16f82e85aSdrh /* 26f82e85aSdrh ** 2015-06-06 36f82e85aSdrh ** 46f82e85aSdrh ** The author disclaims copyright to this source code. In place of 56f82e85aSdrh ** a legal notice, here is a blessing: 66f82e85aSdrh ** 76f82e85aSdrh ** May you do good and not evil. 86f82e85aSdrh ** May you find forgiveness for yourself and forgive others. 96f82e85aSdrh ** May you share freely, never taking more than you give. 106f82e85aSdrh ** 116f82e85aSdrh ************************************************************************* 126f82e85aSdrh ** This module contains C code that generates VDBE code used to process 136f82e85aSdrh ** the WHERE clause of SQL statements. 146f82e85aSdrh ** 156f82e85aSdrh ** This file was split off from where.c on 2015-06-06 in order to reduce the 166f82e85aSdrh ** size of where.c and make it easier to edit. This file contains the routines 176f82e85aSdrh ** that actually generate the bulk of the WHERE loop code. The original where.c 186f82e85aSdrh ** file retains the code that does query planning and analysis. 196f82e85aSdrh */ 206f82e85aSdrh #include "sqliteInt.h" 216f82e85aSdrh #include "whereInt.h" 226f82e85aSdrh 236f82e85aSdrh #ifndef SQLITE_OMIT_EXPLAIN 241d9bc9b7Sdan 251d9bc9b7Sdan /* 261d9bc9b7Sdan ** Return the name of the i-th column of the pIdx index. 271d9bc9b7Sdan */ 281d9bc9b7Sdan static const char *explainIndexColumnName(Index *pIdx, int i){ 291d9bc9b7Sdan i = pIdx->aiColumn[i]; 301d9bc9b7Sdan if( i==XN_EXPR ) return "<expr>"; 311d9bc9b7Sdan if( i==XN_ROWID ) return "rowid"; 32cf9d36d1Sdrh return pIdx->pTable->aCol[i].zCnName; 331d9bc9b7Sdan } 341d9bc9b7Sdan 356f82e85aSdrh /* 366f82e85aSdrh ** This routine is a helper for explainIndexRange() below 376f82e85aSdrh ** 386f82e85aSdrh ** pStr holds the text of an expression that we are building up one term 396f82e85aSdrh ** at a time. This routine adds a new term to the end of the expression. 406f82e85aSdrh ** Terms are separated by AND so add the "AND" text for second and subsequent 416f82e85aSdrh ** terms only. 426f82e85aSdrh */ 436f82e85aSdrh static void explainAppendTerm( 446f82e85aSdrh StrAccum *pStr, /* The text expression being built */ 451d9bc9b7Sdan Index *pIdx, /* Index to read column names from */ 461d9bc9b7Sdan int nTerm, /* Number of terms */ 471d9bc9b7Sdan int iTerm, /* Zero-based index of first term. */ 481d9bc9b7Sdan int bAnd, /* Non-zero to append " AND " */ 496f82e85aSdrh const char *zOp /* Name of the operator */ 506f82e85aSdrh ){ 511d9bc9b7Sdan int i; 521d9bc9b7Sdan 531d9bc9b7Sdan assert( nTerm>=1 ); 540cdbe1aeSdrh if( bAnd ) sqlite3_str_append(pStr, " AND ", 5); 551d9bc9b7Sdan 560cdbe1aeSdrh if( nTerm>1 ) sqlite3_str_append(pStr, "(", 1); 571d9bc9b7Sdan for(i=0; i<nTerm; i++){ 580cdbe1aeSdrh if( i ) sqlite3_str_append(pStr, ",", 1); 590cdbe1aeSdrh sqlite3_str_appendall(pStr, explainIndexColumnName(pIdx, iTerm+i)); 601d9bc9b7Sdan } 610cdbe1aeSdrh if( nTerm>1 ) sqlite3_str_append(pStr, ")", 1); 621d9bc9b7Sdan 630cdbe1aeSdrh sqlite3_str_append(pStr, zOp, 1); 641d9bc9b7Sdan 650cdbe1aeSdrh if( nTerm>1 ) sqlite3_str_append(pStr, "(", 1); 661d9bc9b7Sdan for(i=0; i<nTerm; i++){ 670cdbe1aeSdrh if( i ) sqlite3_str_append(pStr, ",", 1); 680cdbe1aeSdrh sqlite3_str_append(pStr, "?", 1); 696f82e85aSdrh } 700cdbe1aeSdrh if( nTerm>1 ) sqlite3_str_append(pStr, ")", 1); 71c7c4680fSdrh } 72c7c4680fSdrh 73c7c4680fSdrh /* 746f82e85aSdrh ** Argument pLevel describes a strategy for scanning table pTab. This 756f82e85aSdrh ** function appends text to pStr that describes the subset of table 766f82e85aSdrh ** rows scanned by the strategy in the form of an SQL expression. 776f82e85aSdrh ** 786f82e85aSdrh ** For example, if the query: 796f82e85aSdrh ** 806f82e85aSdrh ** SELECT * FROM t1 WHERE a=1 AND b>2; 816f82e85aSdrh ** 826f82e85aSdrh ** is run and there is an index on (a, b), then this function returns a 836f82e85aSdrh ** string similar to: 846f82e85aSdrh ** 856f82e85aSdrh ** "a=? AND b>?" 866f82e85aSdrh */ 878faee877Sdrh static void explainIndexRange(StrAccum *pStr, WhereLoop *pLoop){ 886f82e85aSdrh Index *pIndex = pLoop->u.btree.pIndex; 896f82e85aSdrh u16 nEq = pLoop->u.btree.nEq; 906f82e85aSdrh u16 nSkip = pLoop->nSkip; 916f82e85aSdrh int i, j; 926f82e85aSdrh 936f82e85aSdrh if( nEq==0 && (pLoop->wsFlags&(WHERE_BTM_LIMIT|WHERE_TOP_LIMIT))==0 ) return; 940cdbe1aeSdrh sqlite3_str_append(pStr, " (", 2); 956f82e85aSdrh for(i=0; i<nEq; i++){ 96c7c4680fSdrh const char *z = explainIndexColumnName(pIndex, i); 970cdbe1aeSdrh if( i ) sqlite3_str_append(pStr, " AND ", 5); 980cdbe1aeSdrh sqlite3_str_appendf(pStr, i>=nSkip ? "%s=?" : "ANY(%s)", z); 996f82e85aSdrh } 1006f82e85aSdrh 1016f82e85aSdrh j = i; 1026f82e85aSdrh if( pLoop->wsFlags&WHERE_BTM_LIMIT ){ 1031d9bc9b7Sdan explainAppendTerm(pStr, pIndex, pLoop->u.btree.nBtm, j, i, ">"); 1041d9bc9b7Sdan i = 1; 1056f82e85aSdrh } 1066f82e85aSdrh if( pLoop->wsFlags&WHERE_TOP_LIMIT ){ 1071d9bc9b7Sdan explainAppendTerm(pStr, pIndex, pLoop->u.btree.nTop, j, i, "<"); 1086f82e85aSdrh } 1090cdbe1aeSdrh sqlite3_str_append(pStr, ")", 1); 1106f82e85aSdrh } 1116f82e85aSdrh 1126f82e85aSdrh /* 1136f82e85aSdrh ** This function is a no-op unless currently processing an EXPLAIN QUERY PLAN 1146f82e85aSdrh ** command, or if either SQLITE_DEBUG or SQLITE_ENABLE_STMT_SCANSTATUS was 1156f82e85aSdrh ** defined at compile-time. If it is not a no-op, a single OP_Explain opcode 1166f82e85aSdrh ** is added to the output to describe the table scan strategy in pLevel. 1176f82e85aSdrh ** 1186f82e85aSdrh ** If an OP_Explain opcode is added to the VM, its address is returned. 1196f82e85aSdrh ** Otherwise, if no OP_Explain is coded, zero is returned. 1206f82e85aSdrh */ 1216f82e85aSdrh int sqlite3WhereExplainOneScan( 1226f82e85aSdrh Parse *pParse, /* Parse context */ 1236f82e85aSdrh SrcList *pTabList, /* Table list this loop refers to */ 1246f82e85aSdrh WhereLevel *pLevel, /* Scan to write OP_Explain opcode for */ 1256f82e85aSdrh u16 wctrlFlags /* Flags passed to sqlite3WhereBegin() */ 1266f82e85aSdrh ){ 1276f82e85aSdrh int ret = 0; 1286f82e85aSdrh #if !defined(SQLITE_DEBUG) && !defined(SQLITE_ENABLE_STMT_SCANSTATUS) 129ef7231b8Sdrh if( sqlite3ParseToplevel(pParse)->explain==2 ) 1306f82e85aSdrh #endif 1316f82e85aSdrh { 1327601294aSdrh SrcItem *pItem = &pTabList->a[pLevel->iFrom]; 1336f82e85aSdrh Vdbe *v = pParse->pVdbe; /* VM being constructed */ 1346f82e85aSdrh sqlite3 *db = pParse->db; /* Database handle */ 1356f82e85aSdrh int isSearch; /* True for a SEARCH. False for SCAN. */ 1366f82e85aSdrh WhereLoop *pLoop; /* The controlling WhereLoop object */ 1376f82e85aSdrh u32 flags; /* Flags that describe this loop */ 1386f82e85aSdrh char *zMsg; /* Text to add to EQP output */ 1396f82e85aSdrh StrAccum str; /* EQP output string */ 1406f82e85aSdrh char zBuf[100]; /* Initial space for EQP output string */ 1416f82e85aSdrh 1426f82e85aSdrh pLoop = pLevel->pWLoop; 1436f82e85aSdrh flags = pLoop->wsFlags; 144ce943bc8Sdrh if( (flags&WHERE_MULTI_OR) || (wctrlFlags&WHERE_OR_SUBCLAUSE) ) return 0; 1456f82e85aSdrh 1466f82e85aSdrh isSearch = (flags&(WHERE_BTM_LIMIT|WHERE_TOP_LIMIT))!=0 1476f82e85aSdrh || ((flags&WHERE_VIRTUALTABLE)==0 && (pLoop->u.btree.nEq>0)) 1486f82e85aSdrh || (wctrlFlags&(WHERE_ORDERBY_MIN|WHERE_ORDERBY_MAX)); 1496f82e85aSdrh 1506f82e85aSdrh sqlite3StrAccumInit(&str, db, zBuf, sizeof(zBuf), SQLITE_MAX_LENGTH); 151a979993bSdrh str.printfFlags = SQLITE_PRINTF_INTERNAL; 1522f2091b1Sdrh sqlite3_str_appendf(&str, "%s %S", isSearch ? "SEARCH" : "SCAN", pItem); 1536f82e85aSdrh if( (flags & (WHERE_IPK|WHERE_VIRTUALTABLE))==0 ){ 1546f82e85aSdrh const char *zFmt = 0; 1556f82e85aSdrh Index *pIdx; 1566f82e85aSdrh 1576f82e85aSdrh assert( pLoop->u.btree.pIndex!=0 ); 1586f82e85aSdrh pIdx = pLoop->u.btree.pIndex; 1596f82e85aSdrh assert( !(flags&WHERE_AUTO_INDEX) || (flags&WHERE_IDX_ONLY) ); 1606f82e85aSdrh if( !HasRowid(pItem->pTab) && IsPrimaryKeyIndex(pIdx) ){ 1616f82e85aSdrh if( isSearch ){ 1626f82e85aSdrh zFmt = "PRIMARY KEY"; 1636f82e85aSdrh } 1646f82e85aSdrh }else if( flags & WHERE_PARTIALIDX ){ 1656f82e85aSdrh zFmt = "AUTOMATIC PARTIAL COVERING INDEX"; 1666f82e85aSdrh }else if( flags & WHERE_AUTO_INDEX ){ 1676f82e85aSdrh zFmt = "AUTOMATIC COVERING INDEX"; 1686f82e85aSdrh }else if( flags & WHERE_IDX_ONLY ){ 1696f82e85aSdrh zFmt = "COVERING INDEX %s"; 1706f82e85aSdrh }else{ 1716f82e85aSdrh zFmt = "INDEX %s"; 1726f82e85aSdrh } 1736f82e85aSdrh if( zFmt ){ 1740cdbe1aeSdrh sqlite3_str_append(&str, " USING ", 7); 1750cdbe1aeSdrh sqlite3_str_appendf(&str, zFmt, pIdx->zName); 1768faee877Sdrh explainIndexRange(&str, pLoop); 1776f82e85aSdrh } 1786f82e85aSdrh }else if( (flags & WHERE_IPK)!=0 && (flags & WHERE_CONSTRAINT)!=0 ){ 179*3bd7cd73Sdrh char cRangeOp; 180*3bd7cd73Sdrh #if 0 /* Better output, but breaks many tests */ 181*3bd7cd73Sdrh const Table *pTab = pItem->pTab; 182*3bd7cd73Sdrh const char *zRowid = pTab->iPKey>=0 ? pTab->aCol[pTab->iPKey].zCnName: 183*3bd7cd73Sdrh "rowid"; 184*3bd7cd73Sdrh #else 185*3bd7cd73Sdrh const char *zRowid = "rowid"; 186*3bd7cd73Sdrh #endif 187*3bd7cd73Sdrh sqlite3_str_appendf(&str, " USING INTEGER PRIMARY KEY (%s", zRowid); 1886f82e85aSdrh if( flags&(WHERE_COLUMN_EQ|WHERE_COLUMN_IN) ){ 189*3bd7cd73Sdrh cRangeOp = '='; 1906f82e85aSdrh }else if( (flags&WHERE_BOTH_LIMIT)==WHERE_BOTH_LIMIT ){ 191*3bd7cd73Sdrh sqlite3_str_appendf(&str, ">? AND %s", zRowid); 192*3bd7cd73Sdrh cRangeOp = '<'; 1936f82e85aSdrh }else if( flags&WHERE_BTM_LIMIT ){ 194*3bd7cd73Sdrh cRangeOp = '>'; 1956f82e85aSdrh }else{ 1966f82e85aSdrh assert( flags&WHERE_TOP_LIMIT); 197*3bd7cd73Sdrh cRangeOp = '<'; 1986f82e85aSdrh } 199*3bd7cd73Sdrh sqlite3_str_appendf(&str, "%c?)", cRangeOp); 2006f82e85aSdrh } 2016f82e85aSdrh #ifndef SQLITE_OMIT_VIRTUALTABLE 2026f82e85aSdrh else if( (flags & WHERE_VIRTUALTABLE)!