CCurHint *pCCurHint; /* Used by codeCursorHint() */ 4050 struct RefSrcList *pRefSrcList; /* sqlite3ReferencesSrcList() */ 4051 int *aiCol; /* array of column indexes */ 4052 struct IdxCover *pIdxCover; /* Check for index coverage */ 4053 struct IdxExprTrans *pIdxTrans; /* Convert idxed expr to column */ 4054 ExprList *pGroupBy; /* GROUP BY clause */ 4055 Select *pSelect; /* HAVING to WHERE clause ctx */ 4056 struct WindowRewrite *pRewrite; /* Window rewrite context */ 4057 struct WhereConst *pConst; /* WHERE clause constants */ 4058 struct RenameCtx *pRename; /* RENAME COLUMN context */ 4059 struct Table *pTab; /* Table of generated column */ 4060 SrcItem *pSrcItem; /* A single FROM clause item */ 4061 DbFixer *pFix; 4062 } u; 4063 }; 4064 4065 /* 4066 ** The following structure contains information used by the sqliteFix... 4067 ** routines as they walk the parse tree to make database references 4068 ** explicit. 4069 */ 4070 struct DbFixer { 4071 Parse *pParse; /* The parsing context. Error messages written here */ 4072 Walker w; /* Walker object */ 4073 Schema *pSchema; /* Fix items to this schema */ 4074 u8 bTemp; /* True for TEMP schema entries */ 4075 const char *zDb; /* Make sure all objects are contained in this database */ 4076 const char *zType; /* Type of the container - used for error messages */ 4077 const Token *pName; /* Name of the container - used for error messages */ 4078 }; 4079 4080 /* Forward declarations */ 4081 int sqlite3WalkExpr(Walker*, Expr*); 4082 int sqlite3WalkExprList(Walker*, ExprList*); 4083 int sqlite3WalkSelect(Walker*, Select*); 4084 int sqlite3WalkSelectExpr(Walker*, Select*); 4085 int sqlite3WalkSelectFrom(Walker*, Select*); 4086 int sqlite3ExprWalkNoop(Walker*, Expr*); 4087 int sqlite3SelectWalkNoop(Walker*, Select*); 4088 int sqlite3SelectWalkFail(Walker*, Select*); 4089 int sqlite3WalkerDepthIncrease(Walker*,Select*); 4090 void sqlite3WalkerDepthDecrease(Walker*,Select*); 4091 void sqlite3WalkWinDefnDummyCallback(Walker*,Select*); 4092 4093 #ifdef SQLITE_DEBUG 4094 void sqlite3SelectWalkAssert2(Walker*, Select*); 4095 #endif 4096 4097 #ifndef SQLITE_OMIT_CTE 4098 void sqlite3SelectPopWith(Walker*, Select*); 4099 #else 4100 # define sqlite3SelectPopWith 0 4101 #endif 4102 4103 /* 4104 ** Return code from the parse-tree walking primitives and their 4105 ** callbacks. 4106 */ 4107 #define WRC_Continue 0 /* Continue down into children */ 4108 #define WRC_Prune 1 /* Omit children but continue walking siblings */ 4109 #define WRC_Abort 2 /* Abandon the tree walk */ 4110 4111 /* 4112 ** A single common table expression 4113 */ 4114 struct Cte { 4115 char *zName; /* Name of this CTE */ 4116 ExprList *pCols; /* List of explicit column names, or NULL */ 4117 Select *pSelect; /* The definition of this CTE */ 4118 const char *zCteErr; /* Error message for circular references */ 4119 CteUse *pUse; /* Usage information for this CTE */ 4120 u8 eM10d; /* The MATERIALIZED flag */ 4121 }; 4122 4123 /* 4124 ** Allowed values for the materialized flag (eM10d): 4125 */ 4126 #define M10d_Yes 0 /* AS MATERIALIZED */ 4127 #define M10d_Any 1 /* Not specified. Query planner's choice */ 4128 #define M10d_No 2 /* AS NOT MATERIALIZED */ 4129 4130 /* 4131 ** An instance of the With object represents a WITH clause containing 4132 ** one or more CTEs (common table expressions). 4133 */ 4134 struct With { 4135 int nCte; /* Number of CTEs in the WITH clause */ 4136 int bView; /* Belongs to the outermost Select of a view */ 4137 With *pOuter; /* Containing WITH clause, or NULL */ 4138 Cte a[1]; /* For each CTE in the WITH clause.... */ 4139 }; 4140 4141 /* 4142 ** The Cte object is not guaranteed to persist for the entire duration 4143 ** of code generation. (The query flattener or other parser tree 4144 ** edits might delete it.) The following object records information 4145 ** about each Common Table Expression that must be preserved for the 4146 ** duration of the parse. 4147 ** 4148 ** The CteUse objects are freed using sqlite3ParserAddCleanup() rather 4149 ** than sqlite3SelectDelete(), which is what enables them to persist 4150 ** until the end of code generation. 4151 */ 4152 struct CteUse { 4153 int nUse; /* Number of users of this CTE */ 4154 int addrM9e; /* Start of subroutine to compute materialization */ 4155 int regRtn; /* Return address register for addrM9e subroutine */ 4156 int iCur; /* Ephemeral table holding the materialization */ 4157 LogEst nRowEst; /* Estimated number of rows in the table */ 4158 u8 eM10d; /* The MATERIALIZED flag */ 4159 }; 4160 4161 4162 #ifdef SQLITE_DEBUG 4163 /* 4164 ** An instance of the TreeView object is used for printing the content of 4165 ** data structures on sqlite3DebugPrintf() using a tree-like view. 4166 */ 4167 struct TreeView { 4168 int iLevel; /* Which level of the tree we are on */ 4169 u8 bLine[100]; /* Draw vertical in column i if bLine[i] is true */ 4170 }; 4171 #endif /* SQLITE_DEBUG */ 4172 4173 /* 4174 ** This object is used in various ways, most (but not all) related to window 4175 ** functions. 4176 ** 4177 ** (1) A single instance of this structure is attached to the 4178 ** the Expr.y.pWin field for each window function in an expression tree. 4179 ** This object holds the information contained in the OVER clause, 4180 ** plus additional fields used during code generation. 4181 ** 4182 ** (2) All window functions in a single SELECT form a linked-list 4183 ** attached to Select.pWin. The Window.pFunc and Window.pExpr 4184 ** fields point back to the expression that is the window function. 4185 ** 4186 ** (3) The terms of the WINDOW clause of a SELECT are instances of this 4187 ** object on a linked list attached to Select.pWinDefn. 4188 ** 4189 ** (4) For an aggregate function with a FILTER clause, an instance 4190 ** of this object is stored in Expr.y.pWin with eFrmType set to 4191 ** TK_FILTER. In this case the only field used is Window.pFilter. 4192 ** 4193 ** The uses (1) and (2) are really the same Window object that just happens 4194 ** to be accessible in two different ways. Use case (3) are separate objects. 4195 */ 4196 struct Window { 4197 char *zName; /* Name of window (may be NULL) */ 4198 char *zBase; /* Name of base window for chaining (may be NULL) */ 4199 ExprList *pPartition; /* PARTITION BY clause */ 4200 ExprList *pOrderBy; /* ORDER BY clause */ 4201 u8 eFrmType; /* TK_RANGE, TK_GROUPS, TK_ROWS, or 0 */ 4202 u8 eStart; /* UNBOUNDED, CURRENT, PRECEDING or FOLLOWING */ 4203 u8 eEnd; /* UNBOUNDED, CURRENT, PRECEDING or FOLLOWING */ 4204 u8 bImplicitFrame; /* True if frame was implicitly specified */ 4205 u8 eExclude; /* TK_NO, TK_CURRENT, TK_TIES, TK_GROUP, or 0 */ 4206 Expr *pStart; /* Expression for "<expr> PRECEDING" */ 4207 Expr *pEnd; /* Expression for "<expr> FOLLOWING" */ 4208 Window **ppThis; /* Pointer to this object in Select.pWin list */ 4209 Window *pNextWin; /* Next window function belonging to this SELECT */ 4210 Expr *pFilter; /* The FILTER expression */ 4211 FuncDef *pWFunc; /* The function */ 4212 int iEphCsr; /* Partition buffer or Peer buffer */ 4213 int regAccum; /* Accumulator */ 4214 int regResult; /* Interim result */ 4215 int csrApp; /* Function cursor (used by min/max) */ 4216 int regApp; /* Function register (also used by min/max) */ 4217 int regPart; /* Array of registers for PARTITION BY values */ 4218 Expr *pOwner; /* Expression object this window is attached to */ 4219 int nBufferCol; /* Number of columns in buffer table */ 4220 int iArgCol; /* Offset of first argument for this function */ 4221 int regOne; /* Register containing constant value 1 */ 4222 int regStartRowid; 4223 int regEndRowid; 4224 u8 bExprArgs; /* Defer evaluation of window function arguments 4225 ** due to the SQLITE_SUBTYPE