1 /* 2 ** 2017 April 09 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 */ 13 #include "sqlite3expert.h" 14 #include <assert.h> 15 #include <string.h> 16 #include <stdio.h> 17 18 #ifndef SQLITE_OMIT_VIRTUALTABLE 19 20 typedef sqlite3_int64 i64; 21 typedef sqlite3_uint64 u64; 22 23 typedef struct IdxColumn IdxColumn; 24 typedef struct IdxConstraint IdxConstraint; 25 typedef struct IdxScan IdxScan; 26 typedef struct IdxStatement IdxStatement; 27 typedef struct IdxTable IdxTable; 28 typedef struct IdxWrite IdxWrite; 29 30 #define STRLEN (int)strlen 31 32 /* 33 ** A temp table name that we assume no user database will actually use. 34 ** If this assumption proves incorrect triggers on the table with the 35 ** conflicting name will be ignored. 36 */ 37 #define UNIQUE_TABLE_NAME "t592690916721053953805701627921227776" 38 39 /* 40 ** A single constraint. Equivalent to either "col = ?" or "col < ?" (or 41 ** any other type of single-ended range constraint on a column). 42 ** 43 ** pLink: 44 ** Used to temporarily link IdxConstraint objects into lists while 45 ** creating candidate indexes. 46 */ 47 struct IdxConstraint { 48 char *zColl; /* Collation sequence */ 49 int bRange; /* True for range, false for eq */ 50 int iCol; /* Constrained table column */ 51 int bFlag; /* Used by idxFindCompatible() */ 52 int bDesc; /* True if ORDER BY <expr> DESC */ 53 IdxConstraint *pNext; /* Next constraint in pEq or pRange list */ 54 IdxConstraint *pLink; /* See above */ 55 }; 56 57 /* 58 ** A single scan of a single table. 59 */ 60 struct IdxScan { 61 IdxTable *pTab; /* Associated table object */ 62 int iDb; /* Database containing table zTable */ 63 i64 covering; /* Mask of columns required for cov. index */ 64 IdxConstraint *pOrder; /* ORDER BY columns */ 65 IdxConstraint *pEq; /* List of == constraints */ 66 IdxConstraint *pRange; /* List of < constraints */ 67 IdxScan *pNextScan; /* Next IdxScan object for same analysis */ 68 }; 69 70 /* 71 ** Information regarding a single database table. Extracted from 72 ** "PRAGMA table_info" by function idxGetTableInfo(). 73 */ 74 struct IdxColumn { 75 char *zName; 76 char *zColl; 77 int iPk; 78 }; 79 struct IdxTable { 80 int nCol; 81 char *zName; /* Table name */ 82 IdxColumn *aCol; 83 IdxTable *pNext; /* Next table in linked list of all tables */ 84 }; 85 86 /* 87 ** An object of the following type is created for each unique table/write-op 88 ** seen. The objects are stored in a singly-linked list beginning at 89 ** sqlite3expert.pWrite. 90 */ 91 struct IdxWrite { 92 IdxTable *pTab; 93 int eOp; /* SQLITE_UPDATE, DELETE or INSERT */ 94 IdxWrite *pNext; 95 }; 96 97 /* 98 ** Each statement being analyzed is represented by an instance of this 99 ** structure. 100 */ 101 struct IdxStatement { 102 int iId; /* Statement number */ 103 char *zSql; /* SQL statement */ 104 char *zIdx; /* Indexes */ 105 char *zEQP; /* Plan */ 106 IdxStatement *pNext; 107 }; 108 109 110 /* 111 ** A hash table for storing strings. With space for a payload string 112 ** with each entry. Methods are: 113 ** 114 ** idxHashInit() 115 ** idxHashClear() 116 ** idxHashAdd() 117 ** idxHashSearch() 118 */ 119 #define IDX_HASH_SIZE 1023 120 typedef struct IdxHashEntry IdxHashEntry; 121 typedef struct IdxHash IdxHash; 122 struct IdxHashEntry { 123 char *zKey; /* nul-terminated key */ 124 char *zVal; /* nul-terminated value string */ 125 char *zVal2; /* nul-terminated value string 2 */ 126 IdxHashEntry *pHashNext; /* Next entry in same hash bucket */ 127 IdxHashEntry *pNext; /* Next entry in hash */ 128 }; 129 struct IdxHash { 130 IdxHashEntry *pFirst; 131 IdxHashEntry *aHash[IDX_HASH_SIZE]; 132 }; 133 134 /* 135 ** sqlite3expert object. 136 */ 137 struct sqlite3expert { 138 int iSample; /* Percentage of tables to sample for stat1 */ 139 sqlite3 *db; /* User database */ 140 sqlite3 *dbm; /* In-memory db for this analysis */ 141 sqlite3 *dbv; /* Vtab schema for this analysis */ 142 IdxTable *pTable; /* List of all IdxTable objects */ 143 IdxScan *pScan; /* List of scan objects */ 144 IdxWrite *pWrite; /* List of write objects */ 145 IdxStatement *pStatement; /* List of IdxStatement objects */ 146 int bRun; /* True once analysis has run */ 147 char **pzErrmsg; 148 int rc; /* Error code from whereinfo hook */ 149 IdxHash hIdx; /* Hash containing all candidate indexes */ 150 char *zCandidates; /* For EXPERT_REPORT_CANDIDATES */ 151 }; 152 153 154 /* 155 ** Allocate and return nByte bytes of zeroed memory using sqlite3_malloc(). 156 ** If the allocation fails, set *pRc to SQLITE_NOMEM and return NULL. 157 */ 158 static void *idxMalloc(int *pRc, int nByte){ 159 void *pRet; 160 assert( *pRc==SQLITE_OK ); 161 assert( nByte>0 ); 162 pRet = sqlite3_malloc(nByte); 163 if( pRet ){ 164 memset(pRet, 0, nByte); 165 }else{ 166 *pRc = SQLITE_NOMEM; 167 } 168 return pRet; 169 } 170 171 /* 172 ** Initialize an IdxHash hash table. 173 */ 174 static void idxHashInit(IdxHash *pHash){ 175 memset(pHash, 0, sizeof(IdxHash)); 176 } 177 178 /* 179 ** Reset an IdxHash hash table. 180 */ 181 static void idxHashClear(IdxHash *pHash){ 182 int i; 183 for(i=0; i<IDX_HASH_SIZE; i++){ 184 IdxHashEntry *pEntry; 185 IdxHashEntry *pNext; 186 for(pEntry=pHash->aHash[i]; pEntry; pEntry=pNext){ 187 pNext = pEntry->pHashNext; 188 sqlite3_free(pEntry->zVal2); 189 sqlite3_free(pEntry); 190 } 191 } 192 memset(pHash, 0, sizeof(IdxHash)); 193 } 194 195 /* 196 ** Return the index of the hash bucket that the string specified by the 197 ** arguments to this function belongs. 198 */ 199 static int idxHashString(const char *z, int n){ 200 unsigned int ret = 0; 201 int i; 202 for(i=0; i<n; i++){ 203 ret += (ret<<3) + (unsigned char)(z[i]); 204 } 205 return (int)(ret % IDX_HASH_SIZE); 206 } 207 208 /* 209 ** If zKey is already present in the hash table, return non-zero and do 210 ** nothing. Otherwise, add an entry with key zKey and payload string zVal to 211 ** the hash table passed as the second argument. 212 */ 213 static int idxHashAdd( 214 int *pRc, 215 IdxHash *pHash, 216 const char *zKey, 217 const char *zVal 218 ){ 219 int nKey = STRLEN(zKey); 220 int iHash = idxHashString(zKey, nKey); 221 int nVal = (zVal ? STRLEN(zVal) : 0); 222 IdxHashEntry *pEntry; 223 assert( iHash>=0 ); 224 for(pEntry=pHash->aHash[iHash]; pEntry; pEntry=pEntry->pHashNext){ 225 if( STRLEN(pEntry->zKey)==nKey && 0==memcmp(pEntry->zKey, zKey, nKey) ){ 226 return 1; 227 } 228 } 229 pEntry = idxMalloc(pRc, sizeof(IdxHashEntry) + nKey+1 + nVal+1); 230 if( pEntry ){ 231 pEntry->zKey = (char*)&pEntry[1]; 232 memcpy(pEntry->zKey, zKey, nKey); 233 if( zVal ){ 234 pEntry->zVal = &pEntry->zKey[nKey+1]; 235 memcpy(pEntry->zVal, zVal, nVal); 236 } 237 pEntry->pHashNext = pHash->aHash[iHash]; 238 pHash->aHash[iHash] = pEntry; 239 240 pEntry->pNext = pHash->pFirst; 241 pHash->pFirst = pEntry; 242 } 243 return 0; 244 } 245 246 /* 247 ** If zKey/nKey is present in the hash table, return a pointer to the 248 ** hash-entry object. 