=0 ){ 2030cdbe1aeSdrh sqlite3_str_appendf(&str, " VIRTUAL TABLE INDEX %d:%s", 2046f82e85aSdrh pLoop->u.vtab.idxNum, pLoop->u.vtab.idxStr); 2056f82e85aSdrh } 2066f82e85aSdrh #endif 2076f82e85aSdrh #ifdef SQLITE_EXPLAIN_ESTIMATED_ROWS 2086f82e85aSdrh if( pLoop->nOut>=10 ){ 2090cdbe1aeSdrh sqlite3_str_appendf(&str, " (~%llu rows)", 2100cdbe1aeSdrh sqlite3LogEstToInt(pLoop->nOut)); 2116f82e85aSdrh }else{ 2120cdbe1aeSdrh sqlite3_str_append(&str, " (~1 row)", 9); 2136f82e85aSdrh } 2146f82e85aSdrh #endif 2156f82e85aSdrh zMsg = sqlite3StrAccumFinish(&str); 216bd462bccSdrh sqlite3ExplainBreakpoint("",zMsg); 217e2ca99c9Sdrh ret = sqlite3VdbeAddOp4(v, OP_Explain, sqlite3VdbeCurrentAddr(v), 218e2ca99c9Sdrh pParse->addrExplain, 0, zMsg,P4_DYNAMIC); 2196f82e85aSdrh } 2206f82e85aSdrh return ret; 2216f82e85aSdrh } 2226ae49e67Sdrh 2236ae49e67Sdrh /* 2246ae49e67Sdrh ** Add a single OP_Explain opcode that describes a Bloom filter. 2256ae49e67Sdrh ** 2266ae49e67Sdrh ** Or if not processing EXPLAIN QUERY PLAN and not in a SQLITE_DEBUG and/or 2276ae49e67Sdrh ** SQLITE_ENABLE_STMT_SCANSTATUS build, then OP_Explain opcodes are not 2286ae49e67Sdrh ** required and this routine is a no-op. 2296ae49e67Sdrh ** 2306ae49e67Sdrh ** If an OP_Explain opcode is added to the VM, its address is returned. 2316ae49e67Sdrh ** Otherwise, if no OP_Explain is coded, zero is returned. 2326ae49e67Sdrh */ 2336ae49e67Sdrh int sqlite3WhereExplainBloomFilter( 2346ae49e67Sdrh const Parse *pParse, /* Parse context */ 2356ae49e67Sdrh const WhereInfo *pWInfo, /* WHERE clause */ 2366ae49e67Sdrh const WhereLevel *pLevel /* Bloom filter on this level */ 2376ae49e67Sdrh ){ 2386ae49e67Sdrh int ret = 0; 2396ae49e67Sdrh #if !defined(SQLITE_DEBUG) && !defined(SQLITE_ENABLE_STMT_SCANSTATUS) 2406ae49e67Sdrh if( sqlite3ParseToplevel(pParse)->explain==2 ) 2416ae49e67Sdrh #endif 2426ae49e67Sdrh { 2436ae49e67Sdrh SrcItem *pItem = &pWInfo->pTabList->a[pLevel->iFrom]; 2446ae49e67Sdrh Vdbe *v = pParse->pVdbe; /* VM being constructed */ 2456ae49e67Sdrh sqlite3 *db = pParse->db; /* Database handle */ 2466ae49e67Sdrh char *zMsg; /* Text to add to EQP output */ 2476ae49e67Sdrh int i; /* Loop counter */ 2486ae49e67Sdrh WhereLoop *pLoop; /* The where loop */ 2496ae49e67Sdrh StrAccum str; /* EQP output string */ 2506ae49e67Sdrh char zBuf[100]; /* Initial space for EQP output string */ 2516ae49e67Sdrh 2526ae49e67Sdrh sqlite3StrAccumInit(&str, db, zBuf, sizeof(zBuf), SQLITE_MAX_LENGTH); 2536ae49e67Sdrh str.printfFlags = SQLITE_PRINTF_INTERNAL; 2546ae49e67Sdrh sqlite3_str_appendf(&str, "BLOOM FILTER ON %S (", pItem); 2556ae49e67Sdrh pLoop = pLevel->pWLoop; 256*3bd7cd73Sdrh if( pLoop->wsFlags & WHERE_IPK ){ 257*3bd7cd73Sdrh const Table *pTab = pItem->pTab; 258*3bd7cd73Sdrh if( pTab->iPKey>=0 ){ 259*3bd7cd73Sdrh sqlite3_str_appendf(&str, "%s=?", pTab->aCol[pTab->iPKey].zCnName); 260*3bd7cd73Sdrh }else{ 261*3bd7cd73Sdrh sqlite3_str_appendf(&str, "rowid=?"); 262*3bd7cd73Sdrh } 263*3bd7cd73Sdrh }else{ 2646ae49e67Sdrh for(i=pLoop->nSkip; i<pLoop->u.btree.nEq; i++){ 265*3bd7cd73Sdrh const char *z = explainIndexColumnName(pLoop->u.btree.pIndex, i); 2666ae49e67Sdrh if( i>pLoop->nSkip ) sqlite3_str_append(&str, " AND ", 5); 2676ae49e67Sdrh sqlite3_str_appendf(&str, "%s=?", z); 2686ae49e67Sdrh } 269*3bd7cd73Sdrh } 2706ae49e67Sdrh sqlite3_str_append(&str, ")", 1); 2716ae49e67Sdrh zMsg = sqlite3StrAccumFinish(&str); 2726ae49e67Sdrh ret = sqlite3VdbeAddOp4(v, OP_Explain, sqlite3VdbeCurrentAddr(v), 2736ae49e67Sdrh pParse->addrExplain, 0, zMsg,P4_DYNAMIC); 2746ae49e67Sdrh } 2756ae49e67Sdrh return ret; 2766ae49e67Sdrh } 2776f82e85aSdrh #endif /* SQLITE_OMIT_EXPLAIN */ 2786f82e85aSdrh 2796f82e85aSdrh #ifdef SQLITE_ENABLE_STMT_SCANSTATUS 2806f82e85aSdrh /* 2816f82e85aSdrh ** Configure the VM passed as the first argument with an 2826f82e85aSdrh ** sqlite3_stmt_scanstatus() entry corresponding to the scan used to 2836f82e85aSdrh ** implement level pLvl. Argument pSrclist is a pointer to the FROM 2846f82e85aSdrh ** clause that the scan reads data from. 2856f82e85aSdrh ** 2866f82e85aSdrh ** If argument addrExplain is not 0, it must be the address of an 2876f82e85aSdrh ** OP_Explain instruction that describes the same loop. 2886f82e85aSdrh */ 2896f82e85aSdrh void sqlite3WhereAddScanStatus( 2906f82e85aSdrh Vdbe *v, /* Vdbe to add scanstatus entry to */ 2916f82e85aSdrh SrcList *pSrclist, /* FROM clause pLvl reads data from */ 2926f82e85aSdrh WhereLevel *pLvl, /* Level to add scanstatus() entry for */ 2936f82e85aSdrh int addrExplain /* Address of OP_Explain (or 0) */ 2946f82e85aSdrh ){ 2956f82e85aSdrh const char *zObj = 0; 2966f82e85aSdrh WhereLoop *pLoop = pLvl->pWLoop; 2976f82e85aSdrh if( (pLoop->wsFlags & WHERE_VIRTUALTABLE)==0 && pLoop->u.btree.pIndex!=0 ){ 2986f82e85aSdrh zObj = pLoop->u.btree.pIndex->zName; 2996f82e85aSdrh }else{ 3006f82e85aSdrh zObj = pSrclist->a[pLvl->iFrom].zName; 3016f82e85aSdrh } 3026f82e85aSdrh sqlite3VdbeScanStatus( 3036f82e85aSdrh v, addrExplain, pLvl->addrBody, pLvl->addrVisit, pLoop->nOut, zObj 3046f82e85aSdrh ); 3056f82e85aSdrh } 3066f82e85aSdrh #endif 3076f82e85aSdrh 3086f82e85aSdrh 3096f82e85aSdrh /* 3106f82e85aSdrh ** Disable a term in the WHERE clause. Except, do not disable the term 3116f82e85aSdrh ** if it controls a LEFT OUTER JOIN and it did not originate in the ON 3126f82e85aSdrh ** or USING clause of that join. 3136f82e85aSdrh ** 3146f82e85aSdrh ** Consider the term t2.z='ok' in the following queries: 3156f82e85aSdrh ** 3166f82e85aSdrh ** (1) SELECT * FROM t1 LEFT JOIN t2 ON t1.a=t2.x WHERE t2.z='ok' 3176f82e85aSdrh ** (2) SELECT * FROM t1 LEFT JOIN t2 ON t1.a=t2.x AND t2.z='ok' 3186f82e85aSdrh ** (3) SELECT * FROM t1, t2 WHERE t1.a=t2.x AND t2.z='ok' 3196f82e85aSdrh ** 3206f82e85aSdrh ** The t2.z='ok' is disabled in the in (2) because it originates 3216f82e85aSdrh ** in the ON clause. The term is disabled in (3) because it is not part 3226f82e85aSdrh ** of a LEFT OUTER JOIN. In (1), the term is not disabled. 3236f82e85aSdrh ** 3246f82e85aSdrh ** Disabling a term causes that term to not be tested in the inner loop 3256f82e85aSdrh ** of the join. Disabling is an optimization. When terms are satisfied 3266f82e85aSdrh ** by indices, we disable them to prevent redundant tests in the inner 3276f82e85aSdrh ** loop. We would get the correct results if nothing were ever disabled, 3286f82e85aSdrh ** but joins might run a little slower. The trick is to disable as much 3296f82e85aSdrh ** as we can without disabling too much. If we disabled in (1), we'd get 3306f82e85aSdrh ** the wrong answer. See ticket #813. 3316f82e85aSdrh ** 3326f82e85aSdrh ** If all the children of a term are disabled, then that term is also 3336f82e85aSdrh ** automatically disabled. In this way, terms get disabled if derived 3346f82e85aSdrh ** virtual terms are tested first. For example: 3356f82e85aSdrh ** 3366f82e85aSdrh ** x GLOB 'abc*' AND x>='abc' AND x<'acd' 3376f82e85aSdrh ** \___________/ \______/ \_____/ 3386f82e85aSdrh ** parent child1 child2 3396f82e85aSdrh ** 3406f82e85aSdrh ** Only the parent term was in the original WHERE clause. The child1 3416f82e85aSdrh ** and child2 terms were added by the LIKE optimization. If both of 3426f82e85aSdrh ** the virtual child terms are valid, then testing of the parent can be 3436f82e85aSdrh ** skipped. 3446f82e85aSdrh ** 3456f82e85aSdrh ** Usually the parent term is marked as TERM_CODED. But if the parent 3466f82e85aSdrh ** term was originally TERM_LIKE, then the parent gets TERM_LIKECOND instead. 3476f82e85aSdrh ** The TERM_LIKECOND marking indicates that the term should be coded inside 3486f82e85aSdrh ** a conditional such that is only evaluated on the second pass of a 3496f82e85aSdrh ** LIKE-optimization loop, when scanning BLOBs instead of strings. 3506f82e85aSdrh */ 3516f82e85aSdrh static void disableTerm(WhereLevel *pLevel, WhereTerm *pTerm){ 3526f82e85aSdrh int nLoop = 0; 3539d9c41e2Sdrh assert( pTerm!=0 ); 3549d9c41e2Sdrh while( (pTerm->wtFlags & TERM_CODED)==0 3556f82e85aSdrh && (pLevel->iLeftJoin==0 || ExprHasProperty(pTerm->pExpr, EP_FromJoin)) 3566f82e85aSdrh && (pLevel->notReady & pTerm->prereqAll)==0 3576f82e85aSdrh ){ 3586f82e85aSdrh if( nLoop && (pTerm->wtFlags & TERM_LIKE)!=0 ){ 3596f82e85aSdrh pTerm->wtFlags |= TERM_LIKECOND; 3606f82e85aSdrh }else{ 3616f82e85aSdrh pTerm->wtFlags |= TERM_CODED; 3626f82e85aSdrh } 36323634898Sdrh #ifdef WHERETRACE_ENABLED 36423634898Sdrh if( sqlite3WhereTrace & 0x20000 ){ 36523634898Sdrh sqlite3DebugPrintf("DISABLE-"); 36623634898Sdrh sqlite3WhereTermPrint(pTerm, (int)(pTerm - (pTerm->pWC->a))); 36723634898Sdrh } 36823634898Sdrh #endif 3696f82e85aSdrh if( pTerm->iParent<0 ) break; 3706f82e85aSdrh pTerm = &pTerm->pWC->a[pTerm->iParent]; 3719d9c41e2Sdrh assert( pTerm!