flag */ 4226 }; 4227 4228 #ifndef SQLITE_OMIT_WINDOWFUNC 4229 void sqlite3WindowDelete(sqlite3*, Window*); 4230 void sqlite3WindowUnlinkFromSelect(Window*); 4231 void sqlite3WindowListDelete(sqlite3 *db, Window *p); 4232 Window *sqlite3WindowAlloc(Parse*, int, int, Expr*, int , Expr*, u8); 4233 void sqlite3WindowAttach(Parse*, Expr*, Window*); 4234 void sqlite3WindowLink(Select *pSel, Window *pWin); 4235 int sqlite3WindowCompare(const Parse*, const Window*, const Window*, int); 4236 void sqlite3WindowCodeInit(Parse*, Select*); 4237 void sqlite3WindowCodeStep(Parse*, Select*, WhereInfo*, int, int); 4238 int sqlite3WindowRewrite(Parse*, Select*); 4239 void sqlite3WindowUpdate(Parse*, Window*, Window*, FuncDef*); 4240 Window *sqlite3WindowDup(sqlite3 *db, Expr *pOwner, Window *p); 4241 Window *sqlite3WindowListDup(sqlite3 *db, Window *p); 4242 void sqlite3WindowFunctions(void); 4243 void sqlite3WindowChain(Parse*, Window*, Window*); 4244 Window *sqlite3WindowAssemble(Parse*, Window*, ExprList*, ExprList*, Token*); 4245 #else 4246 # define sqlite3WindowDelete(a,b) 4247 # define sqlite3WindowFunctions() 4248 # define sqlite3WindowAttach(a,b,c) 4249 #endif 4250 4251 /* 4252 ** Assuming zIn points to the first byte of a UTF-8 character, 4253 ** advance zIn to point to the first byte of the next UTF-8 character. 4254 */ 4255 #define SQLITE_SKIP_UTF8(zIn) { \ 4256 if( (*(zIn++))>=0xc0 ){ \ 4257 while( (*zIn & 0xc0)==0x80 ){ zIn++; } \ 4258 } \ 4259 } 4260 4261 /* 4262 ** The SQLITE_*_BKPT macros are substitutes for the error codes with 4263 ** the same name but without the _BKPT suffix. These macros invoke 4264 ** routines that report the line-number on which the error originated 4265 ** using sqlite3_log(). The routines also provide a convenient place 4266 ** to set a debugger breakpoint. 4267 */ 4268 int sqlite3ReportError(int iErr, int lineno, const char *zType); 4269 int sqlite3CorruptError(int); 4270 int sqlite3MisuseError(int); 4271 int sqlite3CantopenError(int); 4272 #define SQLITE_CORRUPT_BKPT sqlite3CorruptError(__LINE__) 4273 #define SQLITE_MISUSE_BKPT sqlite3MisuseError(__LINE__) 4274 #define SQLITE_CANTOPEN_BKPT sqlite3CantopenError(__LINE__) 4275 #ifdef SQLITE_DEBUG 4276 int sqlite3NomemError(int); 4277 int sqlite3IoerrnomemError(int); 4278 # define SQLITE_NOMEM_BKPT sqlite3NomemError(__LINE__) 4279 # define SQLITE_IOERR_NOMEM_BKPT sqlite3IoerrnomemError(__LINE__) 4280 #else 4281 # define SQLITE_NOMEM_BKPT SQLITE_NOMEM 4282 # define SQLITE_IOERR_NOMEM_BKPT SQLITE_IOERR_NOMEM 4283 #endif 4284 #if defined(SQLITE_DEBUG) || defined(SQLITE_ENABLE_CORRUPT_PGNO) 4285 int sqlite3CorruptPgnoError(int,Pgno); 4286 # define SQLITE_CORRUPT_PGNO(P) sqlite3CorruptPgnoError(__LINE__,(P)) 4287 #else 4288 # define SQLITE_CORRUPT_PGNO(P) sqlite3CorruptError(__LINE__) 4289 #endif 4290 4291 /* 4292 ** FTS3 and FTS4 both require virtual table support 4293 */ 4294 #if defined(SQLITE_OMIT_VIRTUALTABLE) 4295 # undef SQLITE_ENABLE_FTS3 4296 # undef SQLITE_ENABLE_FTS4 4297 #endif 4298 4299 /* 4300 ** FTS4 is really an extension for FTS3. It is enabled using the 4301 ** SQLITE_ENABLE_FTS3 macro. But to avoid confusion we also call 4302 ** the SQLITE_ENABLE_FTS4 macro to serve as an alias for SQLITE_ENABLE_FTS3. 4303 */ 4304 #if defined(SQLITE_ENABLE_FTS4) && !defined(SQLITE_ENABLE_FTS3) 4305 # define SQLITE_ENABLE_FTS3 1 4306 #endif 4307 4308 /* 4309 ** The ctype.h header is needed for non-ASCII systems. It is also 4310 ** needed by FTS3 when FTS3 is included in the amalgamation. 4311 */ 4312 #if !defined(SQLITE_ASCII) || \ 4313 (defined(SQLITE_ENABLE_FTS3) && defined(SQLITE_AMALGAMATION)) 4314 # include <ctype.h> 4315 #endif 4316 4317 /* 4318 ** The following macros mimic the standard library functions toupper(), 4319 ** isspace(), isalnum(), isdigit() and isxdigit(), respectively. The 4320 ** sqlite versions only work for ASCII characters, regardless of locale. 4321 */ 4322 #ifdef SQLITE_ASCII 4323 # define sqlite3Toupper(x) ((x)&~(sqlite3CtypeMap[(unsigned char)(x)]&0x20)) 4324 # define sqlite3Isspace(x) (sqlite3CtypeMap[(unsigned char)(x)]&0x01) 4325 # define sqlite3Isalnum(x) (sqlite3CtypeMap[(unsigned char)(x)]&0x06) 4326 # define sqlite3Isalpha(x) (sqlite3CtypeMap[(unsigned char)(x)]&0x02) 4327 # define sqlite3Isdigit(x) (sqlite3CtypeMap[(unsigned char)(x)]&0x04) 4328 # define sqlite3Isxdigit(x) (sqlite3CtypeMap[(unsigned char)(x)]&0x08) 4329 # define sqlite3Tolower(x) (sqlite3UpperToLower[(unsigned char)(x)]) 4330 # define sqlite3Isquote(x) (sqlite3CtypeMap[(unsigned char)(x)]&0x80) 4331 #else 4332 # define sqlite3Toupper(x) toupper((unsigned char)(x)) 4333 # define sqlite3Isspace(x) isspace((unsigned char)(x)) 4334 # define sqlite3Isalnum(x) isalnum((unsigned char)(x)) 4335 # define sqlite3Isalpha(x) isalpha((unsigned char)(x)) 4336 # define sqlite3Isdigit(x) isdigit((unsigned char)(x)) 4337 # define sqlite3Isxdigit(x) isxdigit((unsigned char)(x)) 4338 # define sqlite3Tolower(x) tolower((unsigned char)(x)) 4339 # define sqlite3Isquote(x) ((x)=='"'||(x)=='\''||(x)=='['||(x)=='`') 4340 #endif 4341 int sqlite3IsIdChar(u8); 4342 4343 /* 4344 ** Internal function prototypes 4345 */ 4346 int sqlite3StrICmp(const char*,const char*); 4347 int sqlite3Strlen30(const char*); 4348 #define sqlite3Strlen30NN(C) (strlen(C)&0x3fffffff) 4349 char *sqlite3ColumnType(Column*,char*); 4350 #define sqlite3StrNICmp sqlite3_strnicmp 4351 4352 int sqlite3MallocInit(void); 4353 void sqlite3MallocEnd(void); 4354 void *sqlite3Malloc(u64); 4355 void *sqlite3MallocZero(u64); 4356 void *sqlite3DbMallocZero(sqlite3*, u64); 4357 void *sqlite3DbMallocRaw(sqlite3*, u64); 4358 void *sqlite3DbMallocRawNN(sqlite3*, u64); 4359 char *sqlite3DbStrDup(sqlite3*,const char*); 4360 char *sqlite3DbStrNDup(sqlite3*,const char*, u64); 4361 char *sqlite3DbSpanDup(sqlite3*,const char*,const char*); 4362 void *sqlite3Realloc(void*, u64); 4363 void *sqlite3DbReallocOrFree(sqlite3 *, void *, u64); 4364 void *sqlite3DbRealloc(sqlite3 *, void *, u64); 4365 void sqlite3DbFree(sqlite3*, void*); 4366 void sqlite3DbFreeNN(sqlite3*, void*); 4367 void sqlite3DbNNFreeNN(sqlite3*, void*); 4368 int sqlite3MallocSize(const void*); 4369 int sqlite3DbMallocSize(sqlite3*, const void*); 4370 void *sqlite3PageMalloc(int); 4371 void sqlite3PageFree(void*); 4372 void sqlite3MemSetDefault(void); 4373 #ifndef SQLITE_UNTESTABLE 4374 void sqlite3BenignMallocHooks(void (*)(void), void (*)(void)); 4375 #endif 4376 int sqlite3HeapNearlyFull(void); 4377 4378 /* 4379 ** On systems with ample stack space and that support alloca(), make 4380 ** use of alloca() to obtain space for large automatic objects. By default, 4381 ** obtain space from malloc(). 4382 ** 4383 ** The alloca() routine never returns NULL. This will cause code paths 4384 ** that deal with sqlite3StackAlloc() failures to be unreachable. 