249 */ 250 static IdxHashEntry *idxHashFind(IdxHash *pHash, const char *zKey, int nKey){ 251 int iHash; 252 IdxHashEntry *pEntry; 253 if( nKey<0 ) nKey = STRLEN(zKey); 254 iHash = idxHashString(zKey, nKey); 255 assert( iHash>=0 ); 256 for(pEntry=pHash->aHash[iHash]; pEntry; pEntry=pEntry->pHashNext){ 257 if( STRLEN(pEntry->zKey)==nKey && 0==memcmp(pEntry->zKey, zKey, nKey) ){ 258 return pEntry; 259 } 260 } 261 return 0; 262 } 263 264 /* 265 ** If the hash table contains an entry with a key equal to the string 266 ** passed as the final two arguments to this function, return a pointer 267 ** to the payload string. Otherwise, if zKey/nKey is not present in the 268 ** hash table, return NULL. 269 */ 270 static const char *idxHashSearch(IdxHash *pHash, const char *zKey, int nKey){ 271 IdxHashEntry *pEntry = idxHashFind(pHash, zKey, nKey); 272 if( pEntry ) return pEntry->zVal; 273 return 0; 274 } 275 276 /* 277 ** Allocate and return a new IdxConstraint object. Set the IdxConstraint.zColl 278 ** variable to point to a copy of nul-terminated string zColl. 279 */ 280 static IdxConstraint *idxNewConstraint(int *pRc, const char *zColl){ 281 IdxConstraint *pNew; 282 int nColl = STRLEN(zColl); 283 284 assert( *pRc==SQLITE_OK ); 285 pNew = (IdxConstraint*)idxMalloc(pRc, sizeof(IdxConstraint) * nColl + 1); 286 if( pNew ){ 287 pNew->zColl = (char*)&pNew[1]; 288 memcpy(pNew->zColl, zColl, nColl+1); 289 } 290 return pNew; 291 } 292 293 /* 294 ** An error associated with database handle db has just occurred. Pass 295 ** the error message to callback function xOut. 296 */ 297 static void idxDatabaseError( 298 sqlite3 *db, /* Database handle */ 299 char **pzErrmsg /* Write error here */ 300 ){ 301 *pzErrmsg = sqlite3_mprintf("%s", sqlite3_errmsg(db)); 302 } 303 304 /* 305 ** Prepare an SQL statement. 306 */ 307 static int idxPrepareStmt( 308 sqlite3 *db, /* Database handle to compile against */ 309 sqlite3_stmt **ppStmt, /* OUT: Compiled SQL statement */ 310 char **pzErrmsg, /* OUT: sqlite3_malloc()ed error message */ 311 const char *zSql /* SQL statement to compile */ 312 ){ 313 int rc = sqlite3_prepare_v2(db, zSql, -1, ppStmt, 0); 314 if( rc!=SQLITE_OK ){ 315 *ppStmt = 0; 316 idxDatabaseError(db, pzErrmsg); 317 } 318 return rc; 319 } 320 321 /* 322 ** Prepare an SQL statement using the results of a printf() formatting. 323 */ 324 static int idxPrintfPrepareStmt( 325 sqlite3 *db, /* Database handle to compile against */ 326 sqlite3_stmt **ppStmt, /* OUT: Compiled SQL statement */ 327 char **pzErrmsg, /* OUT: sqlite3_malloc()ed error message */ 328 const char *zFmt, /* printf() format of SQL statement */ 329 ... /* Trailing printf() arguments */ 330 ){ 331 va_list ap; 332 int rc; 333 char *zSql; 334 va_start(ap, zFmt); 335 zSql = sqlite3_vmprintf(zFmt, ap); 336 if( zSql==0 ){ 337 rc = SQLITE_NOMEM; 338 }else{ 339 rc = idxPrepareStmt(db, ppStmt, pzErrmsg, zSql); 340 sqlite3_free(zSql); 341 } 342 va_end(ap); 343 return rc; 344 } 345 346 347 /************************************************************************* 348 ** Beginning of virtual table implementation. 349 */ 350 typedef struct ExpertVtab ExpertVtab; 351 struct ExpertVtab { 352 sqlite3_vtab base; 353 IdxTable *pTab; 354 sqlite3expert *pExpert; 355 }; 356 357 typedef struct ExpertCsr ExpertCsr; 358 struct ExpertCsr { 359 sqlite3_vtab_cursor base; 360 sqlite3_stmt *pData; 361 }; 362 363 static char *expertDequote(const char *zIn){ 364 int n = STRLEN(zIn); 365 char *zRet = sqlite3_malloc(n); 366 367 assert( zIn[0]=='\'' ); 368 assert( zIn[n-1]=='\'' ); 369 370 if( zRet ){ 371 int iOut = 0; 372 int iIn = 0; 373 for(iIn=1; iIn<(n-1); iIn++){ 374 if( zIn[iIn]=='\'' ){ 375 assert( zIn[iIn+1]=='\'' ); 376 iIn++; 377 } 378 zRet[iOut++] = zIn[iIn]; 379 } 380 zRet[iOut] = '\0'; 381 } 382 383 return zRet; 384 } 385 386 /* 387 ** This function is the implementation of both the xConnect and xCreate 388 ** methods of the r-tree virtual table. 389 ** 390 ** argv[0] -> module name 391 ** argv[1] -> database name 392 ** argv[2] -> table name 393 ** argv[...] -> column names... 394 */ 395 static int expertConnect( 396 sqlite3 *db, 397 void *pAux, 398 int argc, const char *const*argv, 399 sqlite3_vtab **ppVtab, 400 char **pzErr 401 ){ 402 sqlite3expert *pExpert = (sqlite3expert*)pAux; 403 ExpertVtab *p = 0; 404 int rc; 405 406 if( argc!=4 ){ 407 *pzErr = sqlite3_mprintf("internal error!"); 408 rc = SQLITE_ERROR; 409 }else{ 410 char *zCreateTable = expertDequote(argv[3]); 411 if( zCreateTable ){ 412 rc = sqlite3_declare_vtab(db, zCreateTable); 413 if( rc==SQLITE_OK ){ 414 p = idxMalloc(&rc, sizeof(ExpertVtab)); 415 } 416 if( rc==SQLITE_OK ){ 417 p->pExpert = pExpert; 418 p->pTab = pExpert->pTable; 419 assert( sqlite3_stricmp(p->pTab->zName, argv[2])==0 ); 420 } 421 sqlite3_free(zCreateTable); 422 }else{ 423 rc = SQLITE_NOMEM; 424 } 425 } 426 427 *ppVtab = (sqlite3_vtab*)p; 428 return rc; 429 } 430 431 static int expertDisconnect(sqlite3_vtab *pVtab){ 432 ExpertVtab *p = (ExpertVtab*)pVtab; 433 sqlite3_free(p); 434 return SQLITE_OK; 435 } 436 437 static int expertBestIndex(sqlite3_vtab *pVtab, sqlite3_index_info *pIdxInfo){ 438 ExpertVtab *p = (ExpertVtab*)pVtab; 439 int rc = SQLITE_OK; 440 int n = 0; 441 IdxScan *pScan; 442 const int opmask = 443 SQLITE_INDEX_CONSTRAINT_EQ | SQLITE_INDEX_CONSTRAINT_GT | 444 SQLITE_INDEX_CONSTRAINT_LT | SQLITE_INDEX_CONSTRAINT_GE | 445 SQLITE_INDEX_CONSTRAINT_LE; 446 447 pScan = idxMalloc(&rc, sizeof(IdxScan)); 448 if( pScan ){ 449 int i; 450 451 /* Link the new scan object into the list */ 452 pScan->pTab = p->pTab; 453 pScan->pNextScan = p->pExpert->pScan; 454 p->pExpert->pScan = pScan; 455 456 /* Add the constraints to the IdxScan object */ 457 for(i=0; i<pIdxInfo->nConstraint; i++){ 458 struct sqlite3_index_constraint *pCons = &pIdxInfo->aConstraint[i]; 459 if( pCons->usable 460 && pCons->iColumn>=0 461 && p->pTab->aCol[pCons->iColumn].iPk==0 462 && (pCons->op & opmask) 463 ){ 464 IdxConstraint *pNew; 465 const char *zColl = sqlite3_vtab_collation(pIdxInfo, i); 466 pNew = idxNewConstraint(&rc, zColl); 467 if( pNew ){ 468 pNew->iCol = pCons->iColumn; 469 if( pCons->op==SQLITE_INDEX_CONSTRAINT_EQ ){ 470 pNew->pNext = pScan->pEq; 471 pScan->pEq = pNew; 472 }else{ 473 pNew->bRange = 1; 474 pNew->pNext = pScan->pRange; 475 pScan->pRange = pNew; 476 } 477 } 478 n++; 479 pIdxInfo->aConstraintUsage[i].argvIndex = n; 480 } 481 } 482 483 /* Add the ORDER BY to the IdxScan object */ 484 for(i=pIdxInfo->nOrderBy-1; i>=0; i--){ 485 int iCol = pIdxInfo->aOrderBy[i].iColumn; 486 if( iCol>=0 ){ 487 IdxConstraint *pNew = idxNewConstraint(&rc, p->pTab->aCol[iCol].zColl); 488 if( pNew ){ 489 pNew->iCol = iCol; 490 pNew->bDesc = pIdxInfo->aOrderBy[i].desc; 491 pNew->pNext = pScan->pOrder; 492 pNew->pLink = pScan->pOrder; 493 pScan->pOrder = pNew; 494 n++; 495 } 496 } 497 } 498 } 499 500 pIdxInfo->estimatedCost = 1000000.0 / (n+1); 501 return rc; 502 } 503 504 static int expertUpdate( 505 sqlite3_vtab *pVtab, 506 int nData, 507 sqlite3_value **azData, 508 sqlite_int64 *pRowid 509 ){ 510 (void)pVtab; 511 (void)nData; 512 (void)azData; 513 (void)pRowid; 514 return SQLITE_OK; 515 } 516 517 /* 518 ** Virtual table module xOpen method. 