=0 ); 3726f82e85aSdrh pTerm->nChild--; 3736f82e85aSdrh if( pTerm->nChild!=0 ) break; 3746f82e85aSdrh nLoop++; 3756f82e85aSdrh } 3766f82e85aSdrh } 3776f82e85aSdrh 3786f82e85aSdrh /* 3796f82e85aSdrh ** Code an OP_Affinity opcode to apply the column affinity string zAff 3806f82e85aSdrh ** to the n registers starting at base. 3816f82e85aSdrh ** 38296fb16eeSdrh ** As an optimization, SQLITE_AFF_BLOB and SQLITE_AFF_NONE entries (which 38396fb16eeSdrh ** are no-ops) at the beginning and end of zAff are ignored. If all entries 38496fb16eeSdrh ** in zAff are SQLITE_AFF_BLOB or SQLITE_AFF_NONE, then no code gets generated. 3856f82e85aSdrh ** 3866f82e85aSdrh ** This routine makes its own copy of zAff so that the caller is free 3876f82e85aSdrh ** to modify zAff after this routine returns. 3886f82e85aSdrh */ 3896f82e85aSdrh static void codeApplyAffinity(Parse *pParse, int base, int n, char *zAff){ 3906f82e85aSdrh Vdbe *v = pParse->pVdbe; 3916f82e85aSdrh if( zAff==0 ){ 3926f82e85aSdrh assert( pParse->db->mallocFailed ); 3936f82e85aSdrh return; 3946f82e85aSdrh } 3956f82e85aSdrh assert( v!=0 ); 3966f82e85aSdrh 39796fb16eeSdrh /* Adjust base and n to skip over SQLITE_AFF_BLOB and SQLITE_AFF_NONE 39896fb16eeSdrh ** entries at the beginning and end of the affinity string. 3996f82e85aSdrh */ 40096fb16eeSdrh assert( SQLITE_AFF_NONE<SQLITE_AFF_BLOB ); 40196fb16eeSdrh while( n>0 && zAff[0]<=SQLITE_AFF_BLOB ){ 4026f82e85aSdrh n--; 4036f82e85aSdrh base++; 4046f82e85aSdrh zAff++; 4056f82e85aSdrh } 40696fb16eeSdrh while( n>1 && zAff[n-1]<=SQLITE_AFF_BLOB ){ 4076f82e85aSdrh n--; 4086f82e85aSdrh } 4096f82e85aSdrh 4106f82e85aSdrh /* Code the OP_Affinity opcode if there is anything left to do. */ 4116f82e85aSdrh if( n>0 ){ 4129b34abeeSdrh sqlite3VdbeAddOp4(v, OP_Affinity, base, n, 0, zAff, n); 4136f82e85aSdrh } 4146f82e85aSdrh } 4156f82e85aSdrh 416b7ca2177Sdan /* 417b7ca2177Sdan ** Expression pRight, which is the RHS of a comparison operation, is 418b7ca2177Sdan ** either a vector of n elements or, if n==1, a scalar expression. 419b7ca2177Sdan ** Before the comparison operation, affinity zAff is to be applied 420b7ca2177Sdan ** to the pRight values. This function modifies characters within the 421b7ca2177Sdan ** affinity string to SQLITE_AFF_BLOB if either: 422b7ca2177Sdan ** 423b7ca2177Sdan ** * the comparison will be performed with no affinity, or 424b7ca2177Sdan ** * the affinity change in zAff is guaranteed not to change the value. 425b7ca2177Sdan */ 426b7ca2177Sdan static void updateRangeAffinityStr( 427b7ca2177Sdan Expr *pRight, /* RHS of comparison */ 428b7ca2177Sdan int n, /* Number of vector elements in comparison */ 429b7ca2177Sdan char *zAff /* Affinity string to modify */ 430b7ca2177Sdan ){ 431b7ca2177Sdan int i; 432b7ca2177Sdan for(i=0; i<n; i++){ 433b7ca2177Sdan Expr *p = sqlite3VectorFieldSubexpr(pRight, i); 434b7ca2177Sdan if( sqlite3CompareAffinity(p, zAff[i])==SQLITE_AFF_BLOB 435b7ca2177Sdan || sqlite3ExprNeedsNoAffinityChange(p, zAff[i]) 436b7ca2177Sdan ){ 437b7ca2177Sdan zAff[i] = SQLITE_AFF_BLOB; 438b7ca2177Sdan } 439b7ca2177Sdan } 440b7ca2177Sdan } 4416f82e85aSdrh 4422410243eSdrh 4432410243eSdrh /* 4442410243eSdrh ** pX is an expression of the form: (vector) IN (SELECT ...) 4452410243eSdrh ** In other words, it is a vector IN operator with a SELECT clause on the 4462410243eSdrh ** LHS. But not all terms in the vector are indexable and the terms might 4472410243eSdrh ** not be in the correct order for indexing. 4489b1ecb67Sdrh ** 4492410243eSdrh ** This routine makes a copy of the input pX expression and then adjusts 4502410243eSdrh ** the vector on the LHS with corresponding changes to the SELECT so that 4512410243eSdrh ** the vector contains only index terms and those terms are in the correct 4522410243eSdrh ** order. The modified IN expression is returned. The caller is responsible 4532410243eSdrh ** for deleting the returned expression. 4542410243eSdrh ** 4552410243eSdrh ** Example: 4562410243eSdrh ** 4572410243eSdrh ** CREATE TABLE t1(a,b,c,d,e,f); 4582410243eSdrh ** CREATE INDEX t1x1 ON t1(e,c); 4592410243eSdrh ** SELECT * FROM t1 WHERE (a,b,c,d,e) IN (SELECT v,w,x,y,z FROM t2) 4602410243eSdrh ** \_______________________________________/ 4612410243eSdrh ** The pX expression 4622410243eSdrh ** 4632410243eSdrh ** Since only columns e and c can be used with the index, in that order, 4642410243eSdrh ** the modified IN expression that is returned will be: 4652410243eSdrh ** 4662410243eSdrh ** (e,c) IN (SELECT z,x FROM t2) 4672410243eSdrh ** 4682410243eSdrh ** The reduced pX is different from the original (obviously) and thus is 4692410243eSdrh ** only used for indexing, to improve performance. The original unaltered 4702410243eSdrh ** IN expression must also be run on each output row for correctness. 4719b1ecb67Sdrh */ 4722410243eSdrh static Expr *removeUnindexableInClauseTerms( 4732410243eSdrh Parse *pParse, /* The parsing context */ 4742410243eSdrh int iEq, /* Look at loop terms starting here */ 4752410243eSdrh WhereLoop *pLoop, /* The current loop */ 4762410243eSdrh Expr *pX /* The IN expression to be reduced */ 4772410243eSdrh ){ 4782410243eSdrh sqlite3 *db = pParse->db; 47969843342Sdan Expr *pNew; 48069843342Sdan pNew = sqlite3ExprDup(db, pX, 0); 4812410243eSdrh if( db->mallocFailed==0 ){ 482a4eeccdfSdrh ExprList *pOrigRhs; /* Original unmodified RHS */ 483a4eeccdfSdrh ExprList *pOrigLhs; /* Original unmodified LHS */ 4842410243eSdrh ExprList *pRhs = 0; /* New RHS after modifications */ 4852410243eSdrh ExprList *pLhs = 0; /* New LHS after mods */ 4862410243eSdrh int i; /* Loop counter */ 4872410243eSdrh Select *pSelect; /* Pointer to the SELECT on the RHS */ 4882410243eSdrh 489a4eeccdfSdrh assert( ExprUseXSelect(pNew) ); 490a4eeccdfSdrh pOrigRhs = pNew->x.pSelect->pEList; 491a4eeccdfSdrh assert( pNew->pLeft!=0 ); 492a4eeccdfSdrh assert( ExprUseXList(pNew->pLeft) ); 493a4eeccdfSdrh pOrigLhs = pNew->pLeft->x.pList; 4942410243eSdrh for(i=iEq; i<pLoop->nLTerm; i++){ 4952410243eSdrh if( pLoop->aLTerm[i]->pExpr==pX ){ 496220f0d6fSdrh int iField; 497220f0d6fSdrh assert( (pLoop->aLTerm[i]->eOperator & (WO_OR|WO_AND))==0 ); 498220f0d6fSdrh iField = pLoop->aLTerm[i]->u.x.iField - 1; 499c6e519f3Sdrh if( pOrigRhs->a[iField].pExpr==0 ) continue; /* Duplicate PK column */ 5002410243eSdrh pRhs = sqlite3ExprListAppend(pParse, pRhs, pOrigRhs->a[iField].pExpr); 5012410243eSdrh pOrigRhs->a[iField].pExpr = 0; 5022410243eSdrh assert( pOrigLhs->a[iField].pExpr!=0 ); 5032410243eSdrh pLhs = sqlite3ExprListAppend(pParse, pLhs, pOrigLhs->a[iField].pExpr); 5042410243eSdrh pOrigLhs->a[iField].pExpr = 0; 5059b1ecb67Sdrh } 5069b1ecb67Sdrh } 5072410243eSdrh sqlite3ExprListDelete(db, pOrigRhs); 5082410243eSdrh sqlite3ExprListDelete(db, pOrigLhs); 5092410243eSdrh pNew->pLeft->x.pList = pLhs; 5102410243eSdrh pNew->x.pSelect->pEList = pRhs; 5112410243eSdrh if( pLhs && pLhs->nExpr==1 ){ 5122410243eSdrh /* Take care here not to generate a TK_VECTOR containing only a 5132410243eSdrh ** single value. Since the parser never creates such a vector, some 5142410243eSdrh ** of the subroutines do not handle this case. */ 5152410243eSdrh Expr *p = pLhs->a[0].pExpr; 5162410243eSdrh pLhs->a[0].pExpr = 0; 5172410243eSdrh sqlite3ExprDelete(db, pNew->pLeft); 5182410243eSdrh pNew->pLeft = p; 5199b1ecb67Sdrh } 5202410243eSdrh pSelect = pNew->x.pSelect; 5212410243eSdrh if( pSelect->pOrderBy ){ 5222410243eSdrh /* If the SELECT statement has an ORDER BY clause, zero the 5232410243eSdrh ** iOrderByCol variables. These are set to non-zero when an 5242410243eSdrh ** ORDER BY term exactly matches one of the terms of the 5252410243eSdrh ** result-set. Since the result-set of the SELECT statement may 5262410243eSdrh ** have been modified or reordered, these variables are no longer 5272410243eSdrh ** set correctly. Since setting them is just an optimization, 5282410243eSdrh ** it's easiest just to zero them here. */ 5292410243eSdrh ExprList *pOrderBy = pSelect->pOrderBy; 5302410243eSdrh for(i=0; i<pOrderBy->nExpr; i++){ 5312410243eSdrh pOrderBy->a[i].u.x.iOrderByCol = 0; 5322410243eSdrh } 5332410243eSdrh } 5342410243eSdrh 5352410243eSdrh #if 0 5362410243eSdrh printf("For indexing, change the IN expr:\n"); 5372410243eSdrh sqlite3TreeViewExpr(0, pX, 0); 5382410243eSdrh printf("Into:\n"); 5392410243eSdrh sqlite3TreeViewExpr(0, pNew, 0); 5402410243eSdrh #endif 5412410243eSdrh } 5422410243eSdrh return pNew; 5432410243eSdrh } 5449b1ecb67Sdrh 5459b1ecb67Sdrh 5466f82e85aSdrh /* 5476f82e85aSdrh ** Generate code for a single equality term of the WHERE clause. An equality 5486f82e85aSdrh ** term can be either X=expr or X IN (...). pTerm is the term to be 5496f82e85aSdrh ** coded. 5506f82e85aSdrh ** 551099a0f5fSdrh ** The current value for the constraint is left in a register, the index 552099a0f5fSdrh ** of which is returned. An attempt is made store the result in iTarget but 553099a0f5fSdrh ** this is only guaranteed for TK_ISNULL and TK_IN constraints. If the 554099a0f5fSdrh ** constraint is a TK_EQ or TK_IS, then the current value might be left in 555099a0f5fSdrh ** some other register and it is the caller's responsibility to compensate. 