4385 */ 4386 #ifdef SQLITE_USE_ALLOCA 4387 # define sqlite3StackAllocRaw(D,N) alloca(N) 4388 # define sqlite3StackAllocZero(D,N) memset(alloca(N), 0, N) 4389 # define sqlite3StackFree(D,P) 4390 #else 4391 # define sqlite3StackAllocRaw(D,N) sqlite3DbMallocRaw(D,N) 4392 # define sqlite3StackAllocZero(D,N) sqlite3DbMallocZero(D,N) 4393 # define sqlite3StackFree(D,P) sqlite3DbFree(D,P) 4394 #endif 4395 4396 /* Do not allow both MEMSYS5 and MEMSYS3 to be defined together. If they 4397 ** are, disable MEMSYS3 4398 */ 4399 #ifdef SQLITE_ENABLE_MEMSYS5 4400 const sqlite3_mem_methods *sqlite3MemGetMemsys5(void); 4401 #undef SQLITE_ENABLE_MEMSYS3 4402 #endif 4403 #ifdef SQLITE_ENABLE_MEMSYS3 4404 const sqlite3_mem_methods *sqlite3MemGetMemsys3(void); 4405 #endif 4406 4407 4408 #ifndef SQLITE_MUTEX_OMIT 4409 sqlite3_mutex_methods const *sqlite3DefaultMutex(void); 4410 sqlite3_mutex_methods const *sqlite3NoopMutex(void); 4411 sqlite3_mutex *sqlite3MutexAlloc(int); 4412 int sqlite3MutexInit(void); 4413 int sqlite3MutexEnd(void); 4414 #endif 4415 #if !defined(SQLITE_MUTEX_OMIT) && !defined(SQLITE_MUTEX_NOOP) 4416 void sqlite3MemoryBarrier(void); 4417 #else 4418 # define sqlite3MemoryBarrier() 4419 #endif 4420 4421 sqlite3_int64 sqlite3StatusValue(int); 4422 void sqlite3StatusUp(int, int); 4423 void sqlite3StatusDown(int, int); 4424 void sqlite3StatusHighwater(int, int); 4425 int sqlite3LookasideUsed(sqlite3*,int*); 4426 4427 /* Access to mutexes used by sqlite3_status() */ 4428 sqlite3_mutex *sqlite3Pcache1Mutex(void); 4429 sqlite3_mutex *sqlite3MallocMutex(void); 4430 4431 #if defined(SQLITE_ENABLE_MULTITHREADED_CHECKS) && !defined(SQLITE_MUTEX_OMIT) 4432 void sqlite3MutexWarnOnContention(sqlite3_mutex*); 4433 #else 4434 # define sqlite3MutexWarnOnContention(x) 4435 #endif 4436 4437 #ifndef SQLITE_OMIT_FLOATING_POINT 4438 # define EXP754 (((u64)0x7ff)<<52) 4439 # define MAN754 ((((u64)1)<<52)-1) 4440 # define IsNaN(X) (((X)&EXP754)==EXP754 && ((X)&MAN754)!=0) 4441 int sqlite3IsNaN(double); 4442 #else 4443 # define IsNaN(X) 0 4444 # define sqlite3IsNaN(X) 0 4445 #endif 4446 4447 /* 4448 ** An instance of the following structure holds information about SQL 4449 ** functions arguments that are the parameters to the printf() function. 4450 */ 4451 struct PrintfArguments { 4452 int nArg; /* Total number of arguments */ 4453 int nUsed; /* Number of arguments used so far */ 4454 sqlite3_value **apArg; /* The argument values */ 4455 }; 4456 4457 char *sqlite3MPrintf(sqlite3*,const char*, ...); 4458 char *sqlite3VMPrintf(sqlite3*,const char*, va_list); 4459 #if defined(SQLITE_DEBUG) || defined(SQLITE_HAVE_OS_TRACE) 4460 void sqlite3DebugPrintf(const char*, ...); 4461 #endif 4462 #if defined(SQLITE_TEST) 4463 void *sqlite3TestTextToPtr(const char*); 4464 #endif 4465 4466 #if defined(SQLITE_DEBUG) 4467 void sqlite3TreeViewLine(TreeView*, const char *zFormat, ...); 4468 void sqlite3TreeViewExpr(TreeView*, const Expr*, u8); 4469 void sqlite3TreeViewBareExprList(TreeView*, const ExprList*, const char*); 4470 void sqlite3TreeViewExprList(TreeView*, const ExprList*, u8, const char*); 4471 void sqlite3TreeViewBareIdList(TreeView*, const IdList*, const char*); 4472 void sqlite3TreeViewIdList(TreeView*, const IdList*, u8, const char*); 4473 void sqlite3TreeViewColumnList(TreeView*, const Column*, int, u8); 4474 void sqlite3TreeViewSrcList(TreeView*, const SrcList*); 4475 void sqlite3TreeViewSelect(TreeView*, const Select*, u8); 4476 void sqlite3TreeViewWith(TreeView*, const With*, u8); 4477 void sqlite3TreeViewUpsert(TreeView*, const Upsert*, u8); 4478 #if TREETRACE_ENABLED 4479 void sqlite3TreeViewDelete(const With*, const SrcList*, const Expr*, 4480 const ExprList*,const Expr*, const Trigger*); 4481 void sqlite3TreeViewInsert(const With*, const SrcList*, 4482 const IdList*, const Select*, const ExprList*, 4483 int, const Upsert*, const Trigger*); 4484 void sqlite3TreeViewUpdate(const With*, const SrcList*, const ExprList*, 4485 const Expr*, int, const ExprList*, const Expr*, 4486 const Upsert*, const Trigger*); 4487 #endif 4488 #ifndef SQLITE_OMIT_TRIGGER 4489 void sqlite3TreeViewTriggerStep(TreeView*, const TriggerStep*, u8, u8); 4490 void sqlite3TreeViewTrigger(TreeView*, const Trigger*, u8, u8); 4491 #endif 4492 #ifndef SQLITE_OMIT_WINDOWFUNC 4493 void sqlite3TreeViewWindow(TreeView*, const Window*, u8); 4494 void sqlite3TreeViewWinFunc(TreeView*, const Window*, u8); 4495 #endif 4496 void sqlite3ShowExpr(const Expr*); 4497 void sqlite3ShowExprList(const ExprList*); 4498 void sqlite3ShowIdList(const IdList*); 4499 void sqlite3ShowSrcList(const SrcList*); 4500 void sqlite3ShowSelect(const Select*); 4501 void sqlite3ShowWith(const With*); 4502 void sqlite3ShowUpsert(const Upsert*); 4503 #ifndef SQLITE_OMIT_TRIGGER 4504 void sqlite3ShowTriggerStep(const TriggerStep*); 4505 void sqlite3ShowTriggerStepList(const TriggerStep*); 4506 void sqlite3ShowTrigger(const Trigger*); 4507 void sqlite3ShowTriggerList(const Trigger*); 4508 #endif 4509 #ifndef SQLITE_OMIT_WINDOWFUNC 4510 void sqlite3ShowWindow(const Window*); 4511 void sqlite3ShowWinFunc(const Window*); 4512 #endif 4513 #endif 4514 4515 void sqlite3SetString(char **, sqlite3*, const char*); 4516 void sqlite3ErrorMsg(Parse*, const char*, ...); 4517 int sqlite3ErrorToParser(sqlite3*,int); 4518 void sqlite3Dequote(char*); 4519 void sqlite3DequoteExpr(Expr*); 4520 void sqlite3DequoteToken(Token*); 4521 void sqlite3TokenInit(Token*,char*); 4522 int sqlite3KeywordCode(const unsigned char*, int); 4523 int sqlite3RunParser(Parse*, const char*); 4524 void sqlite3FinishCoding(Parse*); 4525 int sqlite3GetTempReg(Parse*); 4526 void sqlite3ReleaseTempReg(Parse*,int); 4527 int sqlite3GetTempRange(Parse*,int); 4528 void sqlite3ReleaseTempRange(Parse*,int,int); 4529 void sqlite3ClearTempRegCache(Parse*); 4530 #ifdef SQLITE_DEBUG 4531 int sqlite3NoTempsInRange(Parse*,int,int); 4532 #endif 4533 Expr *sqlite3ExprAlloc(sqlite3*,int,const Token*,int); 4534 Expr *sqlite3Expr(sqlite3*,int,const char*); 4535 void sqlite3ExprAttachSubtrees(sqlite3*,Expr*,Expr*,Expr*); 4536 Expr *sqlite3PExpr(Parse*, int, Expr*, Expr*); 4537 void sqlite3PExprAddSelect(Parse*, Expr*, Select*); 4538 Expr *sqlite3ExprAnd(Parse*,Expr*, Expr*); 4539 Expr *sqlite3ExprSimplifiedAndOr(Expr*); 4540 Expr *sqlite3ExprFunction(Parse*,ExprList*, const Token*, int); 4541 void sqlite3ExprFunctionUsable(Parse*,const Expr*,const FuncDef*); 4542 void sqlite3ExprAssignVarNumber(Parse*, Expr*, u32); 4543 void sqlite3ExprDelete(sqlite3*, Expr*); 4544 void sqlite3ExprDeferredDelete(Parse*, Expr*); 4545 void sqlite3ExprUnmapAndDelete(Parse*, Expr*); 4546 ExprList *sqlite3ExprListAppend(Parse*,ExprList*,Expr*); 4547 ExprList *sqlite3ExprListAppendVector(Parse*,ExprList*,IdList*,Expr*); 4548 Select *sqlite3ExprListToValues(Parse*, int, ExprList*); 4549 void sqlite3ExprListSetSortOrder(ExprList*,int,int); 4550 void sqlite3ExprListSetName(Parse*,ExprList*,const Token*,int); 4551 void sqlite3ExprListSetSpan(Parse*,ExprList*,const char*,const char*); 4552 void sqlite3ExprListDelete(sqlite3*, ExprList*); 4553 u32 sqlite3ExprListFlags(const ExprList*); 4554 int sqlite3IndexHasDuplicateRootPage(Index*); 4555 int sqlite3Init(sqlite3*, char**); 4556 int sqlite3InitCallback(void*, int, char**, char**); 4557 int sqlite3InitOne(sqlite3*, int, char**, u32); 4558 void sqlite3Pragma(Parse*,Token*,Token*,Token*,int); 4559 #ifndef SQLITE_OMIT_VIRTUALTABLE 4560 Module *sqlite3PragmaVtabRegister(sqlite3*,const char *zName); 4561 #endif 4562 void sqlite3ResetAllSchemasOfConnection(sqlite3*); 4563 void sqlite3ResetOneSchema(sqlite3*,int); 4564 void sqlite3CollapseDatabaseArray(sqlite3*); 4565 void sqlite3CommitInternalChanges(sqlite3*); 4566 void sqlite3ColumnSetExpr(Parse*,Table*,Column*,Expr*); 4567 Expr *sqlite3ColumnExpr(Table*,Column*); 4568 void sqlite3ColumnSetColl(sqlite3*,Column*,const char*zColl); 4569 const char *sqlite3ColumnColl(Column*); 4570 void sqlite3DeleteColumnNames(sqlite3*,Table*); 4571 void sqlite3GenerateColumnNames(Parse *pParse, Select *pSelect); 4572 int sqlite3ColumnsFromExprList(Parse*,ExprList*,i16*,Column**); 4573 void sqlite3SelectAddColumnTypeAndCollation(Parse*,Table*,Select*,char); 4574 Table *sqlite3ResultSetOfSelect(Parse*,Select*,char); 4575 void sqlite3OpenSchemaTable(Parse *, int); 4576 Index *sqlite3PrimaryKeyIndex(Table*); 4577 i16 sqlite3TableColumnToIndex(Index*, i16); 4578 #ifdef SQLITE_OMIT_GENERATED_COLUMNS 4579 # define sqlite3TableColumnToStorage(T,X) (X) /* No-op pass-through */ 4580 # define sqlite3StorageColumnToTable(T,X) (X) /* No-op pass-through */ 4581 #else 4582 i16 sqlite3TableColumnToStorage(Table*, i16); 4583 i16 