519 */ 520 static int expertOpen(sqlite3_vtab *pVTab, sqlite3_vtab_cursor **ppCursor){ 521 int rc = SQLITE_OK; 522 ExpertCsr *pCsr; 523 (void)pVTab; 524 pCsr = idxMalloc(&rc, sizeof(ExpertCsr)); 525 *ppCursor = (sqlite3_vtab_cursor*)pCsr; 526 return rc; 527 } 528 529 /* 530 ** Virtual table module xClose method. 531 */ 532 static int expertClose(sqlite3_vtab_cursor *cur){ 533 ExpertCsr *pCsr = (ExpertCsr*)cur; 534 sqlite3_finalize(pCsr->pData); 535 sqlite3_free(pCsr); 536 return SQLITE_OK; 537 } 538 539 /* 540 ** Virtual table module xEof method. 541 ** 542 ** Return non-zero if the cursor does not currently point to a valid 543 ** record (i.e if the scan has finished), or zero otherwise. 544 */ 545 static int expertEof(sqlite3_vtab_cursor *cur){ 546 ExpertCsr *pCsr = (ExpertCsr*)cur; 547 return pCsr->pData==0; 548 } 549 550 /* 551 ** Virtual table module xNext method. 552 */ 553 static int expertNext(sqlite3_vtab_cursor *cur){ 554 ExpertCsr *pCsr = (ExpertCsr*)cur; 555 int rc = SQLITE_OK; 556 557 assert( pCsr->pData ); 558 rc = sqlite3_step(pCsr->pData); 559 if( rc!=SQLITE_ROW ){ 560 rc = sqlite3_finalize(pCsr->pData); 561 pCsr->pData = 0; 562 }else{ 563 rc = SQLITE_OK; 564 } 565 566 return rc; 567 } 568 569 /* 570 ** Virtual table module xRowid method. 571 */ 572 static int expertRowid(sqlite3_vtab_cursor *cur, sqlite_int64 *pRowid){ 573 (void)cur; 574 *pRowid = 0; 575 return SQLITE_OK; 576 } 577 578 /* 579 ** Virtual table module xColumn method. 580 */ 581 static int expertColumn(sqlite3_vtab_cursor *cur, sqlite3_context *ctx, int i){ 582 ExpertCsr *pCsr = (ExpertCsr*)cur; 583 sqlite3_value *pVal; 584 pVal = sqlite3_column_value(pCsr->pData, i); 585 if( pVal ){ 586 sqlite3_result_value(ctx, pVal); 587 } 588 return SQLITE_OK; 589 } 590 591 /* 592 ** Virtual table module xFilter method. 593 */ 594 static int expertFilter( 595 sqlite3_vtab_cursor *cur, 596 int idxNum, const char *idxStr, 597 int argc, sqlite3_value **argv 598 ){ 599 ExpertCsr *pCsr = (ExpertCsr*)cur; 600 ExpertVtab *pVtab = (ExpertVtab*)(cur->pVtab); 601 sqlite3expert *pExpert = pVtab->pExpert; 602 int rc; 603 604 (void)idxNum; 605 (void)idxStr; 606 (void)argc; 607 (void)argv; 608 rc = sqlite3_finalize(pCsr->pData); 609 pCsr->pData = 0; 610 if( rc==SQLITE_OK ){ 611 rc = idxPrintfPrepareStmt(pExpert->db, &pCsr->pData, &pVtab->base.zErrMsg, 612 "SELECT * FROM main.%Q WHERE sample()", pVtab->pTab->zName 613 ); 614 } 615 616 if( rc==SQLITE_OK ){ 617 rc = expertNext(cur); 618 } 619 return rc; 620 } 621 622 static int idxRegisterVtab(sqlite3expert *p){ 623 static sqlite3_module expertModule = { 624 2, /* iVersion */ 625 expertConnect, /* xCreate - create a table */ 626 expertConnect, /* xConnect - connect to an existing table */ 627 expertBestIndex, /* xBestIndex - Determine search strategy */ 628 expertDisconnect, /* xDisconnect - Disconnect from a table */ 629 expertDisconnect, /* xDestroy - Drop a table */ 630 expertOpen, /* xOpen - open a cursor */ 631 expertClose, /* xClose - close a cursor */ 632 expertFilter, /* xFilter - configure scan constraints */ 633 expertNext, /* xNext - advance a cursor */ 634 expertEof, /* xEof */ 635 expertColumn, /* xColumn - read data */ 636 expertRowid, /* xRowid - read data */ 637 expertUpdate, /* xUpdate - write data */ 638 0, /* xBegin - begin transaction */ 639 0, /* xSync - sync transaction */ 640 0, /* xCommit - commit transaction */ 641 0, /* xRollback - rollback transaction */ 642 0, /* xFindFunction - function overloading */ 643 0, /* xRename - rename the table */ 644 0, /* xSavepoint */ 645 0, /* xRelease */ 646 0, /* xRollbackTo */ 647 0, /* xShadowName */ 648 }; 649 650 return sqlite3_create_module(p->dbv, "expert", &expertModule, (void*)p); 651 } 652 /* 653 ** End of virtual table implementation. 654 *************************************************************************/ 655 /* 656 ** Finalize SQL statement pStmt. If (*pRc) is SQLITE_OK when this function 657 ** is called, set it to the return value of sqlite3_finalize() before 658 ** returning. Otherwise, discard the sqlite3_finalize() return value. 659 */ 660 static void idxFinalize(int *pRc, sqlite3_stmt *pStmt){ 661 int rc = sqlite3_finalize(pStmt); 662 if( *pRc==SQLITE_OK ) *pRc = rc; 663 } 664 665 /* 666 ** Attempt to allocate an IdxTable structure corresponding to table zTab 667 ** in the main database of connection db. If successful, set (*ppOut) to 668 ** point to the new object and return SQLITE_OK. Otherwise, return an 669 ** SQLite error code and set (*ppOut) to NULL. In this case *pzErrmsg may be 670 ** set to point to an error string. 671 ** 672 ** It is the responsibility of the caller to eventually free either the 673 ** IdxTable object or error message using sqlite3_free(). 674 */ 675 static int idxGetTableInfo( 676 sqlite3 *db, /* Database connection to read details from */ 677 const char *zTab, /* Table name */ 678 IdxTable **ppOut, /* OUT: New object (if successful) */ 679 char **pzErrmsg /* OUT: Error message (if not) */ 680 ){ 681 sqlite3_stmt *p1 = 0; 682 int nCol = 0; 683 int nTab = STRLEN(zTab); 684 int nByte = sizeof(IdxTable) + nTab + 1; 685 IdxTable *pNew = 0; 686 int rc, rc2; 687 char *pCsr = 0; 688 int nPk = 0; 689 690 rc = idxPrintfPrepareStmt(db, &p1, pzErrmsg, "PRAGMA table_info=%Q", zTab); 691 while( rc==SQLITE_OK && SQLITE_ROW==sqlite3_step(p1) ){ 692 const char *zCol = (const char*)sqlite3_column_text(p1, 1); 693 nByte += 1 + STRLEN(zCol); 694 rc = sqlite3_table_column_metadata( 695 db, "main", zTab, zCol, 0, &zCol, 0, 0, 0 696 ); 697 nByte += 1 + STRLEN(zCol); 698 nCol++; 699 nPk += (sqlite3_column_int(p1, 5)>0); 700 } 701 rc2 = sqlite3_reset(p1); 702 if( rc==SQLITE_OK ) rc = rc2; 703 704 nByte += sizeof(IdxColumn) * nCol; 705 if( rc==SQLITE_OK ){ 706 pNew = idxMalloc(&rc, nByte); 707 } 708 if( rc==SQLITE_OK ){ 709 pNew->aCol = (IdxColumn*)&pNew[1]; 710 pNew->nCol = nCol; 711 pCsr = (char*)&pNew->aCol[nCol]; 712 } 713 714 nCol = 0; 715 while( rc==SQLITE_OK && SQLITE_ROW==sqlite3_step(p1) ){ 716 const char *zCol = (const char*)sqlite3_column_text(p1, 1); 717 int nCopy = STRLEN(zCol) + 1; 718 pNew->aCol[nCol].zName = pCsr; 719 pNew->aCol[nCol].iPk = (sqlite3_column_int(p1, 5)==1 && nPk==1); 720 memcpy(pCsr, zCol, nCopy); 721 pCsr += nCopy; 722 723 rc = sqlite3_table_column_metadata( 724 db, "main", zTab, zCol, 0, &zCol, 0, 0, 0 725 ); 726 if( rc==SQLITE_OK ){ 727 nCopy = STRLEN(zCol) + 1; 728 pNew->aCol[nCol].zColl = pCsr; 729 memcpy(pCsr, zCol, nCopy); 730 pCsr += nCopy; 731 } 732 733 nCol++; 734 } 735 idxFinalize(&rc, p1); 736 737 if( rc!