5566f82e85aSdrh ** 5574602b8e8Sdrh ** For a constraint of the form X=expr, the expression is evaluated in 5584602b8e8Sdrh ** straight-line code. For constraints of the form X IN (...) 5596f82e85aSdrh ** this routine sets up a loop that will iterate over all values of X. 5606f82e85aSdrh */ 5616f82e85aSdrh static int codeEqualityTerm( 5626f82e85aSdrh Parse *pParse, /* The parsing context */ 5636f82e85aSdrh WhereTerm *pTerm, /* The term of the WHERE clause to be coded */ 5646f82e85aSdrh WhereLevel *pLevel, /* The level of the FROM clause we are working on */ 5656f82e85aSdrh int iEq, /* Index of the equality term within this level */ 5666f82e85aSdrh int bRev, /* True for reverse-order IN operations */ 5676f82e85aSdrh int iTarget /* Attempt to leave results in this register */ 5686f82e85aSdrh ){ 5696f82e85aSdrh Expr *pX = pTerm->pExpr; 5706f82e85aSdrh Vdbe *v = pParse->pVdbe; 5716f82e85aSdrh int iReg; /* Register holding results */ 5726f82e85aSdrh 5738da209b1Sdan assert( pLevel->pWLoop->aLTerm[iEq]==pTerm ); 5746f82e85aSdrh assert( iTarget>0 ); 5756f82e85aSdrh if( pX->op==TK_EQ || pX->op==TK_IS ){ 576fc7f27b9Sdrh iReg = sqlite3ExprCodeTarget(pParse, pX->pRight, iTarget); 5776f82e85aSdrh }else if( pX->op==TK_ISNULL ){ 5786f82e85aSdrh iReg = iTarget; 5796f82e85aSdrh sqlite3VdbeAddOp2(v, OP_Null, 0, iReg); 5806f82e85aSdrh #ifndef SQLITE_OMIT_SUBQUERY 5816f82e85aSdrh }else{ 582ac6b47d1Sdrh int eType = IN_INDEX_NOOP; 5836f82e85aSdrh int iTab; 5846f82e85aSdrh struct InLoop *pIn; 5856f82e85aSdrh WhereLoop *pLoop = pLevel->pWLoop; 5868da209b1Sdan int i; 5878da209b1Sdan int nEq = 0; 5888da209b1Sdan int *aiMap = 0; 5896f82e85aSdrh 5906f82e85aSdrh if( (pLoop->wsFlags & WHERE_VIRTUALTABLE)==0 5916f82e85aSdrh && pLoop->u.btree.pIndex!=0 5926f82e85aSdrh && pLoop->u.btree.pIndex->aSortOrder[iEq] 5936f82e85aSdrh ){ 5946f82e85aSdrh testcase( iEq==0 ); 5956f82e85aSdrh testcase( bRev ); 5966f82e85aSdrh bRev = !bRev; 5976f82e85aSdrh } 5986f82e85aSdrh assert( pX->op==TK_IN ); 5996f82e85aSdrh iReg = iTarget; 6008da209b1Sdan 6018da209b1Sdan for(i=0; i<iEq; i++){ 6028da209b1Sdan if( pLoop->aLTerm[i] && pLoop->aLTerm[i]->pExpr==pX ){ 6038da209b1Sdan disableTerm(pLevel, pTerm); 6048da209b1Sdan return iTarget; 6058da209b1Sdan } 6068da209b1Sdan } 6078da209b1Sdan for(i=iEq;i<pLoop->nLTerm; i++){ 6082410243eSdrh assert( pLoop->aLTerm[i]!=0 ); 6092410243eSdrh if( pLoop->aLTerm[i]->pExpr==pX ) nEq++; 6108da209b1Sdan } 6118da209b1Sdan 6122c04131cSdrh iTab = 0; 613a4eeccdfSdrh if( !ExprUseXSelect(pX) || pX->x.pSelect->pEList->nExpr==1 ){ 6142c04131cSdrh eType = sqlite3FindInIndex(pParse, pX, IN_INDEX_LOOP, 0, 0, &iTab); 6158da209b1Sdan }else{ 6168da209b1Sdan sqlite3 *db = pParse->db; 6172410243eSdrh pX = removeUnindexableInClauseTerms(pParse, iEq, pLoop, pX); 6189b1ecb67Sdrh 619ac6b47d1Sdrh if( !db->mallocFailed ){ 620c7a77ae1Sdrh aiMap = (int*)sqlite3DbMallocZero(pParse->db, sizeof(int)*nEq); 6212c04131cSdrh eType = sqlite3FindInIndex(pParse, pX, IN_INDEX_LOOP, 0, aiMap, &iTab); 6222c04131cSdrh pTerm->pExpr->iTable = iTab; 623ac6b47d1Sdrh } 6242410243eSdrh sqlite3ExprDelete(db, pX); 6252410243eSdrh pX = pTerm->pExpr; 6268da209b1Sdan } 6278da209b1Sdan 6286f82e85aSdrh if( eType==IN_INDEX_INDEX_DESC ){ 6296f82e85aSdrh testcase( bRev ); 6306f82e85aSdrh bRev = !bRev; 6316f82e85aSdrh } 6326f82e85aSdrh sqlite3VdbeAddOp2(v, bRev ? OP_Last : OP_Rewind, iTab, 0); 6336f82e85aSdrh VdbeCoverageIf(v, bRev); 6346f82e85aSdrh VdbeCoverageIf(v, !bRev); 6358da209b1Sdan 6360475629dSdrh assert( (pLoop->wsFlags & WHERE_MULTI_OR)==0 ); 6376f82e85aSdrh pLoop->wsFlags |= WHERE_IN_ABLE; 6386f82e85aSdrh if( pLevel->u.in.nIn==0 ){ 639ec4ccdbcSdrh pLevel->addrNxt = sqlite3VdbeMakeLabel(pParse); 6406f82e85aSdrh } 64146f0f4e5Sdrh if( iEq>0 && (pLoop->wsFlags & WHERE_IN_SEEKSCAN)==0 ){ 642fa17e134Sdrh pLoop->wsFlags |= WHERE_IN_EARLYOUT; 643fa17e134Sdrh } 6448da209b1Sdan 6458da209b1Sdan i = pLevel->u.in.nIn; 6468da209b1Sdan pLevel->u.in.nIn += nEq; 6476f82e85aSdrh pLevel->u.in.aInLoop = 6486f82e85aSdrh sqlite3DbReallocOrFree(pParse->db, pLevel->u.in.aInLoop, 6496f82e85aSdrh sizeof(pLevel->u.in.aInLoop[0])*pLevel->u.in.nIn); 6506f82e85aSdrh pIn = pLevel->u.in.aInLoop; 6516f82e85aSdrh if( pIn ){ 6528da209b1Sdan int iMap = 0; /* Index in aiMap[] */ 6538da209b1Sdan pIn += i; 6547887d7f2Sdan for(i=iEq;i<pLoop->nLTerm; i++){ 6558da209b1Sdan if( pLoop->aLTerm[i]->pExpr==pX ){ 656edc3537cSdan int iOut = iReg + i - iEq; 6576f82e85aSdrh if( eType==IN_INDEX_ROWID ){ 658edc3537cSdan pIn->addrInTop = sqlite3VdbeAddOp2(v, OP_Rowid, iTab, iOut); 6596f82e85aSdrh }else{ 6608da209b1Sdan int iCol = aiMap ? aiMap[iMap++] : 0; 6618da209b1Sdan pIn->addrInTop = sqlite3VdbeAddOp3(v,OP_Column,iTab, iCol, iOut); 6626f82e85aSdrh } 66303181c8cSdrh sqlite3VdbeAddOp1(v, OP_IsNull, iOut); VdbeCoverage(v); 6648da209b1Sdan if( i==iEq ){ 6658da209b1Sdan pIn->iCur = iTab; 666f1949b66Sdrh pIn->eEndLoopOp = bRev ? OP_Prev : OP_Next; 66774ebaadcSdan if( iEq>0 ){ 668a0368d93Sdrh pIn->iBase = iReg - i; 669a0368d93Sdrh pIn->nPrefix = i; 6708da209b1Sdan }else{ 67186d0ea75Sdrh pIn->nPrefix = 0; 67286d0ea75Sdrh } 67386d0ea75Sdrh }else{ 6748da209b1Sdan pIn->eEndLoopOp = OP_Noop; 6758da209b1Sdan } 6767887d7f2Sdan pIn++; 6778da209b1Sdan } 6788da209b1Sdan } 67967306cb3Sdrh testcase( iEq>0 68067306cb3Sdrh && (pLoop->wsFlags & WHERE_IN_SEEKSCAN)==0 68167306cb3Sdrh && (pLoop->wsFlags & WHERE_VIRTUALTABLE)!=0 ); 68267306cb3Sdrh if( iEq>0 68367306cb3Sdrh && (pLoop->wsFlags & (WHERE_IN_SEEKSCAN|WHERE_VIRTUALTABLE))==0 68467306cb3Sdrh ){ 685fa17e134Sdrh sqlite3VdbeAddOp3(v, OP_SeekHit, pLevel->iIdxCur, 0, iEq); 686fa17e134Sdrh } 6876f82e85aSdrh }else{ 6886f82e85aSdrh pLevel->u.in.nIn = 0; 6896f82e85aSdrh } 6908da209b1Sdan sqlite3DbFree(pParse->db, aiMap); 6916f82e85aSdrh #endif 6926f82e85aSdrh } 69367656ac7Sdrh 69467656ac7Sdrh /* As an optimization, try to disable the WHERE clause term that is 69567656ac7Sdrh ** driving the index as it will always be true. The correct answer is 69667656ac7Sdrh ** obtained regardless, but we might get the answer with fewer CPU cycles 69767656ac7Sdrh ** by omitting the term. 69867656ac7Sdrh ** 69967656ac7Sdrh ** But do not disable the term unless we are certain that the term is 70067656ac7Sdrh ** not a transitive constraint. For an example of where that does not 70167656ac7Sdrh ** work, see https://sqlite.org/forum/forumpost/eb8613976a (2021-05-04) 70267656ac7Sdrh */ 70367656ac7Sdrh if( (pLevel->pWLoop->wsFlags & WHERE_TRANSCONS)==0 70467656ac7Sdrh || (pTerm->eOperator & WO_EQUIV)==0 70567656ac7Sdrh ){ 7066f82e85aSdrh disableTerm(pLevel, pTerm); 70767656ac7Sdrh } 70867656ac7Sdrh 7096f82e85aSdrh return iReg; 7106f82e85aSdrh } 7116f82e85aSdrh 7126f82e85aSdrh /* 7136f82e85aSdrh ** Generate code that will evaluate all == and IN constraints for an 7146f82e85aSdrh ** index scan. 7156f82e85aSdrh ** 7166f82e85aSdrh ** For example, consider table t1(a,b,c,d,e,f) with index i1(a,b,c). 7176f82e85aSdrh ** Suppose the WHERE clause is this: a==5 AND b IN (1,2,3) AND c>5 AND c<10 7186f82e85aSdrh ** The index has as many as three equality constraints, but in this 7196f82e85aSdrh ** example, the third "c" value is an inequality. So only two 7206f82e85aSdrh ** constraints are coded. This routine will generate code to evaluate 7216f82e85aSdrh ** a==5 and b IN (1,2,3). The current values for a and b will be stored 7226f82e85aSdrh ** in consecutive registers and the index of the first register is returned. 7236f82e85aSdrh ** 7246f82e85aSdrh ** In the example above nEq==2. But this subroutine works for any value 7256f82e85aSdrh ** of nEq including 0. If nEq==0, this routine is nearly a no-op. 7266f82e85aSdrh ** The only thing it does is allocate the pLevel->iMem memory cell and 7276f82e85aSdrh ** compute the affinity string. 7286f82e85aSdrh ** 7296f82e85aSdrh ** The nExtraReg parameter is 0 or 1. It is 0 if all WHERE clause constraints 7306f82e85aSdrh ** are == or IN and are covered by the nEq. nExtraReg is 1 if there is 7316f82e85aSdrh ** an inequality constraint (such as the "c>=5 AND c<10" in the example) that 7326f82e85aSdrh ** occurs after the nEq quality constraints. 