sqlite3StorageColumnToTable(Table*, i16); 4584 #endif 4585 void sqlite3StartTable(Parse*,Token*,Token*,int,int,int,int); 4586 #if SQLITE_ENABLE_HIDDEN_COLUMNS 4587 void sqlite3ColumnPropertiesFromName(Table*, Column*); 4588 #else 4589 # define sqlite3ColumnPropertiesFromName(T,C) /* no-op */ 4590 #endif 4591 void sqlite3AddColumn(Parse*,Token,Token); 4592 void sqlite3AddNotNull(Parse*, int); 4593 void sqlite3AddPrimaryKey(Parse*, ExprList*, int, int, int); 4594 void sqlite3AddCheckConstraint(Parse*, Expr*, const char*, const char*); 4595 void sqlite3AddDefaultValue(Parse*,Expr*,const char*,const char*); 4596 void sqlite3AddCollateType(Parse*, Token*); 4597 void sqlite3AddGenerated(Parse*,Expr*,Token*); 4598 void sqlite3EndTable(Parse*,Token*,Token*,u32,Select*); 4599 void sqlite3AddReturning(Parse*,ExprList*); 4600 int sqlite3ParseUri(const char*,const char*,unsigned int*, 4601 sqlite3_vfs**,char**,char **); 4602 #define sqlite3CodecQueryParameters(A,B,C) 0 4603 Btree *sqlite3DbNameToBtree(sqlite3*,const char*); 4604 4605 #ifdef SQLITE_UNTESTABLE 4606 # define sqlite3FaultSim(X) SQLITE_OK 4607 #else 4608 int sqlite3FaultSim(int); 4609 #endif 4610 4611 Bitvec *sqlite3BitvecCreate(u32); 4612 int sqlite3BitvecTest(Bitvec*, u32); 4613 int sqlite3BitvecTestNotNull(Bitvec*, u32); 4614 int sqlite3BitvecSet(Bitvec*, u32); 4615 void sqlite3BitvecClear(Bitvec*, u32, void*); 4616 void sqlite3BitvecDestroy(Bitvec*); 4617 u32 sqlite3BitvecSize(Bitvec*); 4618 #ifndef SQLITE_UNTESTABLE 4619 int sqlite3BitvecBuiltinTest(int,int*); 4620 #endif 4621 4622 RowSet *sqlite3RowSetInit(sqlite3*); 4623 void sqlite3RowSetDelete(void*); 4624 void sqlite3RowSetClear(void*); 4625 void sqlite3RowSetInsert(RowSet*, i64); 4626 int sqlite3RowSetTest(RowSet*, int iBatch, i64); 4627 int sqlite3RowSetNext(RowSet*, i64*); 4628 4629 void sqlite3CreateView(Parse*,Token*,Token*,Token*,ExprList*,Select*,int,int); 4630 4631 #if !defined(SQLITE_OMIT_VIEW) || !defined(SQLITE_OMIT_VIRTUALTABLE) 4632 int sqlite3ViewGetColumnNames(Parse*,Table*); 4633 #else 4634 # define sqlite3ViewGetColumnNames(A,B) 0 4635 #endif 4636 4637 #if SQLITE_MAX_ATTACHED>30 4638 int sqlite3DbMaskAllZero(yDbMask); 4639 #endif 4640 void sqlite3DropTable(Parse*, SrcList*, int, int); 4641 void sqlite3CodeDropTable(Parse*, Table*, int, int); 4642 void sqlite3DeleteTable(sqlite3*, Table*); 4643 void sqlite3FreeIndex(sqlite3*, Index*); 4644 #ifndef SQLITE_OMIT_AUTOINCREMENT 4645 void sqlite3AutoincrementBegin(Parse *pParse); 4646 void sqlite3AutoincrementEnd(Parse *pParse); 4647 #else 4648 # define sqlite3AutoincrementBegin(X) 4649 # define sqlite3AutoincrementEnd(X) 4650 #endif 4651 void sqlite3Insert(Parse*, SrcList*, Select*, IdList*, int, Upsert*); 4652 #ifndef SQLITE_OMIT_GENERATED_COLUMNS 4653 void sqlite3ComputeGeneratedColumns(Parse*, int, Table*); 4654 #endif 4655 void *sqlite3ArrayAllocate(sqlite3*,void*,int,int*,int*); 4656 IdList *sqlite3IdListAppend(Parse*, IdList*, Token*); 4657 int sqlite3IdListIndex(IdList*,const char*); 4658 SrcList *sqlite3SrcListEnlarge(Parse*, SrcList*, int, int); 4659 SrcList *sqlite3SrcListAppendList(Parse *pParse, SrcList *p1, SrcList *p2); 4660 SrcList *sqlite3SrcListAppend(Parse*, SrcList*, Token*, Token*); 4661 SrcList *sqlite3SrcListAppendFromTerm(Parse*, SrcList*, Token*, Token*, 4662 Token*, Select*, OnOrUsing*); 4663 void sqlite3SrcListIndexedBy(Parse *, SrcList *, Token *); 4664 void sqlite3SrcListFuncArgs(Parse*, SrcList*, ExprList*); 4665 int sqlite3IndexedByLookup(Parse *, SrcItem *); 4666 void sqlite3SrcListShiftJoinType(Parse*,SrcList*); 4667 void sqlite3SrcListAssignCursors(Parse*, SrcList*); 4668 void sqlite3IdListDelete(sqlite3*, IdList*); 4669 void sqlite3ClearOnOrUsing(sqlite3*, OnOrUsing*); 4670 void sqlite3SrcListDelete(sqlite3*, SrcList*); 4671 Index *sqlite3AllocateIndexObject(sqlite3*,i16,int,char**); 4672 void sqlite3CreateIndex(Parse*,Token*,Token*,SrcList*,ExprList*,int,Token*, 4673 Expr*, int, int, u8); 4674 void sqlite3DropIndex(Parse*, SrcList*, int); 4675 int sqlite3Select(Parse*, Select*, SelectDest*); 4676 Select *sqlite3SelectNew(Parse*,ExprList*,SrcList*,Expr*,ExprList*, 4677 Expr*,ExprList*,u32,Expr*); 4678 void sqlite3SelectDelete(sqlite3*, Select*); 4679 Table *sqlite3SrcListLookup(Parse*, SrcList*); 4680 int sqlite3IsReadOnly(Parse*, Table*, int); 4681 void sqlite3OpenTable(Parse*, int iCur, int iDb, Table*, int); 4682 #if defined(SQLITE_ENABLE_UPDATE_DELETE_LIMIT) && !defined(SQLITE_OMIT_SUBQUERY) 4683 Expr *sqlite3LimitWhere(Parse*,SrcList*,Expr*,ExprList*,Expr*,char*); 4684 #endif 4685 void sqlite3CodeChangeCount(Vdbe*,int,const char*); 4686 void sqlite3DeleteFrom(Parse*, SrcList*, Expr*, ExprList*, Expr*); 4687 void sqlite3Update(Parse*, SrcList*, ExprList*,Expr*,int,ExprList*,Expr*, 4688 Upsert*); 4689 WhereInfo *sqlite3WhereBegin(Parse*,SrcList*,Expr*,ExprList*, 4690 ExprList*,Select*,u16,int); 4691 void sqlite3WhereEnd(WhereInfo*); 4692 LogEst sqlite3WhereOutputRowCount(WhereInfo*); 4693 int sqlite3WhereIsDistinct(WhereInfo*); 4694 int sqlite3WhereIsOrdered(WhereInfo*); 4695 int sqlite3WhereOrderByLimitOptLabel(WhereInfo*); 4696 void sqlite3WhereMinMaxOptEarlyOut(Vdbe*,WhereInfo*); 4697 int sqlite3WhereIsSorted(WhereInfo*); 4698 int sqlite3WhereContinueLabel(WhereInfo*); 4699 int sqlite3WhereBreakLabel(WhereInfo*); 4700 int sqlite3WhereOkOnePass(WhereInfo*, int*); 4701 #define ONEPASS_OFF 0 /* Use of ONEPASS not allowed */ 4702 #define ONEPASS_SINGLE 1 /* ONEPASS valid for a single row update */ 4703 #define ONEPASS_MULTI 2 /* ONEPASS is valid for multiple rows */ 4704 int sqlite3WhereUsesDeferredSeek(WhereInfo*); 4705 void sqlite3ExprCodeLoadIndexColumn(Parse*, Index*, int, int, int); 4706 int sqlite3ExprCodeGetColumn(Parse*, Table*, int, int, int, u8); 4707 void sqlite3ExprCodeGetColumnOfTable(Vdbe*, Table*, int, int, int); 4708 void sqlite3ExprCodeMove(Parse*, int, int, int); 4709 void sqlite3ExprCode(Parse*, Expr*, int); 4710 #ifndef SQLITE_OMIT_GENERATED_COLUMNS 4711 void sqlite3ExprCodeGeneratedColumn(Parse*, Table*, Column*, int); 4712 #endif 4713 void sqlite3ExprCodeCopy(Parse*, Expr*, int); 4714 void sqlite3ExprCodeFactorable(Parse*, Expr*, int); 4715 int sqlite3ExprCodeRunJustOnce(Parse*, Expr*, int); 4716 int sqlite3ExprCodeTemp(Parse*, Expr*, int*); 4717 int sqlite3ExprCodeTarget(Parse*, Expr*, int); 4718 int sqlite3ExprCodeExprList(Parse*, ExprList*, int, int, u8); 4719 #define SQLITE_ECEL_DUP 0x01 /* Deep, not shallow copies */ 4720 #define SQLITE_ECEL_FACTOR 0x02 /* Factor out constant terms */ 4721 #define SQLITE_ECEL_REF 0x04 /* Use ExprList.u.x.iOrderByCol */ 4722 #define SQLITE_ECEL_OMITREF 0x08 /* Omit if ExprList.u.x.iOrderByCol */ 4723 void sqlite3ExprIfTrue(Parse*, Expr*, int, int); 4724 void sqlite3ExprIfFalse(Parse*, Expr*, int, int); 4725 void sqlite3ExprIfFalseDup(Parse*, Expr*, int, int); 4726 Table *sqlite3FindTable(sqlite3*,const char*, const char*); 4727 #define LOCATE_VIEW 0x01 4728 #define LOCATE_NOERR 0x02 4729 Table *sqlite3LocateTable(Parse*,u32 flags,const char*, const char*); 4730 const char *sqlite3PreferredTableName(const char*); 4731 Table *sqlite3LocateTableItem(Parse*,u32 flags,SrcItem *); 4732 Index *sqlite3FindIndex(sqlite3*,const char*, const char*); 4733 void sqlite3UnlinkAndDeleteTable(sqlite3*,int,const char*); 4734 void sqlite3UnlinkAndDeleteIndex(sqlite3*,int,const char*); 4735 void sqlite3Vacuum(Parse*,Token*,Expr*); 4736 int sqlite3RunVacuum(char**, sqlite3*, int, sqlite3_value*); 4737 char *sqlite3NameFromToken(sqlite3*, const Token*); 4738 int sqlite3ExprCompare(const Parse*,const Expr*,const Expr*, int); 4739 int sqlite3ExprCompareSkip(Expr*,Expr*,int); 4740 int sqlite3ExprListCompare(const ExprList*,const ExprList*, int); 4741 int sqlite3ExprImpliesExpr(const