=SQLITE_OK ){ 738 sqlite3_free(pNew); 739 pNew = 0; 740 }else{ 741 pNew->zName = pCsr; 742 memcpy(pNew->zName, zTab, nTab+1); 743 } 744 745 *ppOut = pNew; 746 return rc; 747 } 748 749 /* 750 ** This function is a no-op if *pRc is set to anything other than 751 ** SQLITE_OK when it is called. 752 ** 753 ** If *pRc is initially set to SQLITE_OK, then the text specified by 754 ** the printf() style arguments is appended to zIn and the result returned 755 ** in a buffer allocated by sqlite3_malloc(). sqlite3_free() is called on 756 ** zIn before returning. 757 */ 758 static char *idxAppendText(int *pRc, char *zIn, const char *zFmt, ...){ 759 va_list ap; 760 char *zAppend = 0; 761 char *zRet = 0; 762 int nIn = zIn ? STRLEN(zIn) : 0; 763 int nAppend = 0; 764 va_start(ap, zFmt); 765 if( *pRc==SQLITE_OK ){ 766 zAppend = sqlite3_vmprintf(zFmt, ap); 767 if( zAppend ){ 768 nAppend = STRLEN(zAppend); 769 zRet = (char*)sqlite3_malloc(nIn + nAppend + 1); 770 } 771 if( zAppend && zRet ){ 772 if( nIn ) memcpy(zRet, zIn, nIn); 773 memcpy(&zRet[nIn], zAppend, nAppend+1); 774 }else{ 775 sqlite3_free(zRet); 776 zRet = 0; 777 *pRc = SQLITE_NOMEM; 778 } 779 sqlite3_free(zAppend); 780 sqlite3_free(zIn); 781 } 782 va_end(ap); 783 return zRet; 784 } 785 786 /* 787 ** Return true if zId must be quoted in order to use it as an SQL 788 ** identifier, or false otherwise. 789 */ 790 static int idxIdentifierRequiresQuotes(const char *zId){ 791 int i; 792 for(i=0; zId[i]; i++){ 793 if( !(zId[i]=='_') 794 && !(zId[i]>='0' && zId[i]<='9') 795 && !(zId[i]>='a' && zId[i]<='z') 796 && !(zId[i]>='A' && zId[i]<='Z') 797 ){ 798 return 1; 799 } 800 } 801 return 0; 802 } 803 804 /* 805 ** This function appends an index column definition suitable for constraint 806 ** pCons to the string passed as zIn and returns the result. 807 */ 808 static char *idxAppendColDefn( 809 int *pRc, /* IN/OUT: Error code */ 810 char *zIn, /* Column defn accumulated so far */ 811 IdxTable *pTab, /* Table index will be created on */ 812 IdxConstraint *pCons 813 ){ 814 char *zRet = zIn; 815 IdxColumn *p = &pTab->aCol[pCons->iCol]; 816 if( zRet ) zRet = idxAppendText(pRc, zRet, ", "); 817 818 if( idxIdentifierRequiresQuotes(p->zName) ){ 819 zRet = idxAppendText(pRc, zRet, "%Q", p->zName); 820 }else{ 821 zRet = idxAppendText(pRc, zRet, "%s", p->zName); 822 } 823 824 if( sqlite3_stricmp(p->zColl, pCons->zColl) ){ 825 if( idxIdentifierRequiresQuotes(pCons->zColl) ){ 826 zRet = idxAppendText(pRc, zRet, " COLLATE %Q", pCons->zColl); 827 }else{ 828 zRet = idxAppendText(pRc, zRet, " COLLATE %s", pCons->zColl); 829 } 830 } 831 832 if( pCons->bDesc ){ 833 zRet = idxAppendText(pRc, zRet, " DESC"); 834 } 835 return zRet; 836 } 837 838 /* 839 ** Search database dbm for an index compatible with the one idxCreateFromCons() 840 ** would create from arguments pScan, pEq and pTail. If no error occurs and 841 ** such an index is found, return non-zero. Or, if no such index is found, 842 ** return zero. 843 ** 844 ** If an error occurs, set *pRc to an SQLite error code and return zero. 845 */ 846 static int idxFindCompatible( 847 int *pRc, /* OUT: Error code */ 848 sqlite3* dbm, /* Database to search */ 849 IdxScan *pScan, /* Scan for table to search for index on */ 850 IdxConstraint *pEq, /* List of == constraints */ 851 IdxConstraint *pTail /* List of range constraints */ 852 ){ 853 const char *zTbl = pScan->pTab->zName; 854 sqlite3_stmt *pIdxList = 0; 855 IdxConstraint *pIter; 856 int nEq = 0; /* Number of elements in pEq */ 857 int rc; 858 859 /* Count the elements in list pEq */ 860 for(pIter=pEq; pIter; pIter=pIter->pLink) nEq++; 861 862 rc = idxPrintfPrepareStmt(dbm, &pIdxList, 0, "PRAGMA index_list=%Q", zTbl); 863 while( rc==SQLITE_OK && sqlite3_step(pIdxList)==SQLITE_ROW ){ 864 int bMatch = 1; 865 IdxConstraint *pT = pTail; 866 sqlite3_stmt *pInfo = 0; 867 const char *zIdx = (const char*)sqlite3_column_text(pIdxList, 1); 868 869 /* Zero the IdxConstraint.bFlag values in the pEq list */ 870 for(pIter=pEq; pIter; pIter=pIter->pLink) pIter->bFlag = 0; 871 872 rc = idxPrintfPrepareStmt(dbm, &pInfo, 0, "PRAGMA index_xInfo=%Q", zIdx); 873 while( rc==SQLITE_OK && sqlite3_step(pInfo)==SQLITE_ROW ){ 874 int iIdx = sqlite3_column_int(pInfo, 0); 875 int iCol = sqlite3_column_int(pInfo, 1); 876 const char *zColl = (const char*)sqlite3_column_text(pInfo, 4); 877 878 if( iIdx<nEq ){ 879 for(pIter=pEq; pIter; pIter=pIter->pLink){ 880 if( pIter->bFlag ) continue; 881 if( pIter->iCol!=iCol ) continue; 882 if( sqlite3_stricmp(pIter->zColl, zColl) ) continue; 883 pIter->bFlag = 1; 884 break; 885 } 886 if( pIter==0 ){ 887 bMatch = 0; 888 break; 889 } 890 }else{ 891 if( pT ){ 892 if( pT->iCol!=iCol || sqlite3_stricmp(pT->zColl, zColl) ){ 893 bMatch = 0; 894 break; 895 } 896 pT = pT->pLink; 897 } 898 } 899 } 900 idxFinalize(&rc, pInfo); 901 902 if( rc==SQLITE_OK && bMatch ){ 903 sqlite3_finalize(pIdxList); 904 return 1; 905 } 906 } 907 idxFinalize(&rc, pIdxList); 908 909 *pRc = rc; 910 return 0; 911 } 912 913 static int idxCreateFromCons( 914 sqlite3expert *p, 915 IdxScan *pScan, 916 IdxConstraint *pEq, 917 IdxConstraint *pTail 918 ){ 919 sqlite3 *dbm = p->dbm; 920 int rc = SQLITE_OK; 921 if( (pEq || pTail) && 0==idxFindCompatible(&rc, dbm, pScan, pEq, pTail) ){ 922 IdxTable *pTab = pScan->pTab; 923 char *zCols = 0; 924 char *zIdx = 0; 925 IdxConstraint *pCons; 926 unsigned int h = 0; 927 const char *zFmt; 928 929 for(pCons=pEq; pCons; pCons=pCons->pLink){ 930 zCols = idxAppendColDefn(&rc, zCols, pTab, pCons); 931 } 932 for(pCons=pTail; pCons; pCons=pCons->pLink){ 933 zCols = idxAppendColDefn(&rc, zCols, pTab, pCons); 934 } 935 936 if( rc==SQLITE_OK ){ 937 /* Hash the list of columns to come up with a name for the index */ 938 const char *zTable = pScan->pTab->zName; 939 char *zName; /* Index name */ 940 int i; 941 for(i=0; zCols[i]; i++){ 942 h += ((h<<3) + zCols[i]); 943 } 944 zName = sqlite3_mprintf("%s_idx_%08x", zTable, h); 945 if( zName==0 ){ 946 rc = SQLITE_NOMEM; 947 }else{ 948 if( idxIdentifierRequiresQuotes(zTable) ){ 949 zFmt = "CREATE INDEX '%q' ON %Q(%s)"; 950 }else{ 951 zFmt = "CREATE INDEX %s ON %s(%s)"; 952 } 953 zIdx = sqlite3_mprintf(zFmt, zName, zTable, zCols); 954 if( !zIdx ){ 955 rc = SQLITE_NOMEM; 956 }else{ 957 rc = sqlite3_exec(dbm, zIdx, 0, 0, p->pzErrmsg); 958 idxHashAdd(&rc, &p->hIdx, zName, zIdx); 959 } 960 sqlite3_free(zName); 961 sqlite3_free(zIdx); 962 } 963 } 964 965 sqlite3_free(zCols); 966 } 967 return rc; 968 } 969 970 /* 971 ** Return true if list pList (linked by IdxConstraint.pLink) contains 972 ** a constraint compatible with *p. Otherwise return false. 