7336f82e85aSdrh ** 7346f82e85aSdrh ** This routine allocates a range of nEq+nExtraReg memory cells and returns 7356f82e85aSdrh ** the index of the first memory cell in that range. The code that 7366f82e85aSdrh ** calls this routine will use that memory range to store keys for 7376f82e85aSdrh ** start and termination conditions of the loop. 7386f82e85aSdrh ** key value of the loop. If one or more IN operators appear, then 7396f82e85aSdrh ** this routine allocates an additional nEq memory cells for internal 7406f82e85aSdrh ** use. 7416f82e85aSdrh ** 7426f82e85aSdrh ** Before returning, *pzAff is set to point to a buffer containing a 7436f82e85aSdrh ** copy of the column affinity string of the index allocated using 7446f82e85aSdrh ** sqlite3DbMalloc(). Except, entries in the copy of the string associated 7456f82e85aSdrh ** with equality constraints that use BLOB or NONE affinity are set to 7466f82e85aSdrh ** SQLITE_AFF_BLOB. This is to deal with SQL such as the following: 7476f82e85aSdrh ** 7486f82e85aSdrh ** CREATE TABLE t1(a TEXT PRIMARY KEY, b); 7496f82e85aSdrh ** SELECT ... FROM t1 AS t2, t1 WHERE t1.a = t2.b; 7506f82e85aSdrh ** 7516f82e85aSdrh ** In the example above, the index on t1(a) has TEXT affinity. But since 7526f82e85aSdrh ** the right hand side of the equality constraint (t2.b) has BLOB/NONE affinity, 7536f82e85aSdrh ** no conversion should be attempted before using a t2.b value as part of 7546f82e85aSdrh ** a key to search the index. Hence the first byte in the returned affinity 7556f82e85aSdrh ** string in this example would be set to SQLITE_AFF_BLOB. 7566f82e85aSdrh */ 7576f82e85aSdrh static int codeAllEqualityTerms( 7586f82e85aSdrh Parse *pParse, /* Parsing context */ 7596f82e85aSdrh WhereLevel *pLevel, /* Which nested loop of the FROM we are coding */ 7606f82e85aSdrh int bRev, /* Reverse the order of IN operators */ 7616f82e85aSdrh int nExtraReg, /* Number of extra registers to allocate */ 7626f82e85aSdrh char **pzAff /* OUT: Set to point to affinity string */ 7636f82e85aSdrh ){ 7646f82e85aSdrh u16 nEq; /* The number of == or IN constraints to code */ 7656f82e85aSdrh u16 nSkip; /* Number of left-most columns to skip */ 7666f82e85aSdrh Vdbe *v = pParse->pVdbe; /* The vm under construction */ 7676f82e85aSdrh Index *pIdx; /* The index being used for this loop */ 7686f82e85aSdrh WhereTerm *pTerm; /* A single constraint term */ 7696f82e85aSdrh WhereLoop *pLoop; /* The WhereLoop object */ 7706f82e85aSdrh int j; /* Loop counter */ 7716f82e85aSdrh int regBase; /* Base register */ 7726f82e85aSdrh int nReg; /* Number of registers to allocate */ 7736f82e85aSdrh char *zAff; /* Affinity string to return */ 7746f82e85aSdrh 7756f82e85aSdrh /* This module is only called on query plans that use an index. */ 7766f82e85aSdrh pLoop = pLevel->pWLoop; 7776f82e85aSdrh assert( (pLoop->wsFlags & WHERE_VIRTUALTABLE)==0 ); 7786f82e85aSdrh nEq = pLoop->u.btree.nEq; 7796f82e85aSdrh nSkip = pLoop->nSkip; 7806f82e85aSdrh pIdx = pLoop->u.btree.pIndex; 7816f82e85aSdrh assert( pIdx!=0 ); 7826f82e85aSdrh 7836f82e85aSdrh /* Figure out how many memory cells we will need then allocate them. 7846f82e85aSdrh */ 7856f82e85aSdrh regBase = pParse->nMem + 1; 7866f82e85aSdrh nReg = pLoop->u.btree.nEq + nExtraReg; 7876f82e85aSdrh pParse->nMem += nReg; 7886f82e85aSdrh 789e9107698Sdrh zAff = sqlite3DbStrDup(pParse->db,sqlite3IndexAffinityStr(pParse->db,pIdx)); 7904df86af3Sdrh assert( zAff!=0 || pParse->db->mallocFailed ); 7916f82e85aSdrh 7926f82e85aSdrh if( nSkip ){ 7936f82e85aSdrh int iIdxCur = pLevel->iIdxCur; 79431536304Sdrh sqlite3VdbeAddOp3(v, OP_Null, 0, regBase, regBase+nSkip-1); 7956f82e85aSdrh sqlite3VdbeAddOp1(v, (bRev?OP_Last:OP_Rewind), iIdxCur); 7966f82e85aSdrh VdbeCoverageIf(v, bRev==0); 7976f82e85aSdrh VdbeCoverageIf(v, bRev!=0); 7986f82e85aSdrh VdbeComment((v, "begin skip-scan on %s", pIdx->zName)); 7996f82e85aSdrh j = sqlite3VdbeAddOp0(v, OP_Goto); 8006f82e85aSdrh pLevel->addrSkip = sqlite3VdbeAddOp4Int(v, (bRev?OP_SeekLT:OP_SeekGT), 8016f82e85aSdrh iIdxCur, 0, regBase, nSkip); 8026f82e85aSdrh VdbeCoverageIf(v, bRev==0); 8036f82e85aSdrh VdbeCoverageIf(v, bRev!=0); 8046f82e85aSdrh sqlite3VdbeJumpHere(v, j); 8056f82e85aSdrh for(j=0; j<nSkip; j++){ 8066f82e85aSdrh sqlite3VdbeAddOp3(v, OP_Column, iIdxCur, j, regBase+j); 8074b92f98cSdrh testcase( pIdx->aiColumn[j]==XN_EXPR ); 808e63e8a6cSdrh VdbeComment((v, "%s", explainIndexColumnName(pIdx, j))); 8096f82e85aSdrh } 8106f82e85aSdrh } 8116f82e85aSdrh 8126f82e85aSdrh /* Evaluate the equality constraints 8136f82e85aSdrh */ 8146f82e85aSdrh assert( zAff==0 || (int)strlen(zAff)>=nEq ); 8156f82e85aSdrh for(j=nSkip; j<nEq; j++){ 8166f82e85aSdrh int r1; 8176f82e85aSdrh pTerm = pLoop->aLTerm[j]; 8186f82e85aSdrh assert( pTerm!=0 ); 8196f82e85aSdrh /* The following testcase is true for indices with redundant columns. 8206f82e85aSdrh ** Ex: CREATE INDEX i1 ON t1(a,b,a); SELECT * FROM t1 WHERE a=0 AND b=0; */ 8216f82e85aSdrh testcase( (pTerm->wtFlags & TERM_CODED)!=0 ); 8226f82e85aSdrh testcase( pTerm->wtFlags & TERM_VIRTUAL ); 8236f82e85aSdrh r1 = codeEqualityTerm(pParse, pTerm, pLevel, j, bRev, regBase+j); 8246f82e85aSdrh if( r1!=regBase+j ){ 8256f82e85aSdrh if( nReg==1 ){ 8266f82e85aSdrh sqlite3ReleaseTempReg(pParse, regBase); 8276f82e85aSdrh regBase = r1; 8286f82e85aSdrh }else{ 829e9de6520Sdrh sqlite3VdbeAddOp2(v, OP_Copy, r1, regBase+j); 8306f82e85aSdrh } 8316f82e85aSdrh } 83227189603Sdan if( pTerm->eOperator & WO_IN ){ 83327189603Sdan if( pTerm->pExpr->flags & EP_xIsSelect ){ 8341c12657fSdan /* No affinity ever needs to be (or should be) applied to a value 8351c12657fSdan ** from the RHS of an "? IN (SELECT ...)" expression. The 8361c12657fSdan ** sqlite3FindInIndex() routine has already ensured that the 8371c12657fSdan ** affinity of the comparison has been applied to the value. */ 838aaf8a064Sdrh if( zAff ) zAff[j] = SQLITE_AFF_BLOB; 83927189603Sdan } 840c097e122Sdrh }else if( (pTerm->eOperator & WO_ISNULL)==0 ){ 8411c12657fSdan Expr *pRight = pTerm->pExpr->pRight; 8426f82e85aSdrh if( (pTerm->wtFlags & TERM_IS)==0 && sqlite3ExprCanBeNull(pRight) ){ 8436f82e85aSdrh sqlite3VdbeAddOp2(v, OP_IsNull, regBase+j, pLevel->addrBrk); 8446f82e85aSdrh VdbeCoverage(v); 8456f82e85aSdrh } 8465e1a7dedSdrh if( pParse->db->mallocFailed==0 && pParse->nErr==0 ){ 8476f82e85aSdrh if( sqlite3CompareAffinity(pRight, zAff[j])==SQLITE_AFF_BLOB ){ 8486f82e85aSdrh zAff[j] = SQLITE_AFF_BLOB; 8496f82e85aSdrh } 8506f82e85aSdrh if( sqlite3ExprNeedsNoAffinityChange(pRight, zAff[j]) ){ 8516f82e85aSdrh zAff[j] = SQLITE_AFF_BLOB; 8526f82e85aSdrh } 8536f82e85aSdrh } 8546f82e85aSdrh } 8556f82e85aSdrh } 8566f82e85aSdrh *pzAff = zAff; 8576f82e85aSdrh return regBase; 8586f82e85aSdrh } 8596f82e85aSdrh 86041d2e66eSdrh #ifndef SQLITE_LIKE_DOESNT_MATCH_BLOBS 8616f82e85aSdrh /* 86244aebff2Sdrh ** If the most recently coded instruction is a constant range constraint 86344aebff2Sdrh ** (a string literal) that originated from the LIKE optimization, then 86444aebff2Sdrh ** set P3 and P5 on the OP_String opcode so that the string will be cast 86544aebff2Sdrh ** to a BLOB at appropriate times. 8666f82e85aSdrh ** 8676f82e85aSdrh ** The LIKE optimization trys to evaluate "x LIKE 'abc%'" as a range 8686f82e85aSdrh ** expression: "x>='ABC' AND x<'abd'". But this requires that the range 8696f82e85aSdrh ** scan loop run twice, once for strings and a second time for BLOBs. 8706f82e85aSdrh ** The OP_String opcodes on the second pass convert the upper and lower 871e234cfd1Smistachkin ** bound string constants to blobs. This routine makes the necessary changes 8726f82e85aSdrh ** to the OP_String opcodes for that to happen. 87341d2e66eSdrh ** 87441d2e66eSdrh ** Except, of course, if SQLITE_LIKE_DOESNT_MATCH_BLOBS is defined, then 87541d2e66eSdrh ** only the one pass through the string space is required, so this routine 87641d2e66eSdrh ** becomes a no-op. 8776f82e85aSdrh */ 8786f82e85aSdrh static void whereLikeOptimizationStringFixup( 8796f82e85aSdrh Vdbe *v, /* prepared statement under construction */ 8806f82e85aSdrh WhereLevel *pLevel, /* The loop that contains the LIKE operator */ 8816f82e85aSdrh WhereTerm *pTerm /* The upper or lower bound just coded */ 8826f82e85aSdrh ){ 8836f82e85aSdrh if( pTerm->wtFlags & TERM_LIKEOPT ){ 8846f82e85aSdrh VdbeOp *pOp; 8856f82e85aSdrh assert( pLevel->iLikeRepCntr>0 ); 8866f82e85aSdrh pOp = sqlite3VdbeGetOp(v, -1); 8876f82e85aSdrh assert( pOp!=0 ); 8886f82e85aSdrh assert( pOp->opcode==OP_String8 8896f82e85aSdrh || pTerm->pWC->pWInfo->pParse->db->mallocFailed ); 89044aebff2Sdrh pOp->p3 = (int)(pLevel->iLikeRepCntr>>1); /* Register holding counter */ 89144aebff2Sdrh pOp->p5 = (u8)(pLevel->iLikeRepCntr&1); /* ASC or DESC */ 8926f82e85aSdrh } 8936f82e85aSdrh } 89441d2e66eSdrh #else 89541d2e66eSdrh # define whereLikeOptimizationStringFixup(A,B,C) 89641d2e66eSdrh #endif 8976f82e85aSdrh 898bec2476aSdrh #ifdef SQLITE_ENABLE_CURSOR_HINTS 8992f2b0278Sdrh /* 9002f2b0278Sdrh ** Information is passed from codeCursorHint() down to individual nodes of 9012f2b0278Sdrh ** the expression tree (by sqlite3WalkExpr()) using an instance of this 9022f2b0278Sdrh ** structure. 9032f2b0278Sdrh */ 9042f2b0278Sdrh struct CCurHint { 9052f2b0278Sdrh int iTabCur; /* Cursor for the main table */ 9062f2b0278Sdrh int iIdxCur; /* Cursor for the index, if pIdx!=0. Unused otherwise */ 9072f2b0278Sdrh Index *pIdx; /* The index used to access the table */ 9082f2b0278Sdrh }; 9092f2b0278Sdrh 9102f2b0278Sdrh /* 9112f2b0278Sdrh ** This function is called for every node of an expression that is a candidate 9122f2b0278Sdrh ** for a cursor hint on an index cursor. For TK_COLUMN nodes that reference 9132f2b0278Sdrh ** the table CCurHint.iTabCur, verify that the same column can be 9142f2b0278Sdrh ** accessed through the index. If it cannot, then set pWalker->eCode to 1. 9152f2b0278Sdrh */ 9162f2b0278Sdrh static int codeCursorHintCheckExpr(Walker *pWalker, Expr *pExpr){ 9172f2b0278Sdrh struct CCurHint *pHint = pWalker->u.pCCurHint; 9182f2b0278Sdrh assert( pHint->pIdx!