Parse*,const Expr*,const Expr*, int); 4742 int sqlite3ExprImpliesNonNullRow(Expr*,int); 4743 void sqlite3AggInfoPersistWalkerInit(Walker*,Parse*); 4744 void sqlite3ExprAnalyzeAggregates(NameContext*, Expr*); 4745 void sqlite3ExprAnalyzeAggList(NameContext*,ExprList*); 4746 int sqlite3ExprCoveredByIndex(Expr*, int iCur, Index *pIdx); 4747 int sqlite3ReferencesSrcList(Parse*, Expr*, SrcList*); 4748 Vdbe *sqlite3GetVdbe(Parse*); 4749 #ifndef SQLITE_UNTESTABLE 4750 void sqlite3PrngSaveState(void); 4751 void sqlite3PrngRestoreState(void); 4752 #endif 4753 void sqlite3RollbackAll(sqlite3*,int); 4754 void sqlite3CodeVerifySchema(Parse*, int); 4755 void sqlite3CodeVerifyNamedSchema(Parse*, const char *zDb); 4756 void sqlite3BeginTransaction(Parse*, int); 4757 void sqlite3EndTransaction(Parse*,int); 4758 void sqlite3Savepoint(Parse*, int, Token*); 4759 void sqlite3CloseSavepoints(sqlite3 *); 4760 void sqlite3LeaveMutexAndCloseZombie(sqlite3*); 4761 u32 sqlite3IsTrueOrFalse(const char*); 4762 int sqlite3ExprIdToTrueFalse(Expr*); 4763 int sqlite3ExprTruthValue(const Expr*); 4764 int sqlite3ExprIsConstant(Expr*); 4765 int sqlite3ExprIsConstantNotJoin(Expr*); 4766 int sqlite3ExprIsConstantOrFunction(Expr*, u8); 4767 int sqlite3ExprIsConstantOrGroupBy(Parse*, Expr*, ExprList*); 4768 int sqlite3ExprIsTableConstant(Expr*,int); 4769 int sqlite3ExprIsTableConstraint(Expr*,const SrcItem*); 4770 #ifdef SQLITE_ENABLE_CURSOR_HINTS 4771 int sqlite3ExprContainsSubquery(Expr*); 4772 #endif 4773 int sqlite3ExprIsInteger(const Expr*, int*); 4774 int sqlite3ExprCanBeNull(const Expr*); 4775 int sqlite3ExprNeedsNoAffinityChange(const Expr*, char); 4776 int sqlite3IsRowid(const char*); 4777 void sqlite3GenerateRowDelete( 4778 Parse*,Table*,Trigger*,int,int,int,i16,u8,u8,u8,int); 4779 void sqlite3GenerateRowIndexDelete(Parse*, Table*, int, int, int*, int); 4780 int sqlite3GenerateIndexKey(Parse*, Index*, int, int, int, int*,Index*,int); 4781 void sqlite3ResolvePartIdxLabel(Parse*,int); 4782 int sqlite3ExprReferencesUpdatedColumn(Expr*,int*,int); 4783 void sqlite3GenerateConstraintChecks(Parse*,Table*,int*,int,int,int,int, 4784 u8,u8,int,int*,int*,Upsert*); 4785 #ifdef SQLITE_ENABLE_NULL_TRIM 4786 void sqlite3SetMakeRecordP5(Vdbe*,Table*); 4787 #else 4788 # define sqlite3SetMakeRecordP5(A,B) 4789 #endif 4790 void sqlite3CompleteInsertion(Parse*,Table*,int,int,int,int*,int,int,int); 4791 int sqlite3OpenTableAndIndices(Parse*, Table*, int, u8, int, u8*, int*, int*); 4792 void sqlite3BeginWriteOperation(Parse*, int, int); 4793 void sqlite3MultiWrite(Parse*); 4794 void sqlite3MayAbort(Parse*); 4795 void sqlite3HaltConstraint(Parse*, int, int, char*, i8, u8); 4796 void sqlite3UniqueConstraint(Parse*, int, Index*); 4797 void sqlite3RowidConstraint(Parse*, int, Table*); 4798 Expr *sqlite3ExprDup(sqlite3*,const Expr*,int); 4799 ExprList *sqlite3ExprListDup(sqlite3*,const ExprList*,int); 4800 SrcList *sqlite3SrcListDup(sqlite3*,const SrcList*,int); 4801 IdList *sqlite3IdListDup(sqlite3*,const IdList*); 4802 Select *sqlite3SelectDup(sqlite3*,const Select*,int); 4803 FuncDef *sqlite3FunctionSearch(int,const char*); 4804 void sqlite3InsertBuiltinFuncs(FuncDef*,int); 4805 FuncDef *sqlite3FindFunction(sqlite3*,const char*,int,u8,u8); 4806 void sqlite3QuoteValue(StrAccum*,sqlite3_value*); 4807 void sqlite3RegisterBuiltinFunctions(void); 4808 void sqlite3RegisterDateTimeFunctions(void); 4809 void sqlite3RegisterJsonFunctions(void); 4810 void sqlite3RegisterPerConnectionBuiltinFunctions(sqlite3*); 4811 #if !defined(SQLITE_OMIT_VIRTUALTABLE) && !defined(SQLITE_OMIT_JSON) 4812 int sqlite3JsonTableFunctions(sqlite3*); 4813 #endif 4814 int sqlite3SafetyCheckOk(sqlite3*); 4815 int sqlite3SafetyCheckSickOrOk(sqlite3*); 4816 void sqlite3ChangeCookie(Parse*, int); 4817 With *sqlite3WithDup(sqlite3 *db, With *p); 4818 4819 #if !defined(SQLITE_OMIT_VIEW) && !defined(SQLITE_OMIT_TRIGGER) 4820 void sqlite3MaterializeView(Parse*, Table*, Expr*, ExprList*,Expr*,int); 4821 #endif 4822 4823 #ifndef SQLITE_OMIT_TRIGGER 4824 void sqlite3BeginTrigger(Parse*, Token*,Token*,int,int,IdList*,SrcList*, 4825 Expr*,int, int); 4826 void sqlite3FinishTrigger(Parse*, TriggerStep*, Token*); 4827 void sqlite3DropTrigger(Parse*, SrcList*, int); 4828 void sqlite3DropTriggerPtr(Parse*, Trigger*); 4829 Trigger *sqlite3TriggersExist(Parse *, Table*, int, ExprList*, int *pMask); 4830 Trigger *sqlite3TriggerList(Parse *, Table *); 4831 void sqlite3CodeRowTrigger(Parse*, Trigger *, int, ExprList*, int, Table *, 4832 int, int, int); 4833 void sqlite3CodeRowTriggerDirect(Parse *, Trigger *, Table *, int, int, int); 4834 void sqliteViewTriggers(Parse*, Table*, Expr*, int, ExprList*); 4835 void sqlite3DeleteTriggerStep(sqlite3*, TriggerStep*); 4836 TriggerStep *sqlite3TriggerSelectStep(sqlite3*,Select*, 4837 const char*,const char*); 4838 TriggerStep *sqlite3TriggerInsertStep(Parse*,Token*, IdList*, 4839 Select*,u8,Upsert*, 4840 const char*,const char*); 4841 TriggerStep *sqlite3TriggerUpdateStep(Parse*,Token*,SrcList*,ExprList*, 4842 Expr*, u8, const char*,const char*); 4843 TriggerStep *sqlite3TriggerDeleteStep(Parse*,Token*, Expr*, 4844 const char*,const char*); 4845 void sqlite3DeleteTrigger(sqlite3*, Trigger*); 4846 void sqlite3UnlinkAndDeleteTrigger(sqlite3*,int,const char*); 4847 u32 sqlite3TriggerColmask(Parse*,Trigger*,ExprList*,int,int,Table*,int); 4848 SrcList *sqlite3TriggerStepSrc(Parse*, TriggerStep*); 4849 # define sqlite3ParseToplevel(p) ((p)->pToplevel ? (p)->pToplevel : (p)) 4850 # define sqlite3IsToplevel(p) ((p)->pToplevel==0) 4851 #else 4852 # define sqlite3TriggersExist(B,C,D,E,F) 0 4853 # define sqlite3DeleteTrigger(A,B) 4854 # define sqlite3DropTriggerPtr(A,B) 4855 # define sqlite3UnlinkAndDeleteTrigger(A,B,C) 4856 # define sqlite3CodeRowTrigger(A,B,C,D,E,F,G,H,I) 4857 # define sqlite3CodeRowTriggerDirect(A,B,C,D,E,F) 4858 # define sqlite3TriggerList(X, Y) 0 4859 # define sqlite3ParseToplevel(p) p 4860 # define sqlite3IsToplevel(p) 1 4861 # define sqlite3TriggerColmask(A,B,C,D,E,F,G) 0 4862 # define sqlite3TriggerStepSrc(A,B) 0 4863 #endif 4864 4865 int sqlite3JoinType(Parse*, Token*, Token*, Token*); 4866 int sqlite3ColumnIndex(Table *pTab, const char *zCol); 4867 void sqlite3SrcItemColumnUsed(SrcItem*,int); 4868 void sqlite3SetJoinExpr(Expr*,int,u32); 4869 void sqlite3CreateForeignKey(Parse*, ExprList*, Token*, ExprList*, int); 4870 void sqlite3DeferForeignKey(Parse*, int); 4871 #ifndef SQLITE_OMIT_AUTHORIZATION 4872 void sqlite3AuthRead(Parse*,Expr*,Schema*,SrcList*); 4873 int sqlite3AuthCheck(Parse*,int, const char*, const char*, const char*); 4874 void sqlite3AuthContextPush(Parse*, AuthContext*, const char*); 4875 void sqlite3AuthContextPop(AuthContext*); 4876 int sqlite3AuthReadCol(Parse*, const char *, const char *, int); 4877 #else 4878 # define sqlite3AuthRead(a,b,c,d) 4879 # define sqlite3AuthCheck(a,b,c,d,e) SQLITE_OK 4880 # define sqlite3AuthContextPush(a,b,c) 4881 # define sqlite3AuthContextPop(a) ((void)(a)) 4882 #endif 4883 int sqlite3DbIsNamed(sqlite3 *db, int iDb, const char *zName); 4884 void sqlite3Attach(Parse*, Expr*, Expr*, Expr*); 4885 void sqlite3Detach(Parse*, Expr*); 4886 void sqlite3FixInit(DbFixer*, Parse*, int, const char*, const Token*); 4887 int sqlite3FixSrcList(DbFixer*, SrcList*); 4888 int sqlite3FixSelect(DbFixer*, Select*); 4889 int sqlite3FixExpr(DbFixer*, Expr*); 4890 int sqlite3FixTriggerStep(DbFixer*, TriggerStep*); 4891 int sqlite3RealSameAsInt(double,sqlite3_int64); 4892 i64 sqlite3RealToI64(double); 4893 void sqlite3Int64ToText(i64,char*); 4894 int sqlite3AtoF(const char *z, double*, int, u8); 4895 int sqlite3GetInt32(const char *, int*); 4896 int sqlite3GetUInt32(const char*, u32*); 4897 int sqlite3Atoi(const char*); 4898 #ifndef SQLITE_OMIT_UTF16 4899 int sqlite3Utf16ByteLen(const void *pData, int nChar); 4900 #endif 4901 int sqlite3Utf8CharLen(const char *pData, int nByte); 4902 u32 sqlite3Utf8Read(const u8**); 4903 LogEst sqlite3LogEst(u64); 4904 LogEst sqlite3LogEstAdd(LogEst,LogEst); 4905 LogEst sqlite3LogEstFromDouble(double); 4906 u64 sqlite3LogEstToInt(LogEst); 4907 VList *sqlite3VListAdd(sqlite3*,VList*,const char*,int,int); 4908 const char *sqlite3VListNumToName(VList*,int); 4909 int sqlite3VListNameToNum(VList*,const char*,int); 4910 4911 /* 4912 ** Routines to read and write variable-length integers. These used to 4913 ** be defined locally, but now we use the varint routines in the util.c 4914 ** file. 4915 */ 4916 int sqlite3PutVarint(unsigned char*, u64); 4917 u8 sqlite3GetVarint(const unsigned char *, u64 *); 4918 u8 sqlite3GetVarint32(const unsigned char *, u32 *); 4919 int sqlite3VarintLen(u64 v); 4920 4921 /* 4922 ** The common case is for a varint to be a single byte. They following 4923 ** macros handle the common case without a procedure call, but then call 4924 ** the procedure for larger varints. 