973 */ 974 static int idxFindConstraint(IdxConstraint *pList, IdxConstraint *p){ 975 IdxConstraint *pCmp; 976 for(pCmp=pList; pCmp; pCmp=pCmp->pLink){ 977 if( p->iCol==pCmp->iCol ) return 1; 978 } 979 return 0; 980 } 981 982 static int idxCreateFromWhere( 983 sqlite3expert *p, 984 IdxScan *pScan, /* Create indexes for this scan */ 985 IdxConstraint *pTail /* range/ORDER BY constraints for inclusion */ 986 ){ 987 IdxConstraint *p1 = 0; 988 IdxConstraint *pCon; 989 int rc; 990 991 /* Gather up all the == constraints. */ 992 for(pCon=pScan->pEq; pCon; pCon=pCon->pNext){ 993 if( !idxFindConstraint(p1, pCon) && !idxFindConstraint(pTail, pCon) ){ 994 pCon->pLink = p1; 995 p1 = pCon; 996 } 997 } 998 999 /* Create an index using the == constraints collected above. And the 1000 ** range constraint/ORDER BY terms passed in by the caller, if any. */ 1001 rc = idxCreateFromCons(p, pScan, p1, pTail); 1002 1003 /* If no range/ORDER BY passed by the caller, create a version of the 1004 ** index for each range constraint. */ 1005 if( pTail==0 ){ 1006 for(pCon=pScan->pRange; rc==SQLITE_OK && pCon; pCon=pCon->pNext){ 1007 assert( pCon->pLink==0 ); 1008 if( !idxFindConstraint(p1, pCon) && !idxFindConstraint(pTail, pCon) ){ 1009 rc = idxCreateFromCons(p, pScan, p1, pCon); 1010 } 1011 } 1012 } 1013 1014 return rc; 1015 } 1016 1017 /* 1018 ** Create candidate indexes in database [dbm] based on the data in 1019 ** linked-list pScan. 1020 */ 1021 static int idxCreateCandidates(sqlite3expert *p){ 1022 int rc = SQLITE_OK; 1023 IdxScan *pIter; 1024 1025 for(pIter=p->pScan; pIter && rc==SQLITE_OK; pIter=pIter->pNextScan){ 1026 rc = idxCreateFromWhere(p, pIter, 0); 1027 if( rc==SQLITE_OK && pIter->pOrder ){ 1028 rc = idxCreateFromWhere(p, pIter, pIter->pOrder); 1029 } 1030 } 1031 1032 return rc; 1033 } 1034 1035 /* 1036 ** Free all elements of the linked list starting at pConstraint. 1037 */ 1038 static void idxConstraintFree(IdxConstraint *pConstraint){ 1039 IdxConstraint *pNext; 1040 IdxConstraint *p; 1041 1042 for(p=pConstraint; p; p=pNext){ 1043 pNext = p->pNext; 1044 sqlite3_free(p); 1045 } 1046 } 1047 1048 /* 1049 ** Free all elements of the linked list starting from pScan up until pLast 1050 ** (pLast is not freed). 1051 */ 1052 static void idxScanFree(IdxScan *pScan, IdxScan *pLast){ 1053 IdxScan *p; 1054 IdxScan *pNext; 1055 for(p=pScan; p!=pLast; p=pNext){ 1056 pNext = p->pNextScan; 1057 idxConstraintFree(p->pOrder); 1058 idxConstraintFree(p->pEq); 1059 idxConstraintFree(p->pRange); 1060 sqlite3_free(p); 1061 } 1062 } 1063 1064 /* 1065 ** Free all elements of the linked list starting from pStatement up 1066 ** until pLast (pLast is not freed). 1067 */ 1068 static void idxStatementFree(IdxStatement *pStatement, IdxStatement *pLast){ 1069 IdxStatement *p; 1070 IdxStatement *pNext; 1071 for(p=pStatement; p!=pLast; p=pNext){ 1072 pNext = p->pNext; 1073 sqlite3_free(p->zEQP); 1074 sqlite3_free(p->zIdx); 1075 sqlite3_free(p); 1076 } 1077 } 1078 1079 /* 1080 ** Free the linked list of IdxTable objects starting at pTab. 1081 */ 1082 static void idxTableFree(IdxTable *pTab){ 1083 IdxTable *pIter; 1084 IdxTable *pNext; 1085 for(pIter=pTab; pIter; pIter=pNext){ 1086 pNext = pIter->pNext; 1087 sqlite3_free(pIter); 1088 } 1089 } 1090 1091 /* 1092 ** Free the linked list of IdxWrite objects starting at pTab. 1093 */ 1094 static void idxWriteFree(IdxWrite *pTab){ 1095 IdxWrite *pIter; 1096 IdxWrite *pNext; 1097 for(pIter=pTab; pIter; pIter=pNext){ 1098 pNext = pIter->pNext; 1099 sqlite3_free(pIter); 1100 } 1101 } 1102 1103 1104 1105 /* 1106 ** This function is called after candidate indexes have been created. It 1107 ** runs all the queries to see which indexes they prefer, and populates 1108 ** IdxStatement.zIdx and IdxStatement.zEQP with the results. 1109 */ 1110 int idxFindIndexes( 1111 sqlite3expert *p, 1112 char **pzErr /* OUT: Error message (sqlite3_malloc) */ 1113 ){ 1114 IdxStatement *pStmt; 1115 sqlite3 *dbm = p->dbm; 1116 int rc = SQLITE_OK; 1117 1118 IdxHash hIdx; 1119 idxHashInit(&hIdx); 1120 1121 for(pStmt=p->pStatement; rc==SQLITE_OK && pStmt; pStmt=pStmt->pNext){ 1122 IdxHashEntry *pEntry; 1123 sqlite3_stmt *pExplain = 0; 1124 idxHashClear(&hIdx); 1125 rc = idxPrintfPrepareStmt(dbm, &pExplain, pzErr, 1126 "EXPLAIN QUERY PLAN %s", pStmt->zSql 1127 ); 1128 while( rc==SQLITE_OK && sqlite3_step(pExplain)==SQLITE_ROW ){ 1129 /* int iId = sqlite3_column_int(pExplain, 0); */ 1130 /* int iParent = sqlite3_column_int(pExplain, 1); */ 1131 /* int iNotUsed = sqlite3_column_int(pExplain, 2); */ 1132 const char *zDetail = (const char*)sqlite3_column_text(pExplain, 3); 1133 int nDetail; 1134 int i; 1135 1136 if( !zDetail ) continue; 1137 nDetail = STRLEN(zDetail); 1138 1139 for(i=0; i<nDetail; i++){ 1140 const char *zIdx = 0; 1141 if( i+13<nDetail && memcmp(&zDetail[i], " USING INDEX ", 13)==0 ){ 1142 zIdx = &zDetail[i+13]; 1143 }else if( i+22<nDetail 1144 && memcmp(&zDetail[i], " USING COVERING INDEX ", 22)==0 1145 ){ 1146 zIdx = &zDetail[i+22]; 1147 } 1148 if( zIdx ){ 1149 const char *zSql; 1150 int nIdx = 0; 1151 while( zIdx[nIdx]!='\0' && (zIdx[nIdx]!=' ' || zIdx[nIdx+1]!='(') ){ 1152 nIdx++; 1153 } 1154 zSql = idxHashSearch(&p->hIdx, zIdx, nIdx); 1155 if( zSql ){ 1156 idxHashAdd(&rc, &hIdx, zSql, 0); 1157 if( rc ) goto find_indexes_out; 1158 } 1159 break; 1160 } 1161 } 1162 1163 if( zDetail[0]!='-' ){ 1164 pStmt->zEQP = idxAppendText(&rc, pStmt->zEQP, "%s\n", zDetail); 1165 } 1166 } 1167 1168 for(pEntry=hIdx.pFirst; pEntry; pEntry=pEntry->pNext){ 1169 pStmt->zIdx = idxAppendText(&rc, pStmt->zIdx, "%s;\n", pEntry->zKey); 1170 } 1171 1172 idxFinalize(&rc, pExplain); 1173 } 1174 1175 find_indexes_out: 1176 idxHashClear(&hIdx); 1177 return rc; 1178 } 1179 1180 static int idxAuthCallback( 1181 void *pCtx, 1182 int eOp, 1183 const char *z3, 1184 const char *z4, 1185 const char *zDb, 1186 const char *zTrigger 1187 ){ 1188 int rc = SQLITE_OK; 1189 (void)z4; 1190 (void)zTrigger; 1191 if( eOp==SQLITE_INSERT || eOp==SQLITE_UPDATE || eOp==SQLITE_DELETE ){ 1192 if( sqlite3_stricmp(zDb, "main")==0 ){ 1193 sqlite3expert *p = (sqlite3expert*)pCtx; 1194 IdxTable *pTab; 1195 for(pTab=p->pTable; pTab; pTab=pTab->pNext){ 1196 if( 0==sqlite3_stricmp(z3, pTab->zName) ) break; 1197 } 1198 if( pTab ){ 1199 IdxWrite *pWrite; 1200 for(pWrite=p->pWrite; pWrite; pWrite=pWrite->pNext){ 1201 if( pWrite->pTab==pTab && pWrite->eOp==eOp ) break; 1202 } 1203 if( pWrite==0 ){ 1204 pWrite = idxMalloc(&rc, sizeof(IdxWrite)); 1205 if( rc==SQLITE_OK ){ 1206 pWrite->pTab = pTab; 1207 pWrite->eOp = eOp; 1208 pWrite->pNext = p->pWrite; 1209 p->pWrite = pWrite; 1210 } 1211 } 1212 } 1213 } 1214 } 1215 return rc; 1216 } 1217 1218 static int idxProcessOneTrigger( 1219 sqlite3expert *p, 1220 IdxWrite *pWrite, 1221 char **pzErr 1222 ){ 1223 static const char *zInt = UNIQUE_TABLE_NAME; 1224 static const char *zDrop = "DROP TABLE " UNIQUE_TABLE_NAME; 1225 IdxTable *pTab = pWrite->pTab; 1226 const char *zTab = pTab->zName; 1227 const char *zSql = 1228 "SELECT 'CREATE TEMP' || substr(sql, 7) FROM sqlite_schema " 1229 "WHERE tbl_name = %Q AND type IN ('table', 'trigger') " 1230 "ORDER BY type;"; 1231 sqlite3_stmt *pSelect = 0; 1232 int rc = SQLITE_OK; 1233 char *zWrite = 0; 1234 1235 /* Create the table and its triggers in the temp schema */ 1236 rc = idxPrintfPrepareStmt(p->db, &pSelect, pzErr, zSql, zTab, zTab); 1237 while( rc==SQLITE_OK && SQLITE_ROW==sqlite3_step(pSelect) ){ 1238 const char *zCreate = (const char*)sqlite3_column_text(pSelect, 0); 1239 rc = sqlite3_exec(p->dbv, zCreate, 0, 0, pzErr); 1240 } 1241 idxFinalize(&rc, pSelect); 1242 1243 /* Rename the table in the temp schema to zInt */ 1244 if( rc==SQLITE_OK ){ 1245 char *z = sqlite3_mprintf("ALTER TABLE temp.