=0 ); 9192f2b0278Sdrh if( pExpr->op==TK_COLUMN 9202f2b0278Sdrh && pExpr->iTable==pHint->iTabCur 921b9bcf7caSdrh && sqlite3TableColumnToIndex(pHint->pIdx, pExpr->iColumn)<0 9222f2b0278Sdrh ){ 9232f2b0278Sdrh pWalker->eCode = 1; 9242f2b0278Sdrh } 9252f2b0278Sdrh return WRC_Continue; 9262f2b0278Sdrh } 9272f2b0278Sdrh 928e6912fd8Sdan /* 929e6912fd8Sdan ** Test whether or not expression pExpr, which was part of a WHERE clause, 930e6912fd8Sdan ** should be included in the cursor-hint for a table that is on the rhs 931e6912fd8Sdan ** of a LEFT JOIN. Set Walker.eCode to non-zero before returning if the 932e6912fd8Sdan ** expression is not suitable. 933e6912fd8Sdan ** 934e6912fd8Sdan ** An expression is unsuitable if it might evaluate to non NULL even if 935e6912fd8Sdan ** a TK_COLUMN node that does affect the value of the expression is set 936e6912fd8Sdan ** to NULL. For example: 937e6912fd8Sdan ** 938e6912fd8Sdan ** col IS NULL 939e6912fd8Sdan ** col IS NOT NULL 940e6912fd8Sdan ** coalesce(col, 1) 941e6912fd8Sdan ** CASE WHEN col THEN 0 ELSE 1 END 942e6912fd8Sdan */ 943e6912fd8Sdan static int codeCursorHintIsOrFunction(Walker *pWalker, Expr *pExpr){ 9442b693d63Sdan if( pExpr->op==TK_IS 945e6912fd8Sdan || pExpr->op==TK_ISNULL || pExpr->op==TK_ISNOT 946e6912fd8Sdan || pExpr->op==TK_NOTNULL || pExpr->op==TK_CASE 947e6912fd8Sdan ){ 948e6912fd8Sdan pWalker->eCode = 1; 9492b693d63Sdan }else if( pExpr->op==TK_FUNCTION ){ 9502b693d63Sdan int d1; 9511d42ea71Sdrh char d2[4]; 9522b693d63Sdan if( 0==sqlite3IsLikeFunction(pWalker->pParse->db, pExpr, &d1, d2) ){ 9532b693d63Sdan pWalker->eCode = 1; 954e6912fd8Sdan } 9552b693d63Sdan } 9562b693d63Sdan 957e6912fd8Sdan return WRC_Continue; 958e6912fd8Sdan } 959e6912fd8Sdan 960bec2476aSdrh 961bec2476aSdrh /* 962bec2476aSdrh ** This function is called on every node of an expression tree used as an 963bec2476aSdrh ** argument to the OP_CursorHint instruction. If the node is a TK_COLUMN 9642f2b0278Sdrh ** that accesses any table other than the one identified by 9652f2b0278Sdrh ** CCurHint.iTabCur, then do the following: 966bec2476aSdrh ** 967bec2476aSdrh ** 1) allocate a register and code an OP_Column instruction to read 968bec2476aSdrh ** the specified column into the new register, and 969bec2476aSdrh ** 970bec2476aSdrh ** 2) transform the expression node to a TK_REGISTER node that reads 971bec2476aSdrh ** from the newly populated register. 9722f2b0278Sdrh ** 9732f2b0278Sdrh ** Also, if the node is a TK_COLUMN that does access the table idenified 9742f2b0278Sdrh ** by pCCurHint.iTabCur, and an index is being used (which we will 9752f2b0278Sdrh ** know because CCurHint.pIdx!=0) then transform the TK_COLUMN into 9762f2b0278Sdrh ** an access of the index rather than the original table. 977bec2476aSdrh */ 978bec2476aSdrh static int codeCursorHintFixExpr(Walker *pWalker, Expr *pExpr){ 979bec2476aSdrh int rc = WRC_Continue; 9802f2b0278Sdrh struct CCurHint *pHint = pWalker->u.pCCurHint; 981be312ae9Sdan if( pExpr->op==TK_COLUMN ){ 9822f2b0278Sdrh if( pExpr->iTable!=pHint->iTabCur ){ 983bec2476aSdrh int reg = ++pWalker->pParse->nMem; /* Register for column value */ 984e3e79213Sdan sqlite3ExprCode(pWalker->pParse, pExpr, reg); 985bec2476aSdrh pExpr->op = TK_REGISTER; 986bec2476aSdrh pExpr->iTable = reg; 9872f2b0278Sdrh }else if( pHint->pIdx!=0 ){ 9882f2b0278Sdrh pExpr->iTable = pHint->iIdxCur; 989b9bcf7caSdrh pExpr->iColumn = sqlite3TableColumnToIndex(pHint->pIdx, pExpr->iColumn); 9902f2b0278Sdrh assert( pExpr->iColumn>=0 ); 9912f2b0278Sdrh } 992bec2476aSdrh }else if( pExpr->op==TK_AGG_FUNCTION ){ 993bec2476aSdrh /* An aggregate function in the WHERE clause of a query means this must 994bec2476aSdrh ** be a correlated sub-query, and expression pExpr is an aggregate from 995bec2476aSdrh ** the parent context. Do not walk the function arguments in this case. 996bec2476aSdrh ** 997bec2476aSdrh ** todo: It should be possible to replace this node with a TK_REGISTER 998bec2476aSdrh ** expression, as the result of the expression must be stored in a 999bec2476aSdrh ** register at this point. The same holds for TK_AGG_COLUMN nodes. */ 1000bec2476aSdrh rc = WRC_Prune; 1001bec2476aSdrh } 1002bec2476aSdrh return rc; 1003bec2476aSdrh } 1004bec2476aSdrh 1005bec2476aSdrh /* 1006bec2476aSdrh ** Insert an OP_CursorHint instruction if it is appropriate to do so. 1007bec2476aSdrh */ 1008bec2476aSdrh static void codeCursorHint( 10097601294aSdrh SrcItem *pTabItem, /* FROM clause item */ 1010b413a546Sdrh WhereInfo *pWInfo, /* The where clause */ 1011b413a546Sdrh WhereLevel *pLevel, /* Which loop to provide hints for */ 1012b413a546Sdrh WhereTerm *pEndRange /* Hint this end-of-scan boundary term if not NULL */ 1013bec2476aSdrh ){ 1014bec2476aSdrh Parse *pParse = pWInfo->pParse; 1015bec2476aSdrh sqlite3 *db = pParse->db; 1016bec2476aSdrh Vdbe *v = pParse->pVdbe; 1017bec2476aSdrh Expr *pExpr = 0; 10182f2b0278Sdrh WhereLoop *pLoop = pLevel->pWLoop; 1019bec2476aSdrh int iCur; 1020bec2476aSdrh WhereClause *pWC; 1021bec2476aSdrh WhereTerm *pTerm; 1022b413a546Sdrh int i, j; 10232f2b0278Sdrh struct CCurHint sHint; 10242f2b0278Sdrh Walker sWalker; 1025bec2476aSdrh 1026bec2476aSdrh if( OptimizationDisabled(db, SQLITE_CursorHints) ) return; 10272f2b0278Sdrh iCur = pLevel->iTabCur; 10282f2b0278Sdrh assert( iCur==pWInfo->pTabList->a[pLevel->iFrom].iCursor ); 10292f2b0278Sdrh sHint.iTabCur = iCur; 10302f2b0278Sdrh sHint.iIdxCur = pLevel->iIdxCur; 10312f2b0278Sdrh sHint.pIdx = pLoop->u.btree.pIndex; 10322f2b0278Sdrh memset(&sWalker, 0, sizeof(sWalker)); 10332f2b0278Sdrh sWalker.pParse = pParse; 10342f2b0278Sdrh sWalker.u.pCCurHint = &sHint; 1035bec2476aSdrh pWC = &pWInfo->sWC; 1036bec2476aSdrh for(i=0; i<pWC->nTerm; i++){ 1037bec2476aSdrh pTerm = &pWC->a[i]; 1038bec2476aSdrh if( pTerm->wtFlags & (TERM_VIRTUAL|TERM_CODED) ) continue; 1039bec2476aSdrh if( pTerm->prereqAll & pLevel->notReady ) continue; 1040b324cf75Sdan 1041b324cf75Sdan /* Any terms specified as part of the ON(...) clause for any LEFT 1042b324cf75Sdan ** JOIN for which the current table is not the rhs are omitted 1043b324cf75Sdan ** from the cursor-hint. 1044b324cf75Sdan ** 1045e6912fd8Sdan ** If this table is the rhs of a LEFT JOIN, "IS" or "IS NULL" terms 1046e6912fd8Sdan ** that were specified as part of the WHERE clause must be excluded. 1047e6912fd8Sdan ** This is to address the following: 1048b324cf75Sdan ** 1049b324cf75Sdan ** SELECT ... t1 LEFT JOIN t2 ON (t1.a=t2.b) WHERE t2.c IS NULL; 1050b324cf75Sdan ** 1051e6912fd8Sdan ** Say there is a single row in t2 that matches (t1.a=t2.b), but its 1052e6912fd8Sdan ** t2.c values is not NULL. If the (t2.c IS NULL) constraint is 1053e6912fd8Sdan ** pushed down to the cursor, this row is filtered out, causing 1054e6912fd8Sdan ** SQLite to synthesize a row of NULL values. Which does match the 1055e6912fd8Sdan ** WHERE clause, and so the query returns a row. Which is incorrect. 1056e6912fd8Sdan ** 1057e6912fd8Sdan ** For the same reason, WHERE terms such as: 1058e6912fd8Sdan ** 1059e6912fd8Sdan ** WHERE 1 = (t2.c IS NULL) 1060e6912fd8Sdan ** 1061e6912fd8Sdan ** are also excluded. See codeCursorHintIsOrFunction() for details. 1062b324cf75Sdan */ 1063b324cf75Sdan if( pTabItem->fg.jointype & JT_LEFT ){ 1064e6912fd8Sdan Expr *pExpr = pTerm->pExpr; 1065e6912fd8Sdan if( !ExprHasProperty(pExpr, EP_FromJoin) 1066e6912fd8Sdan || pExpr->iRightJoinTable!=pTabItem->iCursor 1067b324cf75Sdan ){ 1068e6912fd8Sdan sWalker.eCode = 0; 1069e6912fd8Sdan sWalker.xExprCallback = codeCursorHintIsOrFunction; 1070e6912fd8Sdan sqlite3WalkExpr(&sWalker, pTerm->pExpr); 1071e6912fd8Sdan if( sWalker.eCode ) continue; 1072b324cf75Sdan } 1073b324cf75Sdan }else{ 1074bec2476aSdrh if( ExprHasProperty(pTerm->pExpr, EP_FromJoin) ) continue; 1075b324cf75Sdan } 1076b413a546Sdrh 1077b413a546Sdrh /* All terms in pWLoop->aLTerm[] except pEndRange are used to initialize 1078bcf40a7fSdrh ** the cursor. These terms are not needed as hints for a pure range 1079bcf40a7fSdrh ** scan (that has no == terms) so omit them. */ 1080bcf40a7fSdrh if( pLoop->u.btree.nEq==0 && pTerm!=pEndRange ){ 1081bcf40a7fSdrh for(j=0; j<pLoop->nLTerm && pLoop->aLTerm[j]!=pTerm; j++){} 1082bcf40a7fSdrh if( j<pLoop->nLTerm ) continue; 1083b413a546Sdrh } 1084b413a546Sdrh 1085b413a546Sdrh /* No subqueries or non-deterministic functions allowed */ 1086bec2476aSdrh if( sqlite3ExprContainsSubquery(pTerm->pExpr) ) continue; 1087b413a546Sdrh 1088b413a546Sdrh /* For an index scan, make sure referenced columns are actually in 1089b413a546Sdrh ** the index. */ 10902f2b0278Sdrh if( sHint.pIdx!=0 ){ 10912f2b0278Sdrh sWalker.eCode = 0; 10922f2b0278Sdrh sWalker.xExprCallback = codeCursorHintCheckExpr; 10932f2b0278Sdrh sqlite3WalkExpr(&sWalker, pTerm->pExpr); 10942f2b0278Sdrh if( sWalker.eCode ) continue; 10952f2b0278Sdrh } 1096b413a546Sdrh 1097b413a546Sdrh /* If we survive all prior tests, that means this term is worth hinting */ 1098d5c851c1Sdrh pExpr = sqlite3ExprAnd(pParse, pExpr, sqlite3ExprDup(db, pTerm->pExpr, 0)); 1099bec2476aSdrh } 1100bec2476aSdrh if( pExpr!=0 ){ 1101bec2476aSdrh sWalker.xExprCallback = codeCursorHintFixExpr; 1102bec2476aSdrh sqlite3WalkExpr(&sWalker, pExpr); 11032f2b0278Sdrh sqlite3VdbeAddOp4(v, OP_CursorHint, 11042f2b0278Sdrh (sHint.pIdx ? sHint.iIdxCur : sHint.iTabCur), 0, 0, 11052f2b0278Sdrh (const char*)pExpr, P4_EXPR); 1106bec2476aSdrh } 1107bec2476aSdrh } 1108bec2476aSdrh #else 1109b324cf75Sdan # define codeCursorHint(A,B,C,D) /* No-op */ 1110bec2476aSdrh #endif /* SQLITE_ENABLE_CURSOR_HINTS */ 11116f82e85aSdrh 11126f82e85aSdrh /* 1113de892d96Sdan ** Cursor iCur is open on an intkey b-tree (a table). Register iRowid contains 1114de892d96Sdan ** a rowid value just read from cursor iIdxCur, open on index pIdx. This 1115de892d96Sdan ** function generates code to do a deferred seek of cursor iCur to the 1116de892d96Sdan ** rowid stored in register iRowid. 