4925 */ 4926 #define getVarint32(A,B) \ 4927 (u8)((*(A)<(u8)0x80)?((B)=(u32)*(A)),1:sqlite3GetVarint32((A),(u32 *)&(B))) 4928 #define getVarint32NR(A,B) \ 4929 B=(u32)*(A);if(B>=0x80)sqlite3GetVarint32((A),(u32*)&(B)) 4930 #define putVarint32(A,B) \ 4931 (u8)(((u32)(B)<(u32)0x80)?(*(A)=(unsigned char)(B)),1:\ 4932 sqlite3PutVarint((A),(B))) 4933 #define getVarint sqlite3GetVarint 4934 #define putVarint sqlite3PutVarint 4935 4936 4937 const char *sqlite3IndexAffinityStr(sqlite3*, Index*); 4938 void sqlite3TableAffinity(Vdbe*, Table*, int); 4939 char sqlite3CompareAffinity(const Expr *pExpr, char aff2); 4940 int sqlite3IndexAffinityOk(const Expr *pExpr, char idx_affinity); 4941 char sqlite3TableColumnAffinity(const Table*,int); 4942 char sqlite3ExprAffinity(const Expr *pExpr); 4943 int sqlite3Atoi64(const char*, i64*, int, u8); 4944 int sqlite3DecOrHexToI64(const char*, i64*); 4945 void sqlite3ErrorWithMsg(sqlite3*, int, const char*,...); 4946 void sqlite3Error(sqlite3*,int); 4947 void sqlite3ErrorClear(sqlite3*); 4948 void sqlite3SystemError(sqlite3*,int); 4949 void *sqlite3HexToBlob(sqlite3*, const char *z, int n); 4950 u8 sqlite3HexToInt(int h); 4951 int sqlite3TwoPartName(Parse *, Token *, Token *, Token **); 4952 4953 #if defined(SQLITE_NEED_ERR_NAME) 4954 const char *sqlite3ErrName(int); 4955 #endif 4956 4957 #ifndef SQLITE_OMIT_DESERIALIZE 4958 int sqlite3MemdbInit(void); 4959 #endif 4960 4961 const char *sqlite3ErrStr(int); 4962 int sqlite3ReadSchema(Parse *pParse); 4963 CollSeq *sqlite3FindCollSeq(sqlite3*,u8 enc, const char*,int); 4964 int sqlite3IsBinary(const CollSeq*); 4965 CollSeq *sqlite3LocateCollSeq(Parse *pParse, const char*zName); 4966 void sqlite3SetTextEncoding(sqlite3 *db, u8); 4967 CollSeq *sqlite3ExprCollSeq(Parse *pParse, const Expr *pExpr); 4968 CollSeq *sqlite3ExprNNCollSeq(Parse *pParse, const Expr *pExpr); 4969 int sqlite3ExprCollSeqMatch(Parse*,const Expr*,const Expr*); 4970 Expr *sqlite3ExprAddCollateToken(const Parse *pParse, Expr*, const Token*, int); 4971 Expr *sqlite3ExprAddCollateString(const Parse*,Expr*,const char*); 4972 Expr *sqlite3ExprSkipCollate(Expr*); 4973 Expr *sqlite3ExprSkipCollateAndLikely(Expr*); 4974 int sqlite3CheckCollSeq(Parse *, CollSeq *); 4975 int sqlite3WritableSchema(sqlite3*); 4976 int sqlite3CheckObjectName(Parse*, const char*,const char*,const char*); 4977 void sqlite3VdbeSetChanges(sqlite3 *, i64); 4978 int sqlite3AddInt64(i64*,i64); 4979 int sqlite3SubInt64(i64*,i64); 4980 int sqlite3MulInt64(i64*,i64); 4981 int sqlite3AbsInt32(int); 4982 #ifdef SQLITE_ENABLE_8_3_NAMES 4983 void sqlite3FileSuffix3(const char*, char*); 4984 #else 4985 # define sqlite3FileSuffix3(X,Y) 4986 #endif 4987 u8 sqlite3GetBoolean(const char *z,u8); 4988 4989 const void *sqlite3ValueText(sqlite3_value*, u8); 4990 int sqlite3ValueBytes(sqlite3_value*, u8); 4991 void sqlite3ValueSetStr(sqlite3_value*, int, const void *,u8, 4992 void(*)(void*)); 4993 void sqlite3ValueSetNull(sqlite3_value*); 4994 void sqlite3ValueFree(sqlite3_value*); 4995 #ifndef SQLITE_UNTESTABLE 4996 void sqlite3ResultIntReal(sqlite3_context*); 4997 #endif 4998 sqlite3_value *sqlite3ValueNew(sqlite3 *); 4999 #ifndef SQLITE_OMIT_UTF16 5000 char *sqlite3Utf16to8(sqlite3 *, const void*, int, u8); 5001 #endif 5002 int sqlite3ValueFromExpr(sqlite3 *, const Expr *, u8, u8, sqlite3_value **); 5003 void sqlite3ValueApplyAffinity(sqlite3_value *, u8, u8); 5004 #ifndef SQLITE_AMALGAMATION 5005 extern const unsigned char sqlite3OpcodeProperty[]; 5006 extern const char sqlite3StrBINARY[]; 5007 extern const unsigned char sqlite3StdTypeLen[]; 5008 extern const char sqlite3StdTypeAffinity[]; 5009 extern const char sqlite3StdTypeMap[]; 5010 extern const char *sqlite3StdType[]; 5011 extern const unsigned char sqlite3UpperToLower[]; 5012 extern const unsigned char *sqlite3aLTb; 5013 extern const unsigned char *sqlite3aEQb; 5014 extern const unsigned char *sqlite3aGTb; 5015 extern const unsigned char sqlite3CtypeMap[]; 5016 extern SQLITE_WSD struct Sqlite3Config sqlite3Config; 5017 extern FuncDefHash sqlite3BuiltinFunctions; 5018 #ifndef SQLITE_OMIT_WSD 5019 extern int sqlite3PendingByte; 5020 #endif 5021 #endif /* SQLITE_AMALGAMATION */ 5022 #ifdef VDBE_PROFILE 5023 extern sqlite3_uint64 sqlite3NProfileCnt; 5024 #endif 5025 void sqlite3RootPageMoved(sqlite3*, int, Pgno, Pgno); 5026 void sqlite3Reindex(Parse*, Token*, Token*); 5027 void sqlite3AlterFunctions(void); 5028 void sqlite3AlterRenameTable(Parse*, SrcList*, Token*); 5029 void sqlite3AlterRenameColumn(Parse*, SrcList*, Token*, Token*); 5030 int sqlite3GetToken(const unsigned char *, int *); 5031 void sqlite3NestedParse(Parse*, const char*, ...); 5032 void sqlite3ExpirePreparedStatements(sqlite3*, int); 5033 void sqlite3CodeRhsOfIN(Parse*, Expr*, int); 5034 int sqlite3CodeSubselect(Parse*, Expr*); 5035 void sqlite3SelectPrep(Parse*, Select*, NameContext*); 5036 int sqlite3ExpandSubquery(Parse*, SrcItem*); 5037 void sqlite3SelectWrongNumTermsError(Parse *pParse, Select *p); 5038 int sqlite3MatchEName( 5039 const struct ExprList_item*, 5040 const char*, 5041 const char*, 5042 const char* 5043 ); 5044 Bitmask sqlite3ExprColUsed(Expr*); 5045 u8 sqlite3StrIHash(const char*); 5046 int sqlite3ResolveExprNames(NameContext*, Expr*); 5047 int sqlite3ResolveExprListNames(NameContext*, ExprList*); 5048 void sqlite3ResolveSelectNames(Parse*, Select*, NameContext*); 5049 int sqlite3ResolveSelfReference(Parse*,Table*,int,Expr*,ExprList*); 5050 int sqlite3ResolveOrderGroupBy(Parse*, Select*, ExprList*, const char*); 5051 void sqlite3ColumnDefault(Vdbe *, Table *, int, int); 5052 void sqlite3AlterFinishAddColumn(Parse *, Token *); 5053 void sqlite3AlterBeginAddColumn(Parse *, SrcList *); 5054 void sqlite3AlterDropColumn(Parse*, SrcList*, const Token*); 5055 const void *sqlite3RenameTokenMap(Parse*, const void*, const Token*); 5056 void sqlite3RenameTokenRemap(Parse*, const void *pTo, const void *pFrom); 5057 void sqlite3RenameExprUnmap(Parse*, Expr*); 5058 void sqlite3RenameExprlistUnmap(Parse*, ExprList*); 5059 CollSeq *sqlite3GetCollSeq(Parse*, u8, CollSeq *, const char*); 5060 char sqlite3AffinityType(const char*, Column*); 5061 void sqlite3Analyze(Parse*, Token*, Token*); 5062 int sqlite3InvokeBusyHandler(BusyHandler*); 5063 int sqlite3FindDb(sqlite3*, Token*); 5064 int sqlite3FindDbName(sqlite3 *, const char *); 5065 int sqlite3AnalysisLoad(sqlite3*,int iDB); 5066 void sqlite3DeleteIndexSamples(sqlite3*,Index*); 5067 void sqlite3DefaultRowEst(Index*); 5068 void sqlite3RegisterLikeFunctions(sqlite3*, int); 5069 int sqlite3IsLikeFunction(sqlite3*,Expr*,int*,char*); 5070 void sqlite3SchemaClear(void *); 5071 Schema *sqlite3SchemaGet(sqlite3 *, Btree *); 5072 int sqlite3SchemaToIndex(sqlite3 *db, Schema *); 5073 KeyInfo *sqlite3KeyInfoAlloc(sqlite3*,int,int); 5074 void sqlite3KeyInfoUnref(KeyInfo*); 5075 KeyInfo *sqlite3KeyInfoRef(KeyInfo*); 5076 KeyInfo *sqlite3KeyInfoOfIndex(Parse*, Index*); 5077 KeyInfo *sqlite3KeyInfoFromExprList(Parse*, ExprList*, int, int); 5078 const char *sqlite3SelectOpName(int); 5079 int sqlite3HasExplicitNulls(Parse*, ExprList*); 5080 5081 #ifdef SQLITE_DEBUG 5082 int sqlite3KeyInfoIsWriteable(KeyInfo*); 5083 #endif 5084 int sqlite3CreateFunc(sqlite3 *, const char *, int, int, void *, 5085 void (*)(sqlite3_context*,int,sqlite3_value **), 5086 void (*)(sqlite3_context*,int,sqlite3_value **), 5087 void (*)(sqlite3_context*), 5088 void (*)(sqlite3_context*), 5089 void (*)(sqlite3_context*,int,sqlite3_value **), 5090 FuncDestructor *pDestructor 5091 ); 5092 void sqlite3NoopDestructor(void*); 5093 void *sqlite3OomFault(sqlite3*); 5094 void sqlite3OomClear(sqlite3*); 5095 int sqlite3ApiExit(sqlite3 *db, int); 5096 int sqlite3OpenTempDatabase(Parse *); 5097 5098 void sqlite3StrAccumInit(StrAccum*, sqlite3*, char*, int, int); 5099 int sqlite3StrAccumEnlarge(StrAccum*, int); 5100 char *sqlite3StrAccumFinish(StrAccum*); 5101 void sqlite3StrAccumSetError(StrAccum*, u8); 5102 void sqlite3ResultStrAccum(sqlite3_context*,StrAccum*); 5103 void sqlite3SelectDestInit(SelectDest*,int,int); 5104 Expr *sqlite3CreateColumnExpr(sqlite3 *, SrcList *, int, int); 5105 void sqlite3RecordErrorByteOffset(sqlite3*,const char*); 5106 void sqlite3RecordErrorOffsetOfExpr(sqlite3*,const Expr*); 5107 5108 void sqlite3BackupRestart(sqlite3_backup *); 5109 void sqlite3BackupUpdate(sqlite3_backup *, Pgno, const u8 *); 5110 5111 #ifndef SQLITE_OMIT_SUBQUERY 5112 int sqlite3ExprCheckIN(Parse*, Expr*); 5113 #else 5114 # define sqlite3ExprCheckIN(x,y) SQLITE_OK 5115 #endif 5116 5117 #ifdef SQLITE_ENABLE_STAT4 5118 int sqlite3Stat4ProbeSetValue( 5119 Parse*,Index*,UnpackedRecord**,Expr*,int,int,int*); 5120 int sqlite3Stat4ValueFromExpr(Parse*, Expr*, u8, sqlite3_value**); 5121 void sqlite3Stat4ProbeFree(UnpackedRecord*); 5122 int sqlite3Stat4Column(sqlite3*, const void*, int, int, sqlite3_value**); 5123 char sqlite3IndexColumnAffinity(sqlite3*, Index*, int); 5124 #endif 5125 5126 /* 5127 ** The interface to the LEMON-generated parser 5128 */ 5129 #ifndef SQLITE_AMALGAMATION 5130 void *sqlite3ParserAlloc(void*(*)(u64), Parse*); 5131 void sqlite3ParserFree(void*, void(*)(void*)); 5132 #endif 5133 void sqlite3Parser(void*, int, Token); 5134 int sqlite3ParserFallback(int); 5135 #ifdef YYTRACKMAXSTACKDEPTH 5136 int sqlite3ParserStackPeak(void*); 5137 #endif 5138 5139 void sqlite3AutoLoadExtensions(sqlite3*); 5140 #ifndef SQLITE_OMIT_LOAD_EXTENSION 5141 void sqlite3CloseExtensions(sqlite3*); 5142 #else 5143 # define sqlite3CloseExtensions(X) 5144 #endif 5145 5146 #ifndef SQLITE_OMIT_SHARED_CACHE 5147 void sqlite3TableLock(Parse *, int, Pgno, u8, const char *); 5148 #else 5149 #define sqlite3TableLock(v,w,x,y,z) 5150 #endif 5151 5152 #ifdef SQLITE_TEST 5153 int sqlite3Utf8To8(unsigned char*); 5154 #endif 5155 5156 #ifdef SQLITE_OMIT_VIRTUALTABLE 5157 # define sqlite3VtabClear(D,T) 5158 # define sqlite3VtabSync(X,Y) SQLITE_OK 5159 # define sqlite3VtabRollback(X) 5160 # define sqlite3VtabCommit(X) 5161 # define sqlite3VtabInSync(db) 0 5162 # define sqlite3VtabLock(X) 5163 # define sqlite3VtabUnlock(X) 5164 # define sqlite3VtabModuleUnref(D,X) 5165 # define sqlite3VtabUnlockList(X) 5166 # define sqlite3VtabSavepoint(X, Y, Z) SQLITE_OK 5167 # define sqlite3GetVTable(X,Y) ((VTable*)0) 5168 #else 5169 void sqlite3VtabClear(sqlite3 *db, Table*); 5170 void sqlite3VtabDisconnect(sqlite3 *db, Table *p); 5171 int sqlite3VtabSync(sqlite3 *db, Vdbe*); 5172 int sqlite3VtabRollback(sqlite3 *db); 5173 int sqlite3VtabCommit(sqlite3 *db); 5174 void sqlite3VtabLock(VTable *); 5175 void sqlite3VtabUnlock(VTable *); 5176 void sqlite3VtabModuleUnref(sqlite3*,Module*); 5177 void sqlite3VtabUnlockList(sqlite3*); 5178 int sqlite3VtabSavepoint(sqlite3 *, int, int); 5179 void sqlite3VtabImportErrmsg(Vdbe*, sqlite3_vtab*); 5180 VTable *sqlite3GetVTable(sqlite3*, Table*); 5181 Module *sqlite3VtabCreateModule( 5182 sqlite3*, 5183 const char*, 5184 const sqlite3_module*, 5185 void*, 5186 void(*)(void*) 5187 ); 5188 # define sqlite3VtabInSync(db) ((db)->nVTrans>0 && (db)->aVTrans==0) 5189 #endif 5190 int sqlite3ReadOnlyShadowTables(sqlite3 *db); 5191 #ifndef SQLITE_OMIT_VIRTUALTABLE 5192 int sqlite3ShadowTableName(sqlite3 *db, const char *zName); 5193 int sqlite3IsShadowTableOf(sqlite3*,Table*,const char*); 5194 void sqlite3MarkAllShadowTablesOf(sqlite3*, Table*); 5195 #else 5196 # define sqlite3ShadowTableName(A,B) 0 5197 # define sqlite3IsShadowTableOf(A,B,C) 0 5198 # define sqlite3MarkAllShadowTablesOf(A,B) 5199 #endif 5200 int sqlite3VtabEponymousTableInit(Parse*,Module*); 5201 void sqlite3VtabEponymousTableClear(sqlite3*,Module*); 5202 void sqlite3VtabMakeWritable(Parse*,Table*); 5203 void sqlite3VtabBeginParse(Parse*, Token*, Token*, Token*, int); 5204 void sqlite3VtabFinishParse(Parse*, Token*); 5205 void sqlite3VtabArgInit(Parse*); 5206 void sqlite3VtabArgExtend(Parse*, Token*); 5207 int sqlite3VtabCallCreate(sqlite3*, int, const char *, char **); 5208 int sqlite3VtabCallConnect(Parse*, Table*); 5209 int sqlite3VtabCallDestroy(sqlite3*, int, const char *); 5210 int sqlite3VtabBegin(sqlite3 *, VTable *); 5211 5212 FuncDef *sqlite3VtabOverloadFunction(sqlite3 *,FuncDef*, int nArg, Expr*); 5213 #if (defined(SQLITE_ENABLE_DBPAGE_VTAB) || defined(SQLITE_TEST)) \ 5214 && !defined(SQLITE_OMIT_VIRTUALTABLE) 5215 void sqlite3VtabUsesAllSchemas(sqlite3_index_info*); 5216 #endif 5217 sqlite3_int64 sqlite3StmtCurrentTime(sqlite3_context*); 5218 int sqlite3VdbeParameterIndex(Vdbe*, const char*, int); 5219 int sqlite3TransferBindings(sqlite3_stmt *, sqlite3_stmt *); 5220 void sqlite3ParseObjectInit(Parse*,sqlite3*); 5221 void sqlite3ParseObjectReset(Parse*); 5222 void *sqlite3ParserAddCleanup(Parse*,void(*)(sqlite3*,void*),void*); 5223 #ifdef SQLITE_ENABLE_NORMALIZE 5224 char *sqlite3Normalize(Vdbe*, const char*); 5225 #endif 5226 int sqlite3Reprepare(Vdbe*); 5227 void sqlite3ExprListCheckLength(Parse*, ExprList*, const char*); 5228 CollSeq *sqlite3ExprCompareCollSeq(Parse*,const Expr*); 5229 CollSeq *sqlite3BinaryCompareCollSeq(Parse *, const Expr*, const Expr*); 5230 int sqlite3TempInMemory(const sqlite3*); 5231 const char *sqlite3JournalModename(int); 5232 #ifndef SQLITE_OMIT_WAL 5233 int sqlite3Checkpoint(sqlite3*, int, int, int*, int*); 5234 int sqlite3WalDefaultHook(void*,sqlite3*,const char*,int); 5235 #endif 5236 #ifndef SQLITE_OMIT_CTE 5237 Cte *sqlite3CteNew(Parse*,Token*,ExprList*,Select*,u8); 5238 void sqlite3CteDelete(sqlite3*,Cte*); 5239 With *sqlite3WithAdd(Parse*,With*,Cte*); 5240 void sqlite3WithDelete(sqlite3*,With*); 5241 With *sqlite3WithPush(Parse*, With*, u8); 5242 #else 5243 # define sqlite3CteNew(P,T,E,S) ((void*)0) 5244 # define sqlite3CteDelete(D,C) 5245 # define sqlite3CteWithAdd(P,W,C) ((void*)0) 5246 # define sqlite3WithDelete(x,y) 5247 # define sqlite3WithPush(x,y,z) ((void*)0) 5248 #endif 5249 #ifndef SQLITE_OMIT_UPSERT 5250 Upsert *sqlite3UpsertNew(sqlite3*,ExprList*,Expr*,ExprList*,Expr*,Upsert*); 5251 void sqlite3UpsertDelete(sqlite3*,Upsert*); 5252 Upsert *sqlite3UpsertDup(sqlite3*,Upsert*); 5253 int sqlite3UpsertAnalyzeTarget(Parse*,SrcList*,Upsert*); 5254 void sqlite3UpsertDoUpdate(Parse*,Upsert*,Table*,Index*,int); 5255 Upsert *sqlite3UpsertOfIndex(Upsert*,Index*); 5256 int sqlite3UpsertNextIsIPK(Upsert*); 5257 #else 5258 #define sqlite3UpsertNew(u,v,w,x,y,z) ((Upsert*)0) 5259 #define sqlite3UpsertDelete(x,y) 5260 #define sqlite3UpsertDup(x,y) ((Upsert*)0) 5261 #define sqlite3UpsertOfIndex(x,y) ((Upsert*)0) 5262 #define sqlite3UpsertNextIsIPK(x) 0 5263 #endif 5264 5265 5266 /* Declarations for functions in fkey.c. All of these are replaced by 5267 ** no-op macros if OMIT_FOREIGN_KEY is defined. In this case no foreign 5268 ** key functionality is available. If OMIT_TRIGGER is defined but 5269 ** OMIT_FOREIGN_KEY is not, only some of the functions are no-oped. In 5270 ** this case foreign keys are parsed, but no other functionality is 5271 ** provided (enforcement of FK constraints requires the triggers sub-system). 