%Q RENAME TO %Q", zTab, zInt); 1246 if( z==0 ){ 1247 rc = SQLITE_NOMEM; 1248 }else{ 1249 rc = sqlite3_exec(p->dbv, z, 0, 0, pzErr); 1250 sqlite3_free(z); 1251 } 1252 } 1253 1254 switch( pWrite->eOp ){ 1255 case SQLITE_INSERT: { 1256 int i; 1257 zWrite = idxAppendText(&rc, zWrite, "INSERT INTO %Q VALUES(", zInt); 1258 for(i=0; i<pTab->nCol; i++){ 1259 zWrite = idxAppendText(&rc, zWrite, "%s?", i==0 ? "" : ", "); 1260 } 1261 zWrite = idxAppendText(&rc, zWrite, ")"); 1262 break; 1263 } 1264 case SQLITE_UPDATE: { 1265 int i; 1266 zWrite = idxAppendText(&rc, zWrite, "UPDATE %Q SET ", zInt); 1267 for(i=0; i<pTab->nCol; i++){ 1268 zWrite = idxAppendText(&rc, zWrite, "%s%Q=?", i==0 ? "" : ", ", 1269 pTab->aCol[i].zName 1270 ); 1271 } 1272 break; 1273 } 1274 default: { 1275 assert( pWrite->eOp==SQLITE_DELETE ); 1276 if( rc==SQLITE_OK ){ 1277 zWrite = sqlite3_mprintf("DELETE FROM %Q", zInt); 1278 if( zWrite==0 ) rc = SQLITE_NOMEM; 1279 } 1280 } 1281 } 1282 1283 if( rc==SQLITE_OK ){ 1284 sqlite3_stmt *pX = 0; 1285 rc = sqlite3_prepare_v2(p->dbv, zWrite, -1, &pX, 0); 1286 idxFinalize(&rc, pX); 1287 if( rc!=SQLITE_OK ){ 1288 idxDatabaseError(p->dbv, pzErr); 1289 } 1290 } 1291 sqlite3_free(zWrite); 1292 1293 if( rc==SQLITE_OK ){ 1294 rc = sqlite3_exec(p->dbv, zDrop, 0, 0, pzErr); 1295 } 1296 1297 return rc; 1298 } 1299 1300 static int idxProcessTriggers(sqlite3expert *p, char **pzErr){ 1301 int rc = SQLITE_OK; 1302 IdxWrite *pEnd = 0; 1303 IdxWrite *pFirst = p->pWrite; 1304 1305 while( rc==SQLITE_OK && pFirst!=pEnd ){ 1306 IdxWrite *pIter; 1307 for(pIter=pFirst; rc==SQLITE_OK && pIter!=pEnd; pIter=pIter->pNext){ 1308 rc = idxProcessOneTrigger(p, pIter, pzErr); 1309 } 1310 pEnd = pFirst; 1311 pFirst = p->pWrite; 1312 } 1313 1314 return rc; 1315 } 1316 1317 1318 static int idxCreateVtabSchema(sqlite3expert *p, char **pzErrmsg){ 1319 int rc = idxRegisterVtab(p); 1320 sqlite3_stmt *pSchema = 0; 1321 1322 /* For each table in the main db schema: 1323 ** 1324 ** 1) Add an entry to the p->pTable list, and 1325 ** 2) Create the equivalent virtual table in dbv. 1326 */ 1327 rc = idxPrepareStmt(p->db, &pSchema, pzErrmsg, 1328 "SELECT type, name, sql, 1 FROM sqlite_schema " 1329 "WHERE type IN ('table','view') AND name NOT LIKE 'sqlite_%%' " 1330 " UNION ALL " 1331 "SELECT type, name, sql, 2 FROM sqlite_schema " 1332 "WHERE type = 'trigger'" 1333 " AND tbl_name IN(SELECT name FROM sqlite_schema WHERE type = 'view') " 1334 "ORDER BY 4, 1" 1335 ); 1336 while( rc==SQLITE_OK && SQLITE_ROW==sqlite3_step(pSchema) ){ 1337 const char *zType = (const char*)sqlite3_column_text(pSchema, 0); 1338 const char *zName = (const char*)sqlite3_column_text(pSchema, 1); 1339 const char *zSql = (const char*)sqlite3_column_text(pSchema, 2); 1340 1341 if( zType[0]=='v' || zType[1]=='r' ){ 1342 rc = sqlite3_exec(p->dbv, zSql, 0, 0, pzErrmsg); 1343 }else{ 1344 IdxTable *pTab; 1345 rc = idxGetTableInfo(p->db, zName, &pTab, pzErrmsg); 1346 if( rc==SQLITE_OK ){ 1347 int i; 1348 char *zInner = 0; 1349 char *zOuter = 0; 1350 pTab->pNext = p->pTable; 1351 p->pTable = pTab; 1352 1353 /* The statement the vtab will pass to sqlite3_declare_vtab() */ 1354 zInner = idxAppendText(&rc, 0, "CREATE TABLE x("); 1355 for(i=0; i<pTab->nCol; i++){ 1356 zInner = idxAppendText(&rc, zInner, "%s%Q COLLATE %s", 1357 (i==0 ? "" : ", "), pTab->aCol[i].zName, pTab->aCol[i].zColl 1358 ); 1359 } 1360 zInner = idxAppendText(&rc, zInner, ")"); 1361 1362 /* The CVT statement to create the vtab */ 1363 zOuter = idxAppendText(&rc, 0, 1364 "CREATE VIRTUAL TABLE %Q USING expert(%Q)", zName, zInner 1365 ); 1366 if( rc==SQLITE_OK ){ 1367 rc = sqlite3_exec(p->dbv, zOuter, 0, 0, pzErrmsg); 1368 } 1369 sqlite3_free(zInner); 1370 sqlite3_free(zOuter); 1371 } 1372 } 1373 } 1374 idxFinalize(&rc, pSchema); 1375 return rc; 1376 } 1377 1378 struct IdxSampleCtx { 1379 int iTarget; 1380 double target; /* Target nRet/nRow value */ 1381 double nRow; /* Number of rows seen */ 1382 double nRet; /* Number of rows returned */ 1383 }; 1384 1385 static void idxSampleFunc( 1386 sqlite3_context *pCtx, 1387 int argc, 1388 sqlite3_value **argv 1389 ){ 1390 struct IdxSampleCtx *p = (struct IdxSampleCtx*)sqlite3_user_data(pCtx); 1391 int bRet; 1392 1393 (void)argv; 1394 assert( argc==0 ); 1395 if( p->nRow==0.0 ){ 1396 bRet = 1; 1397 }else{ 1398 bRet = (p->nRet / p->nRow) <= p->target; 1399 if( bRet==0 ){ 1400 unsigned short rnd; 1401 sqlite3_randomness(2, (void*)&rnd); 1402 bRet = ((int)rnd % 100) <= p->iTarget; 1403 } 1404 } 1405 1406 sqlite3_result_int(pCtx, bRet); 1407 p->nRow += 1.0; 1408 p->nRet += (double)bRet; 1409 } 1410 1411 struct IdxRemCtx { 1412 int nSlot; 1413 struct IdxRemSlot { 1414 int eType; /* SQLITE_NULL, INTEGER, REAL, TEXT, BLOB */ 1415 i64 iVal; /* SQLITE_INTEGER value */ 1416 double rVal; /* SQLITE_FLOAT value */ 1417 int nByte; /* Bytes of space allocated at z */ 1418 int n; /* Size of buffer z */ 1419 char *z; /* SQLITE_TEXT/BLOB value */ 1420 } aSlot[1]; 1421 }; 1422 1423 /* 1424 ** Implementation of scalar function rem(). 1425 */ 1426 static void idxRemFunc( 1427 sqlite3_context *pCtx, 1428 int argc, 1429 sqlite3_value **argv 1430 ){ 1431 struct IdxRemCtx *p = (struct IdxRemCtx*)sqlite3_user_data(pCtx); 1432 struct IdxRemSlot *pSlot; 1433 int iSlot; 1434 assert( argc==2 ); 1435 1436 iSlot = sqlite3_value_int(argv[0]); 1437 assert( iSlot<=p->nSlot ); 1438 pSlot = &p->aSlot[iSlot]; 1439 1440 switch( pSlot->eType ){ 1441 case SQLITE_NULL: 1442 /* no-op */ 1443 break; 1444 1445 case SQLITE_INTEGER: 1446 sqlite3_result_int64(pCtx, pSlot->iVal); 1447 break; 1448 1449 case SQLITE_FLOAT: 1450 sqlite3_result_double(pCtx, pSlot->rVal); 1451 break; 1452 1453 case SQLITE_BLOB: 1454 sqlite3_result_blob(pCtx, pSlot->z, pSlot->n, SQLITE_TRANSIENT); 1455 break; 1456 1457 case SQLITE_TEXT: 1458 sqlite3_result_text(pCtx, pSlot->z, pSlot->n, SQLITE_TRANSIENT); 1459 break; 1460 } 1461 1462 pSlot->eType = sqlite3_value_type(argv[1]); 1463 switch( pSlot->eType ){ 1464 case SQLITE_NULL: 1465 /* no-op */ 1466 break; 1467 1468 case SQLITE_INTEGER: 1469 pSlot->iVal = sqlite3_value_int64(argv[1]); 1470 break; 1471 1472 case SQLITE_FLOAT: 1473 pSlot->rVal = sqlite3_value_double(argv[1]); 1474 break; 1475 1476 case SQLITE_BLOB: 1477 case SQLITE_TEXT: { 1478 int nByte = sqlite3_value_bytes(argv[1]); 1479 if( nByte>pSlot->nByte ){ 1480 char *zNew = (char*)sqlite3_realloc(pSlot->z, nByte*2); 1481 if( zNew==0 ){ 1482 sqlite3_result_error_nomem(pCtx); 1483 return; 1484 } 1485 