1117de892d96Sdan ** 1118de892d96Sdan ** Normally, this is just: 1119de892d96Sdan ** 1120170ad68aSdrh ** OP_DeferredSeek $iCur $iRowid 1121de892d96Sdan ** 1122de892d96Sdan ** However, if the scan currently being coded is a branch of an OR-loop and 1123170ad68aSdrh ** the statement currently being coded is a SELECT, then P3 of OP_DeferredSeek 1124de892d96Sdan ** is set to iIdxCur and P4 is set to point to an array of integers 1125de892d96Sdan ** containing one entry for each column of the table cursor iCur is open 1126de892d96Sdan ** on. For each table column, if the column is the i'th column of the 1127de892d96Sdan ** index, then the corresponding array entry is set to (i+1). If the column 1128de892d96Sdan ** does not appear in the index at all, the array entry is set to 0. 1129de892d96Sdan */ 1130de892d96Sdan static void codeDeferredSeek( 1131de892d96Sdan WhereInfo *pWInfo, /* Where clause context */ 1132de892d96Sdan Index *pIdx, /* Index scan is using */ 1133de892d96Sdan int iCur, /* Cursor for IPK b-tree */ 1134de892d96Sdan int iIdxCur /* Index cursor */ 1135de892d96Sdan ){ 1136de892d96Sdan Parse *pParse = pWInfo->pParse; /* Parse context */ 1137de892d96Sdan Vdbe *v = pParse->pVdbe; /* Vdbe to generate code within */ 1138de892d96Sdan 1139de892d96Sdan assert( iIdxCur>0 ); 1140de892d96Sdan assert( pIdx->aiColumn[pIdx->nColumn-1]==-1 ); 1141de892d96Sdan 1142be3da241Sdrh pWInfo->bDeferredSeek = 1; 1143170ad68aSdrh sqlite3VdbeAddOp3(v, OP_DeferredSeek, iIdxCur, 0, iCur); 1144ce943bc8Sdrh if( (pWInfo->wctrlFlags & WHERE_OR_SUBCLAUSE) 1145cddb6ba0Sdan && DbMaskAllZero(sqlite3ParseToplevel(pParse)->writeMask) 1146de892d96Sdan ){ 1147de892d96Sdan int i; 1148de892d96Sdan Table *pTab = pIdx->pTable; 1149abc38158Sdrh u32 *ai = (u32*)sqlite3DbMallocZero(pParse->db, sizeof(u32)*(pTab->nCol+1)); 1150de892d96Sdan if( ai ){ 1151b1702026Sdrh ai[0] = pTab->nCol; 1152de892d96Sdan for(i=0; i<pIdx->nColumn-1; i++){ 11534fb24c82Sdrh int x1, x2; 1154de892d96Sdan assert( pIdx->aiColumn[i]<pTab->nCol ); 11554fb24c82Sdrh x1 = pIdx->aiColumn[i]; 11564fb24c82Sdrh x2 = sqlite3TableColumnToStorage(pTab, x1); 11574fb24c82Sdrh testcase( x1!=x2 ); 1158bde3a4f6Smistachkin if( x1>=0 ) ai[x2+1] = i+1; 1159de892d96Sdan } 1160de892d96Sdan sqlite3VdbeChangeP4(v, -1, (char*)ai, P4_INTARRAY); 1161de892d96Sdan } 1162de892d96Sdan } 1163de892d96Sdan } 1164de892d96Sdan 1165553168c7Sdan /* 1166553168c7Sdan ** If the expression passed as the second argument is a vector, generate 1167553168c7Sdan ** code to write the first nReg elements of the vector into an array 1168553168c7Sdan ** of registers starting with iReg. 1169553168c7Sdan ** 1170553168c7Sdan ** If the expression is not a vector, then nReg must be passed 1. In 1171553168c7Sdan ** this case, generate code to evaluate the expression and leave the 1172553168c7Sdan ** result in register iReg. 1173553168c7Sdan */ 117471c57db0Sdan static void codeExprOrVector(Parse *pParse, Expr *p, int iReg, int nReg){ 117571c57db0Sdan assert( nReg>0 ); 1176d03024d8Sdan if( p && sqlite3ExprIsVector(p) ){ 1177f9b2e05cSdan #ifndef SQLITE_OMIT_SUBQUERY 1178a4eeccdfSdrh if( ExprUseXSelect(p) ){ 1179f9b2e05cSdan Vdbe *v = pParse->pVdbe; 118085bcdce2Sdrh int iSelect; 118185bcdce2Sdrh assert( p->op==TK_SELECT ); 118285bcdce2Sdrh iSelect = sqlite3CodeSubselect(pParse, p); 1183f9b2e05cSdan sqlite3VdbeAddOp3(v, OP_Copy, iSelect, iReg, nReg-1); 1184f9b2e05cSdan }else 1185f9b2e05cSdan #endif 1186f9b2e05cSdan { 118771c57db0Sdan int i; 1188a4eeccdfSdrh const ExprList *pList; 1189a4eeccdfSdrh assert( ExprUseXList(p) ); 1190a4eeccdfSdrh pList = p->x.pList; 119171c57db0Sdan assert( nReg<=pList->nExpr ); 119271c57db0Sdan for(i=0; i<nReg; i++){ 119371c57db0Sdan sqlite3ExprCode(pParse, pList->a[i].pExpr, iReg+i); 119471c57db0Sdan } 119571c57db0Sdan } 119671c57db0Sdan }else{ 1197151446e7Sdan assert( nReg==1 || pParse->nErr ); 119871c57db0Sdan sqlite3ExprCode(pParse, p, iReg); 119971c57db0Sdan } 120071c57db0Sdan } 120171c57db0Sdan 1202eac5fc04Sdrh /* An instance of the IdxExprTrans object carries information about a 1203eac5fc04Sdrh ** mapping from an expression on table columns into a column in an index 1204eac5fc04Sdrh ** down through the Walker. 1205eac5fc04Sdrh */ 1206aca19e19Sdrh typedef struct IdxExprTrans { 1207aca19e19Sdrh Expr *pIdxExpr; /* The index expression */ 1208aca19e19Sdrh int iTabCur; /* The cursor of the corresponding table */ 1209aca19e19Sdrh int iIdxCur; /* The cursor for the index */ 1210aca19e19Sdrh int iIdxCol; /* The column for the index */ 1211c7476735Sdrh int iTabCol; /* The column for the table */ 121236e678bcSdrh WhereInfo *pWInfo; /* Complete WHERE clause information */ 121336e678bcSdrh sqlite3 *db; /* Database connection (for malloc()) */ 1214aca19e19Sdrh } IdxExprTrans; 1215aca19e19Sdrh 121636e678bcSdrh /* 121736e678bcSdrh ** Preserve pExpr on the WhereETrans list of the WhereInfo. 121836e678bcSdrh */ 121936e678bcSdrh static void preserveExpr(IdxExprTrans *pTrans, Expr *pExpr){ 122036e678bcSdrh WhereExprMod *pNew; 122136e678bcSdrh pNew = sqlite3DbMallocRaw(pTrans->db, sizeof(*pNew)); 122236e678bcSdrh if( pNew==0 ) return; 122336e678bcSdrh pNew->pNext = pTrans->pWInfo->pExprMods; 122436e678bcSdrh pTrans->pWInfo->pExprMods = pNew; 122536e678bcSdrh pNew->pExpr = pExpr; 122636e678bcSdrh memcpy(&pNew->orig, pExpr, sizeof(*pExpr)); 122736e678bcSdrh } 122836e678bcSdrh 1229eac5fc04Sdrh /* The walker node callback used to transform matching expressions into 1230eac5fc04Sdrh ** a reference to an index column for an index on an expression. 1231eac5fc04Sdrh ** 1232eac5fc04Sdrh ** If pExpr matches, then transform it into a reference to the index column 1233eac5fc04Sdrh ** that contains the value of pExpr. 1234eac5fc04Sdrh */ 1235aca19e19Sdrh static int whereIndexExprTransNode(Walker *p, Expr *pExpr){ 1236aca19e19Sdrh IdxExprTrans *pX = p->u.pIdxTrans; 12375aa550cfSdan if( sqlite3ExprCompare(0, pExpr, pX->pIdxExpr, pX->iTabCur)==0 ){ 123836e678bcSdrh preserveExpr(pX, pExpr); 1239b6ce71bdSdan pExpr->affExpr = sqlite3ExprAffinity(pExpr); 1240aca19e19Sdrh pExpr->op = TK_COLUMN; 1241aca19e19Sdrh pExpr->iTable = pX->iIdxCur; 1242aca19e19Sdrh pExpr->iColumn = pX->iIdxCol; 12436c1c85caSdrh testcase( ExprHasProperty(pExpr, EP_Skip) ); 12446c1c85caSdrh testcase( ExprHasProperty(pExpr, EP_Unlikely) ); 1245477572b9Sdrh ExprClearProperty(pExpr, EP_Skip|EP_Unlikely|EP_WinFunc|EP_Subrtn); 1246477572b9Sdrh pExpr->y.pTab = 0; 1247aca19e19Sdrh return WRC_Prune; 1248aca19e19Sdrh }else{ 1249aca19e19Sdrh return WRC_Continue; 1250aca19e19Sdrh } 1251aca19e19Sdrh } 1252aca19e19Sdrh 1253c7476735Sdrh #ifndef SQLITE_OMIT_GENERATED_COLUMNS 1254c7476735Sdrh /* A walker node callback that translates a column reference to a table 1255c7476735Sdrh ** into a corresponding column reference of an index. 1256c7476735Sdrh */ 1257c7476735Sdrh static int whereIndexExprTransColumn(Walker *p, Expr *pExpr){ 1258c7476735Sdrh if( pExpr->op==TK_COLUMN ){ 1259c7476735Sdrh IdxExprTrans *pX = p->u.pIdxTrans; 1260c7476735Sdrh if( pExpr->iTable==pX->iTabCur && pExpr->iColumn==pX->iTabCol ){ 1261477572b9Sdrh assert( ExprUseYTab(pExpr) && pExpr->y.pTab!=0 ); 126236e678bcSdrh preserveExpr(pX, pExpr); 126357f7ece7Sdrh pExpr->affExpr = sqlite3TableColumnAffinity(pExpr->y.pTab,pExpr->iColumn); 1264c7476735Sdrh pExpr->iTable = pX->iIdxCur; 1265c7476735Sdrh pExpr->iColumn = pX->iIdxCol; 12664485ac1aSdrh pExpr->y.pTab = 0; 1267c7476735Sdrh } 1268c7476735Sdrh } 1269c7476735Sdrh return WRC_Continue; 1270c7476735Sdrh } 1271c7476735Sdrh #endif /* SQLITE_OMIT_GENERATED_COLUMNS */ 1272c7476735Sdrh 1273aca19e19Sdrh /* 1274f49759bfSdrh ** For an indexes on expression X, locate every instance of expression X 1275f49759bfSdrh ** in pExpr and change that subexpression into a reference to the appropriate 1276f49759bfSdrh ** column of the index. 1277c7476735Sdrh ** 1278c7476735Sdrh ** 2019-10-24: Updated to also translate references to a VIRTUAL column in 1279c7476735Sdrh ** the table into references to the corresponding (stored) column of the 1280c7476735Sdrh ** index. 1281aca19e19Sdrh */ 1282aca19e19Sdrh static void whereIndexExprTrans( 1283aca19e19Sdrh Index *pIdx, /* The Index */ 1284aca19e19Sdrh int iTabCur, /* Cursor of the table that is being indexed */ 1285aca19e19Sdrh int iIdxCur, /* Cursor of the index itself */ 1286aca19e19Sdrh WhereInfo *pWInfo /* Transform expressions in this WHERE clause */ 1287aca19e19Sdrh ){ 1288aca19e19Sdrh int iIdxCol; /* Column number of the index */ 1289aca19e19Sdrh ExprList *aColExpr; /* Expressions that are indexed */ 1290c7476735Sdrh Table *pTab; 1291aca19e19Sdrh Walker w; 1292aca19e19Sdrh IdxExprTrans x; 1293aca19e19Sdrh aColExpr = pIdx->aColExpr; 1294c7476735Sdrh if( aColExpr==0 && !pIdx->bHasVCol ){ 1295c7476735Sdrh /* The index does not reference any expressions or virtual columns 1296c7476735Sdrh ** so no translations are needed. */ 1297c7476735Sdrh return; 1298c7476735Sdrh } 1299c7476735Sdrh pTab = pIdx->pTable; 1300aca19e19Sdrh memset(&w, 0, sizeof(w)); 1301aca19e19Sdrh w.u.pIdxTrans = &x; 1302aca19e19Sdrh x.iTabCur = iTabCur; 1303aca19e19Sdrh x.iIdxCur = iIdxCur; 130436e678bcSdrh x.pWInfo = pWInfo; 130536e678bcSdrh x.db = pWInfo->pParse->db; 1306c7476735Sdrh for(iIdxCol=0; iIdxCol<pIdx->nColumn; iIdxCol++){ 1307c7476735Sdrh i16 iRef = pIdx->aiColumn[iIdxCol]; 1308c7476735Sdrh if( iRef==XN_EXPR ){ 13097d4c94bcSdrh assert( aColExpr!