5272 */ 5273 #if !defined(SQLITE_OMIT_FOREIGN_KEY) && !defined(SQLITE_OMIT_TRIGGER) 5274 void sqlite3FkCheck(Parse*, Table*, int, int, int*, int); 5275 void sqlite3FkDropTable(Parse*, SrcList *, Table*); 5276 void sqlite3FkActions(Parse*, Table*, ExprList*, int, int*, int); 5277 int sqlite3FkRequired(Parse*, Table*, int*, int); 5278 u32 sqlite3FkOldmask(Parse*, Table*); 5279 FKey *sqlite3FkReferences(Table *); 5280 void sqlite3FkClearTriggerCache(sqlite3*,int); 5281 #else 5282 #define sqlite3FkActions(a,b,c,d,e,f) 5283 #define sqlite3FkCheck(a,b,c,d,e,f) 5284 #define sqlite3FkDropTable(a,b,c) 5285 #define sqlite3FkOldmask(a,b) 0 5286 #define sqlite3FkRequired(a,b,c,d) 0 5287 #define sqlite3FkReferences(a) 0 5288 #define sqlite3FkClearTriggerCache(a,b) 5289 #endif 5290 #ifndef SQLITE_OMIT_FOREIGN_KEY 5291 void sqlite3FkDelete(sqlite3 *, Table*); 5292 int sqlite3FkLocateIndex(Parse*,Table*,FKey*,Index**,int**); 5293 #else 5294 #define sqlite3FkDelete(a,b) 5295 #define sqlite3FkLocateIndex(a,b,c,d,e) 5296 #endif 5297 5298 5299 /* 5300 ** Available fault injectors. Should be numbered beginning with 0. 5301 */ 5302 #define SQLITE_FAULTINJECTOR_MALLOC 0 5303 #define SQLITE_FAULTINJECTOR_COUNT 1 5304 5305 /* 5306 ** The interface to the code in fault.c used for identifying "benign" 5307 ** malloc failures. This is only present if SQLITE_UNTESTABLE 5308 ** is not defined. 5309 */ 5310 #ifndef SQLITE_UNTESTABLE 5311 void sqlite3BeginBenignMalloc(void); 5312 void sqlite3EndBenignMalloc(void); 5313 #else 5314 #define sqlite3BeginBenignMalloc() 5315 #define sqlite3EndBenignMalloc() 5316 #endif 5317 5318 /* 5319 ** Allowed return values from sqlite3FindInIndex() 5320 */ 5321 #define IN_INDEX_ROWID 1 /* Search the rowid of the table */ 5322 #define IN_INDEX_EPH 2 /* Search an ephemeral b-tree */ 5323 #define IN_INDEX_INDEX_ASC 3 /* Existing index ASCENDING */ 5324 #define IN_INDEX_INDEX_DESC 4 /* Existing index DESCENDING */ 5325 #define IN_INDEX_NOOP 5 /* No table available. Use comparisons */ 5326 /* 5327 ** Allowed flags for the 3rd parameter to sqlite3FindInIndex(). 5328 */ 5329 #define IN_INDEX_NOOP_OK 0x0001 /* OK to return IN_INDEX_NOOP */ 5330 #define IN_INDEX_MEMBERSHIP 0x0002 /* IN operator used for membership test */ 5331 #define IN_INDEX_LOOP 0x0004 /* IN operator used as a loop */ 5332 int sqlite3FindInIndex(Parse *, Expr *, u32, int*, int*, int*); 5333 5334 int sqlite3JournalOpen(sqlite3_vfs *, const char *, sqlite3_file *, int, int); 5335 int sqlite3JournalSize(sqlite3_vfs *); 5336 #if defined(SQLITE_ENABLE_ATOMIC_WRITE) \ 5337 || defined(SQLITE_ENABLE_BATCH_ATOMIC_WRITE) 5338 int sqlite3JournalCreate(sqlite3_file *); 5339 #endif 5340 5341 int sqlite3JournalIsInMemory(sqlite3_file *p); 5342 void sqlite3MemJournalOpen(sqlite3_file *); 5343 5344 void sqlite3ExprSetHeightAndFlags(Parse *pParse, Expr *p); 5345 #if SQLITE_MAX_EXPR_DEPTH>0 5346 int sqlite3SelectExprHeight(const Select *); 5347 int sqlite3ExprCheckHeight(Parse*, int); 5348 #else 5349 #define sqlite3SelectExprHeight(x) 0 5350 #define sqlite3ExprCheckHeight(x,y) 5351 #endif 5352 5353 u32 sqlite3Get4byte(const u8*); 5354 void sqlite3Put4byte(u8*, u32); 5355 5356 #ifdef SQLITE_ENABLE_UNLOCK_NOTIFY 5357 void sqlite3ConnectionBlocked(sqlite3 *, sqlite3 *); 5358 void sqlite3ConnectionUnlocked(sqlite3 *db); 5359 void sqlite3ConnectionClosed(sqlite3 *db); 5360 #else 5361 #define sqlite3ConnectionBlocked(x,y) 5362 #define sqlite3ConnectionUnlocked(x) 5363 #define sqlite3ConnectionClosed(x) 5364 #endif 5365 5366 #ifdef SQLITE_DEBUG 5367 void sqlite3ParserTrace(FILE*, char *); 5368 #endif 5369 #if defined(YYCOVERAGE) 5370 int sqlite3ParserCoverage(FILE*); 5371 #endif 5372 5373 /* 5374 ** If the SQLITE_ENABLE IOTRACE exists then the global variable 5375 ** sqlite3IoTrace is a pointer to a printf-like routine used to 5376 ** print I/O tracing messages. 5377 */ 5378 #ifdef SQLITE_ENABLE_IOTRACE 5379 # define IOTRACE(A) if( sqlite3IoTrace ){ sqlite3IoTrace A; } 5380 void sqlite3VdbeIOTraceSql(Vdbe*); 5381 SQLITE_API SQLITE_EXTERN void (SQLITE_CDECL *sqlite3IoTrace)(const char*,...); 5382 #else 5383 # define IOTRACE(A) 5384 # define sqlite3VdbeIOTraceSql(X) 5385 #endif 5386 5387 /* 5388 ** These routines are available for the mem2.c debugging memory allocator 5389 ** only. They are used to verify that different "types" of memory 5390 ** allocations are properly tracked by the system. 5391 ** 5392 ** sqlite3MemdebugSetType() sets the "type" of an allocation to one of 5393 ** the MEMTYPE_* macros defined below. The type must be a bitmask with 5394 ** a single bit set. 5395 ** 5396 ** sqlite3MemdebugHasType() returns true if any of the bits in its second 5397 ** argument match the type set by the previous sqlite3MemdebugSetType(). 5398 ** sqlite3MemdebugHasType() is intended for use inside assert() statements. 5399 ** 5400 ** sqlite3MemdebugNoType() returns true if none of the bits in its second 5401 ** argument match the type set by the previous sqlite3MemdebugSetType(). 5402 ** 5403 ** Perhaps the most important point is the difference between MEMTYPE_HEAP 5404 ** and MEMTYPE_LOOKASIDE. If an allocation is MEMTYPE_LOOKASIDE, that means 5405 ** it might have been allocated by lookaside, except the allocation was 5406 ** too large or lookaside was already full. It is important to verify 5407 ** that allocations that might have been satisfied by lookaside are not 5408 ** passed back to non-lookaside free() routines. Asserts such as the 5409 ** example above are placed on the non-lookaside free() routines to verify 5410 ** this constraint. 5411 ** 5412 ** All of this is no-op for a production build. It only comes into 5413 ** play when the SQLITE_MEMDEBUG compile-time option is used. 5414 */ 5415 #ifdef SQLITE_MEMDEBUG 5416 void sqlite3MemdebugSetType(void*,u8); 5417 int sqlite3MemdebugHasType(const void*,u8); 5418 int sqlite3MemdebugNoType(const void*,u8); 5419 #else 5420 # define sqlite3MemdebugSetType(X,Y) /* no-op */ 5421 # define sqlite3MemdebugHasType(X,Y) 1 5422 # define sqlite3MemdebugNoType(X,Y) 1 5423 #endif 5424 #define MEMTYPE_HEAP 0x01 /* General heap allocations */ 5425 #define MEMTYPE_LOOKASIDE 0x02 /* Heap that might have been lookaside */ 5426 #define MEMTYPE_PCACHE 0x04 /* Page cache allocations */ 5427 5428 /* 5429 ** Threading interface 5430 */ 5431 #if SQLITE_MAX_WORKER_THREADS>0 5432 int sqlite3ThreadCreate(SQLiteThread**,void*(*)(void*),void*); 5433 int sqlite3ThreadJoin(SQLiteThread*, void**); 5434 #endif 5435 5436 #if defined(SQLITE_ENABLE_DBPAGE_VTAB) || defined(SQLITE_TEST) 5437 int sqlite3DbpageRegister(sqlite3*); 5438 #endif 5439 #if defined(SQLITE_ENABLE_DBSTAT_VTAB) || defined(SQLITE_TEST) 5440 int sqlite3DbstatRegister(sqlite3*); 5441 #endif 5442 5443 int sqlite3ExprVectorSize(const Expr *pExpr); 5444 int sqlite3ExprIsVector(const Expr *pExpr); 5445 Expr *sqlite3VectorFieldSubexpr(Expr*, int); 5446 Expr *sqlite3ExprForVectorField(Parse*,Expr*,int,int); 5447 void sqlite3VectorErrorMsg(Parse*, Expr*); 5448 5449 #ifndef SQLITE_OMIT_COMPILEOPTION_DIAGS 5450 const char **sqlite3CompileOptions(int *pnOpt); 5451 #endif 5452 5453 #endif /* SQLITEINT_H */ 5454