pSlot->nByte = nByte*2; 1486 pSlot->z = zNew; 1487 } 1488 pSlot->n = nByte; 1489 if( pSlot->eType==SQLITE_BLOB ){ 1490 memcpy(pSlot->z, sqlite3_value_blob(argv[1]), nByte); 1491 }else{ 1492 memcpy(pSlot->z, sqlite3_value_text(argv[1]), nByte); 1493 } 1494 break; 1495 } 1496 } 1497 } 1498 1499 static int idxLargestIndex(sqlite3 *db, int *pnMax, char **pzErr){ 1500 int rc = SQLITE_OK; 1501 const char *zMax = 1502 "SELECT max(i.seqno) FROM " 1503 " sqlite_schema AS s, " 1504 " pragma_index_list(s.name) AS l, " 1505 " pragma_index_info(l.name) AS i " 1506 "WHERE s.type = 'table'"; 1507 sqlite3_stmt *pMax = 0; 1508 1509 *pnMax = 0; 1510 rc = idxPrepareStmt(db, &pMax, pzErr, zMax); 1511 if( rc==SQLITE_OK && SQLITE_ROW==sqlite3_step(pMax) ){ 1512 *pnMax = sqlite3_column_int(pMax, 0) + 1; 1513 } 1514 idxFinalize(&rc, pMax); 1515 1516 return rc; 1517 } 1518 1519 static int idxPopulateOneStat1( 1520 sqlite3expert *p, 1521 sqlite3_stmt *pIndexXInfo, 1522 sqlite3_stmt *pWriteStat, 1523 const char *zTab, 1524 const char *zIdx, 1525 char **pzErr 1526 ){ 1527 char *zCols = 0; 1528 char *zOrder = 0; 1529 char *zQuery = 0; 1530 int nCol = 0; 1531 int i; 1532 sqlite3_stmt *pQuery = 0; 1533 int *aStat = 0; 1534 int rc = SQLITE_OK; 1535 1536 assert( p->iSample>0 ); 1537 1538 /* Formulate the query text */ 1539 sqlite3_bind_text(pIndexXInfo, 1, zIdx, -1, SQLITE_STATIC); 1540 while( SQLITE_OK==rc && SQLITE_ROW==sqlite3_step(pIndexXInfo) ){ 1541 const char *zComma = zCols==0 ? "" : ", "; 1542 const char *zName = (const char*)sqlite3_column_text(pIndexXInfo, 0); 1543 const char *zColl = (const char*)sqlite3_column_text(pIndexXInfo, 1); 1544 zCols = idxAppendText(&rc, zCols, 1545 "%sx.%Q IS rem(%d, x.%Q) COLLATE %s", zComma, zName, nCol, zName, zColl 1546 ); 1547 zOrder = idxAppendText(&rc, zOrder, "%s%d", zComma, ++nCol); 1548 } 1549 sqlite3_reset(pIndexXInfo); 1550 if( rc==SQLITE_OK ){ 1551 if( p->iSample==100 ){ 1552 zQuery = sqlite3_mprintf( 1553 "SELECT %s FROM %Q x ORDER BY %s", zCols, zTab, zOrder 1554 ); 1555 }else{ 1556 zQuery = sqlite3_mprintf( 1557 "SELECT %s FROM temp."UNIQUE_TABLE_NAME" x ORDER BY %s", zCols, zOrder 1558 ); 1559 } 1560 } 1561 sqlite3_free(zCols); 1562 sqlite3_free(zOrder); 1563 1564 /* Formulate the query text */ 1565 if( rc==SQLITE_OK ){ 1566 sqlite3 *dbrem = (p->iSample==100 ? p->db : p->dbv); 1567 rc = idxPrepareStmt(dbrem, &pQuery, pzErr, zQuery); 1568 } 1569 sqlite3_free(zQuery); 1570 1571 if( rc==SQLITE_OK ){ 1572 aStat = (int*)idxMalloc(&rc, sizeof(int)*(nCol+1)); 1573 } 1574 if( rc==SQLITE_OK && SQLITE_ROW==sqlite3_step(pQuery) ){ 1575 IdxHashEntry *pEntry; 1576 char *zStat = 0; 1577 for(i=0; i<=nCol; i++) aStat[i] = 1; 1578 while( rc==SQLITE_OK && SQLITE_ROW==sqlite3_step(pQuery) ){ 1579 aStat[0]++; 1580 for(i=0; i<nCol; i++){ 1581 if( sqlite3_column_int(pQuery, i)==0 ) break; 1582 } 1583 for(/*no-op*/; i<nCol; i++){ 1584 aStat[i+1]++; 1585 } 1586 } 1587 1588 if( rc==SQLITE_OK ){ 1589 int s0 = aStat[0]; 1590 zStat = sqlite3_mprintf("%d", s0); 1591 if( zStat==0 ) rc = SQLITE_NOMEM; 1592 for(i=1; rc==SQLITE_OK && i<=nCol; i++){ 1593 zStat = idxAppendText(&rc, zStat, " %d", (s0+aStat[i]/2) / aStat[i]); 1594 } 1595 } 1596 1597 if( rc==SQLITE_OK ){ 1598 sqlite3_bind_text(pWriteStat, 1, zTab, -1, SQLITE_STATIC); 1599 sqlite3_bind_text(pWriteStat, 2, zIdx, -1, SQLITE_STATIC); 1600 sqlite3_bind_text(pWriteStat, 3, zStat, -1, SQLITE_STATIC); 1601 sqlite3_step(pWriteStat); 1602 rc = sqlite3_reset(pWriteStat); 1603 } 1604 1605 pEntry = idxHashFind(&p->hIdx, zIdx, STRLEN(zIdx)); 1606 if( pEntry ){ 1607 assert( pEntry->zVal2==0 ); 1608 pEntry->zVal2 = zStat; 1609 }else{ 1610 sqlite3_free(zStat); 1611 } 1612 } 1613 sqlite3_free(aStat); 1614 idxFinalize(&rc, pQuery); 1615 1616 return rc; 1617 } 1618 1619 static int idxBuildSampleTable(sqlite3expert *p, const char *zTab){ 1620 int rc; 1621 char *zSql; 1622 1623 rc = sqlite3_exec(p->dbv,"DROP TABLE IF EXISTS temp."UNIQUE_TABLE_NAME,0,0,0); 1624 if( rc!=SQLITE_OK ) return rc; 1625 1626 zSql = sqlite3_mprintf( 1627 "CREATE TABLE temp." UNIQUE_TABLE_NAME " AS SELECT * FROM %Q", zTab 1628 ); 1629 if( zSql==0 ) return SQLITE_NOMEM; 1630 rc = sqlite3_exec(p->dbv, zSql, 0, 0, 0); 1631 sqlite3_free(zSql); 1632 1633 return rc; 1634 } 1635 1636 /* 1637 ** This function is called as part of sqlite3_expert_analyze(). Candidate 1638 ** indexes have already been created in database sqlite3expert.dbm, this 1639 ** function populates sqlite_stat1 table in the same database. 1640 ** 1641 ** The stat1 data is generated by querying the 1642 */ 1643 static int idxPopulateStat1(sqlite3expert *p, char **pzErr){ 1644 int rc = SQLITE_OK; 1645 int nMax =0; 1646 struct IdxRemCtx *pCtx = 0; 1647 struct IdxSampleCtx samplectx; 1648 int i; 1649 i64 iPrev = -100000; 1650 sqlite3_stmt *pAllIndex = 0; 1651 sqlite3_stmt *pIndexXInfo = 0; 1652 sqlite3_stmt *pWrite = 0; 1653 1654 const char *zAllIndex = 1655 "SELECT s.rowid, s.name, l.name FROM " 1656 " sqlite_schema AS s, " 1657 " pragma_index_list(s.name) AS l " 1658 "WHERE s.type = 'table'"; 1659 const char *zIndexXInfo = 1660 "SELECT name, coll FROM pragma_index_xinfo(?) WHERE key"; 1661 const char *zWrite = "INSERT INTO sqlite_stat1 VALUES(?, ?, ?)"; 1662 1663 /* If iSample==0, no sqlite_stat1 data is required. */ 1664 if( p->iSample==0 ) return SQLITE_OK; 1665 1666 rc = idxLargestIndex(p->dbm, &nMax, pzErr); 1667 if( nMax<=0 || rc!=SQLITE_OK ) return rc; 1668 1669 rc = sqlite3_exec(p->dbm, "ANALYZE; PRAGMA writable_schema=1", 0, 0, 0); 1670 1671 if( rc==SQLITE_OK ){ 1672 int nByte = sizeof(struct IdxRemCtx) + (sizeof(struct IdxRemSlot) * nMax); 1673 pCtx = (struct IdxRemCtx*)idxMalloc(&rc, nByte); 1674 } 1675 1676 if( rc==SQLITE_OK ){ 1677 sqlite3 *dbrem = (p->iSample==100 ? p->db : p->dbv); 1678 rc = sqlite3_create_function( 1679 dbrem, "rem", 2, SQLITE_UTF8, (void*)pCtx, idxRemFunc, 0, 0 1680 ); 1681 } 1682 if( rc==SQLITE_OK ){ 1683 rc = sqlite3_create_function( 1684 p->db, "sample", 0, SQLITE_UTF8, (void*)&samplectx, idxSampleFunc, 0, 0 1685 ); 1686 } 1687 1688 if( rc==SQLITE_OK ){ 1689 pCtx->nSlot = nMax+1; 1690 rc = idxPrepareStmt(p->dbm, &pAllIndex, pzErr, zAllIndex); 1691 } 1692 if( rc==SQLITE_OK ){ 1693 rc = idxPrepareStmt(p->dbm, &pIndexXInfo, pzErr, zIndexXInfo); 1694 } 1695 if( rc==SQLITE_OK ){ 1696 rc = idxPrepareStmt(p->dbm, &pWrite, pzErr, zWrite); 1697 } 1698 1699 while( rc==SQLITE_OK && SQLITE_ROW==sqlite3_step(pAllIndex) ){ 1700 i64 iRowid = sqlite3_column_int64(pAllIndex, 0); 1701 const char *zTab = (const char*)sqlite3_column_text(pAllIndex, 1); 1702 const char *zIdx = (const char*)sqlite3_column_text(pAllIndex, 2); 1703 if( p->iSample<100 && iPrev!=iRowid ){ 1704 samplectx.target = (double)p->iSample / 100.0; 1705 samplectx.iTarget = p->iSample; 1706 samplectx.nRow = 0.0; 1707 samplectx.nRet = 0.0; 1708 rc = idxBuildSampleTable(p, zTab); 1709 if( rc!=SQLITE_OK ) break; 1710 } 1711 rc = idxPopulateOneStat1(p, pIndexXInfo, pWrite, zTab, zIdx, pzErr); 1712 iPrev = iRowid; 1713 } 1714 if( rc==SQLITE_OK && p->iSample<100 ){ 1715 rc = sqlite3_exec(p->dbv, 1716 "DROP TABLE IF EXISTS temp." UNIQUE_TABLE_NAME, 0,0,0 1717 ); 1718 } 1719 1720 idxFinalize(&rc, pAllIndex); 1721 idxFinalize(&rc, pIndexXInfo); 1722 idxFinalize(&rc, pWrite); 1723 1724 for(i=0; i<pCtx->nSlot; i++){ 1725 sqlite3_free(pCtx->aSlot[i].z); 1726 } 1727 sqlite3_free(pCtx); 1728 1729 if( rc==SQLITE_OK ){ 1730 rc = sqlite3_exec(p->dbm, "ANALYZE sqlite_schema", 0, 0, 0); 1731 } 1732 1733 sqlite3_exec(p->db, "DROP TABLE IF EXISTS temp."UNIQUE_TABLE_NAME,0,0,0); 1734 return rc; 1735 } 1736 1737 /* 1738 ** Allocate a new sqlite3expert object. 1739 */ 1740 sqlite3expert *sqlite3_expert_new(sqlite3 *db, char **pzErrmsg){ 1741 int rc = SQLITE_OK; 1742 sqlite3expert *pNew; 1743 1744 pNew = (sqlite3expert*)idxMalloc(&rc, sizeof(sqlite3expert)); 1745 1746 /* Open two in-memory databases to work with. The "vtab database" (dbv) 1747 ** will contain a virtual table corresponding to each real table in 1748 ** the user database schema, and a copy of each view. It is used to 1749 ** collect information regarding the WHERE, ORDER BY and other clauses 1750 ** of the user's query. 1751 */ 1752 if( rc==SQLITE_OK ){ 1753 pNew->db = db; 1754 pNew->iSample = 100; 1755 rc = sqlite3_open(":memory:", &pNew->dbv); 1756 } 1757 if( rc==SQLITE_OK ){ 1758 rc = sqlite3_open(":memory:", &pNew->dbm); 1759 if( rc==SQLITE_OK ){ 1760 sqlite3_db_config(pNew->dbm, SQLITE_DBCONFIG_TRIGGER_EQP, 1, (int*)0); 1761 } 1762 } 1763 1764 1765 /* Copy the entire schema of database [db] into [dbm]. */ 1766 if( rc==SQLITE_OK ){ 1767 sqlite3_stmt *pSql; 1768 rc = idxPrintfPrepareStmt(pNew->db, &pSql, pzErrmsg, 1769 "SELECT sql FROM sqlite_schema WHERE name NOT LIKE 'sqlite_%%'" 1770 " AND sql NOT LIKE 'CREATE VIRTUAL %%'" 1771 ); 1772 while( rc==SQLITE_OK && SQLITE_ROW==sqlite3_step(pSql) ){ 1773 const char *zSql = (const char*)sqlite3_column_text(pSql, 0); 1774 rc = sqlite3_exec(pNew->dbm, zSql, 0, 0, pzErrmsg); 1775 } 1776 idxFinalize(&rc, pSql); 1777 } 1778 1779 /* Create the vtab schema */ 1780 if( rc==SQLITE_OK ){ 1781 rc = idxCreateVtabSchema(pNew, pzErrmsg); 1782 } 1783 1784 /* Register the auth callback with dbv */ 1785 if( rc==SQLITE_OK ){ 1786 sqlite3_set_authorizer(pNew->dbv, idxAuthCallback, (void*)pNew); 1787 } 1788 1789 /* If an error has occurred, free the new object and reutrn NULL. Otherwise, 1790 ** return the new sqlite3expert handle. */ 1791 if( rc!=SQLITE_OK ){ 1792 sqlite3_expert_destroy(pNew); 1793 pNew = 0; 1794 } 1795 return pNew; 1796 } 1797 1798 /* 1799 ** Configure an sqlite3expert object. 1800 */ 1801 int sqlite3_expert_config(sqlite3expert *p, int op, ...){ 1802 int rc = SQLITE_OK; 1803 va_list ap; 1804 va_start(ap, op); 1805 switch( op ){ 1806 case EXPERT_CONFIG_SAMPLE: { 1807 int iVal = va_arg(ap, int); 1808 if( iVal<0 ) iVal = 0; 1809 if( iVal>100 ) iVal = 100; 1810 p->iSample = iVal; 1811 break; 1812 } 1813 default: 1814 rc = SQLITE_NOTFOUND; 1815 break; 1816 } 1817 1818 va_end(ap); 1819 return rc; 1820 } 1821 1822 /* 1823 ** Add an SQL statement to the analysis. 1824 */ 1825 int sqlite3_expert_sql( 1826 sqlite3expert *p, /* From sqlite3_expert_new() */ 1827 const char *zSql, /* SQL statement to add */ 1828 char **pzErr /* OUT: Error message (if any) */ 1829 ){ 1830 IdxScan *pScanOrig = p->pScan; 1831 IdxStatement *pStmtOrig = p->pStatement; 1832 int rc = SQLITE_OK; 1833 const char *zStmt = zSql; 1834 1835 if( p->bRun ) return SQLITE_MISUSE; 1836 1837 while( rc==SQLITE_OK && zStmt && zStmt[0] ){ 1838 sqlite3_stmt *pStmt = 0; 1839 rc = sqlite3_prepare_v2(p->dbv, zStmt, -1, &pStmt, &zStmt); 1840 if( rc==SQLITE_OK ){ 1841 if( pStmt ){ 1842 IdxStatement *pNew; 1843 const char *z = sqlite3_sql(pStmt); 1844 int n = STRLEN(z); 1845 pNew = (IdxStatement*)idxMalloc(&rc, sizeof(IdxStatement) + n+1); 1846 if( rc==SQLITE_OK ){ 1847 pNew->zSql = (char*)&pNew[1]; 1848 memcpy(pNew->zSql, z, n+1); 1849 pNew->pNext = p->pStatement; 1850 if( p->pStatement ) pNew->iId = p->pStatement->iId+1; 1851 p->pStatement = pNew; 1852 } 1853 sqlite3_finalize(pStmt); 1854 } 1855 }else{ 1856 idxDatabaseError(p->dbv, pzErr); 1857 } 1858 } 1859 1860 if( rc!=SQLITE_OK ){ 1861 idxScanFree(p->pScan, pScanOrig); 1862 idxStatementFree(p->pStatement, pStmtOrig); 1863 p->pScan = pScanOrig; 1864 p->pStatement = pStmtOrig; 1865 } 1866 1867 return rc; 1868 } 1869 1870 int sqlite3_expert_analyze(sqlite3expert *p, char **pzErr){ 1871 int rc; 1872 IdxHashEntry *pEntry; 1873 1874 /* Do trigger processing to collect any extra IdxScan structures */ 1875 rc = idxProcessTriggers(p, pzErr); 1876 1877 /* Create candidate indexes within the in-memory database file */ 1878 if( rc==SQLITE_OK ){ 1879 rc = idxCreateCandidates(p); 1880 } 1881 1882 /* Generate the stat1 data */ 1883 if( rc==SQLITE_OK ){ 1884 rc = idxPopulateStat1(p, pzErr); 1885 } 1886 1887 /* Formulate the EXPERT_REPORT_CANDIDATES text */ 1888 for(pEntry=p->hIdx.pFirst; pEntry; pEntry=pEntry->pNext){ 1889 p->zCandidates = idxAppendText(&rc, p->zCandidates, 1890 "%s;%s%s\n", pEntry->zVal, 1891 pEntry->zVal2 ? " -- stat1: " : "", pEntry->zVal2 1892 ); 1893 } 1894 1895 /* Figure out which of the candidate indexes are preferred by the query 1896 ** planner and report the results to the user. */ 1897 if( rc==SQLITE_OK ){ 1898 rc = idxFindIndexes(p, pzErr); 1899 } 1900 1901 if( rc==SQLITE_OK ){ 1902 p->bRun = 1; 1903 } 1904 return rc; 1905 } 1906 1907 /* 1908 ** Return the total number of statements that have been added to this 1909 ** sqlite3expert using sqlite3_expert_sql(). 1910 */ 1911 int sqlite3_expert_count(sqlite3expert *p){ 1912 int nRet = 0; 1913 if( p->pStatement ) nRet = p->pStatement->iId+1; 1914 return nRet; 1915 } 1916 1917 /* 1918 ** Return a component of the report. 1919 */ 1920 const char *sqlite3_expert_report(sqlite3expert *p, int iStmt, int eReport){ 1921 const char *zRet = 0; 1922 IdxStatement *pStmt; 1923 1924 if( p->bRun==0 ) return 0; 1925 for(pStmt=p->pStatement; pStmt && pStmt->iId!=iStmt; pStmt=pStmt->pNext); 1926 switch( eReport ){ 1927 case EXPERT_REPORT_SQL: 1928 if( pStmt ) zRet = pStmt->zSql; 1929 break; 1930 case EXPERT_REPORT_INDEXES: 1931 if( pStmt ) zRet = pStmt->zIdx; 1932 break; 1933 case EXPERT_REPORT_PLAN: 1934 if( pStmt ) zRet = pStmt->zEQP; 1935 break; 1936 case EXPERT_REPORT_CANDIDATES: 1937 zRet = p->zCandidates; 1938 break; 1939 } 1940 return zRet; 1941 } 1942 1943 /* 1944 ** Free an sqlite3expert object. 1945 */ 1946 void sqlite3_expert_destroy(sqlite3expert *p){ 1947 if( p ){ 1948 sqlite3_close(p->dbm); 1949 sqlite3_close(p->dbv); 1950 idxScanFree(p->pScan, 0); 1951 idxStatementFree(p->pStatement, 0); 1952 idxTableFree(p->pTable); 1953 idxWriteFree(p->pWrite); 1954 idxHashClear(&p->hIdx); 1955 sqlite3_free(p->zCandidates); 1956 sqlite3_free(p); 1957 } 1958 } 1959 1960 #endif /* ifndef SQLITE_OMIT_VIRTUALTABLE */ 1961