=0 && aColExpr->a[iIdxCol].pExpr!=0 ); 1310aca19e19Sdrh x.pIdxExpr = aColExpr->a[iIdxCol].pExpr; 1311e86f3402Sdrh if( sqlite3ExprIsConstant(x.pIdxExpr) ) continue; 1312c7476735Sdrh w.xExprCallback = whereIndexExprTransNode; 1313c7476735Sdrh #ifndef SQLITE_OMIT_GENERATED_COLUMNS 1314ed0c3485Sdrh }else if( iRef>=0 1315ed0c3485Sdrh && (pTab->aCol[iRef].colFlags & COLFLAG_VIRTUAL)!=0 131665b40093Sdrh && ((pTab->aCol[iRef].colFlags & COLFLAG_HASCOLL)==0 131765b40093Sdrh || sqlite3StrICmp(sqlite3ColumnColl(&pTab->aCol[iRef]), 131865b40093Sdrh sqlite3StrBINARY)==0) 1319ed0c3485Sdrh ){ 1320ed0c3485Sdrh /* Check to see if there are direct references to generated columns 1321ed0c3485Sdrh ** that are contained in the index. Pulling the generated column 1322ed0c3485Sdrh ** out of the index is an optimization only - the main table is always 1323ed0c3485Sdrh ** available if the index cannot be used. To avoid unnecessary 1324ed0c3485Sdrh ** complication, omit this optimization if the collating sequence for 1325ed0c3485Sdrh ** the column is non-standard */ 1326c7476735Sdrh x.iTabCol = iRef; 1327c7476735Sdrh w.xExprCallback = whereIndexExprTransColumn; 1328c7476735Sdrh #endif /* SQLITE_OMIT_GENERATED_COLUMNS */ 1329c7476735Sdrh }else{ 1330c7476735Sdrh continue; 1331c7476735Sdrh } 1332c7476735Sdrh x.iIdxCol = iIdxCol; 1333aca19e19Sdrh sqlite3WalkExpr(&w, pWInfo->pWhere); 1334aca19e19Sdrh sqlite3WalkExprList(&w, pWInfo->pOrderBy); 1335aca19e19Sdrh sqlite3WalkExprList(&w, pWInfo->pResultSet); 1336aca19e19Sdrh } 1337aca19e19Sdrh } 1338aca19e19Sdrh 1339de892d96Sdan /* 1340610f11deSdrh ** The pTruth expression is always true because it is the WHERE clause 1341b531aa8fSdrh ** a partial index that is driving a query loop. Look through all of the 1342b531aa8fSdrh ** WHERE clause terms on the query, and if any of those terms must be 1343b531aa8fSdrh ** true because pTruth is true, then mark those WHERE clause terms as 1344b531aa8fSdrh ** coded. 1345b531aa8fSdrh */ 1346b531aa8fSdrh static void whereApplyPartialIndexConstraints( 1347b531aa8fSdrh Expr *pTruth, 1348b531aa8fSdrh int iTabCur, 1349b531aa8fSdrh WhereClause *pWC 1350b531aa8fSdrh ){ 1351b531aa8fSdrh int i; 1352b531aa8fSdrh WhereTerm *pTerm; 1353b531aa8fSdrh while( pTruth->op==TK_AND ){ 1354b531aa8fSdrh whereApplyPartialIndexConstraints(pTruth->pLeft, iTabCur, pWC); 1355b531aa8fSdrh pTruth = pTruth->pRight; 1356b531aa8fSdrh } 1357b531aa8fSdrh for(i=0, pTerm=pWC->a; i<pWC->nTerm; i++, pTerm++){ 1358b531aa8fSdrh Expr *pExpr; 1359b531aa8fSdrh if( pTerm->wtFlags & TERM_CODED ) continue; 1360b531aa8fSdrh pExpr = pTerm->pExpr; 1361b531aa8fSdrh if( sqlite3ExprCompare(0, pExpr, pTruth, iTabCur)==0 ){ 1362b531aa8fSdrh pTerm->wtFlags |= TERM_CODED; 1363b531aa8fSdrh } 1364b531aa8fSdrh } 1365b531aa8fSdrh } 1366b531aa8fSdrh 136735685d3eSdrh /* 13686ae49e67Sdrh ** This routine is called right after An OP_Filter has been generated and 13696ae49e67Sdrh ** before the corresponding index search has been performed. This routine 13706ae49e67Sdrh ** checks to see if there are additional Bloom filters in inner loops that 13716ae49e67Sdrh ** can be checked prior to doing the index lookup. If there are available 13726ae49e67Sdrh ** inner-loop Bloom filters, then evaluate those filters now, before the 13736ae49e67Sdrh ** index lookup. The idea is that a Bloom filter check is way faster than 13746ae49e67Sdrh ** an index lookup, and the Bloom filter might return false, meaning that 13756ae49e67Sdrh ** the index lookup can be skipped. 13766ae49e67Sdrh ** 13776ae49e67Sdrh ** We know that an inner loop uses a Bloom filter because it has the 13786ae49e67Sdrh ** WhereLevel.regFilter set. If an inner-loop Bloom filter is checked, 13796ae49e67Sdrh ** then clear the WhereLoeve.regFilter value to prevent the Bloom filter 13806ae49e67Sdrh ** from being checked a second time when the inner loop is evaluated. 138135685d3eSdrh */ 138235685d3eSdrh static SQLITE_NOINLINE void filterPullDown( 138335685d3eSdrh Parse *pParse, /* Parsing context */ 138435685d3eSdrh WhereInfo *pWInfo, /* Complete information about the WHERE clause */ 138535685d3eSdrh int iLevel, /* Which level of pWInfo->a[] should be coded */ 138635685d3eSdrh int addrNxt, /* Jump here to bypass inner loops */ 138735685d3eSdrh Bitmask notReady /* Loops that are not ready */ 138835685d3eSdrh ){ 138935685d3eSdrh while( ++iLevel < pWInfo->nLevel ){ 139035685d3eSdrh WhereLevel *pLevel = &pWInfo->a[iLevel]; 139135685d3eSdrh WhereLoop *pLoop = pLevel->pWLoop; 13926ae49e67Sdrh if( pLevel->regFilter==0 ) continue; 139335685d3eSdrh if( pLoop->prereq & notReady ) continue; 139435685d3eSdrh if( pLoop->wsFlags & WHERE_IPK ){ 139535685d3eSdrh WhereTerm *pTerm = pLoop->aLTerm[0]; 139635685d3eSdrh int r1, regRowid; 139735685d3eSdrh assert( pTerm!=0 ); 139835685d3eSdrh assert( pTerm->pExpr!=0 ); 139935685d3eSdrh testcase( pTerm->wtFlags & TERM_VIRTUAL ); 140035685d3eSdrh r1 = sqlite3GetTempReg(pParse); 140135685d3eSdrh regRowid = codeEqualityTerm(pParse, pTerm, pLevel, 0, 0, r1); 140235685d3eSdrh if( regRowid!=r1 ) sqlite3ReleaseTempReg(pParse, r1); 140335685d3eSdrh sqlite3VdbeAddOp4Int(pParse->pVdbe, OP_Filter, pLevel->regFilter, 140435685d3eSdrh addrNxt, regRowid, 1); 140535685d3eSdrh VdbeCoverage(pParse->pVdbe); 140635685d3eSdrh }else{ 140735685d3eSdrh u16 nEq = pLoop->u.btree.nEq; 140835685d3eSdrh int r1; 140935685d3eSdrh char *zStartAff; 141035685d3eSdrh 141135685d3eSdrh assert( pLoop->wsFlags & WHERE_INDEXED ); 141235685d3eSdrh r1 = codeAllEqualityTerms(pParse,pLevel,0,0,&zStartAff); 141335685d3eSdrh codeApplyAffinity(pParse, r1, nEq, zStartAff); 141435685d3eSdrh sqlite3DbFree(pParse->db, zStartAff); 141535685d3eSdrh sqlite3VdbeAddOp4Int(pParse->pVdbe, OP_Filter, pLevel->regFilter, 141635685d3eSdrh addrNxt, r1, nEq); 141735685d3eSdrh VdbeCoverage(pParse->pVdbe); 141835685d3eSdrh } 14196ae49e67Sdrh pLevel->regFilter = 0; 142035685d3eSdrh } 142135685d3eSdrh } 142235685d3eSdrh 1423b531aa8fSdrh /* 14246f82e85aSdrh ** Generate code for the start of the iLevel-th loop in the WHERE clause 14256f82e85aSdrh ** implementation described by pWInfo. 14266f82e85aSdrh */ 14276f82e85aSdrh Bitmask sqlite3WhereCodeOneLoopStart( 142847df8a2cSdrh Parse *pParse, /* Parsing context */ 142947df8a2cSdrh Vdbe *v, /* Prepared statement under construction */ 14306f82e85aSdrh WhereInfo *pWInfo, /* Complete information about the WHERE clause */ 14316f82e85aSdrh int iLevel, /* Which level of pWInfo->a[] should be coded */ 143247df8a2cSdrh WhereLevel *pLevel, /* The current level pointer */ 14336f82e85aSdrh Bitmask notReady /* Which tables are currently available */ 14346f82e85aSdrh ){ 14356f82e85aSdrh int j, k; /* Loop counters */ 14366f82e85aSdrh int iCur; /* The VDBE cursor for the table */ 14376f82e85aSdrh int addrNxt; /* Where to jump to continue with the next IN case */ 14386f82e85aSdrh int bRev; /* True if we need to scan in reverse order */ 14396f82e85aSdrh WhereLoop *pLoop; /* The WhereLoop object being coded */ 14406f82e85aSdrh WhereClause *pWC; /* Decomposition of the entire WHERE clause */ 14416f82e85aSdrh WhereTerm *pTerm; /* A WHERE clause term */ 14426f82e85aSdrh sqlite3 *db; /* Database connection */ 14437601294aSdrh SrcItem *pTabItem; /* FROM clause term being coded */ 14446f82e85aSdrh int addrBrk; /* Jump here to break out of the loop */ 14453a3b420aSdrh int addrHalt; /* addrBrk for the outermost loop */ 14466f82e85aSdrh int addrCont; /* Jump here to continue with next cycle */ 14476f82e85aSdrh int iRowidReg = 0; /* Rowid is stored in this register, if not zero */ 14486f82e85aSdrh int iReleaseReg = 0; /* Temp register to free before returning */ 14496f654a40Sdan Index *pIdx = 0; /* Index used by loop (if any) */ 1450ebc63013Sdan int iLoop; /* Iteration of constraint generator loop */ 14516f82e85aSdrh 14526f82e85aSdrh pWC = &pWInfo->sWC; 14536f82e85aSdrh db = pParse->db; 14546f82e85aSdrh pLoop = pLevel->pWLoop; 14556f82e85aSdrh pTabItem = &pWInfo->pTabList->a[pLevel->iFrom]; 14566f82e85aSdrh iCur = pTabItem->iCursor; 14576f82e85aSdrh pLevel->notReady = notReady & ~sqlite3WhereGetMask(&pWInfo->sMaskSet, iCur); 14586f82e85aSdrh bRev = (pWInfo->revMask>>iLevel)&1; 14596f82e85aSdrh VdbeModuleComment((v, "Begin WHERE-loop%d: %s",iLevel,pTabItem->pTab->zName)); 1460118efd16Sdrh #if WHERETRACE_ENABLED /* 0x20800 */ 1461118efd16Sdrh if( sqlite3WhereTrace & 0x800 ){ 1462a4b2df5cSdrh sqlite3DebugPrintf("Coding level %d of %d: notReady=%llx iFrom=%d\n", 1463a4b2df5cSdrh iLevel, pWInfo->nLevel, (u64)notReady, pLevel->iFrom); 1464118efd16Sdrh sqlite3WhereLoopPrint(pLoop, pWC); 1465118efd16Sdrh } 1466118efd16Sdrh if( sqlite3WhereTrace & 0x20000 ){ 1467f1bb31e2Sdrh if( iLevel==0 ){ 1468f1bb31e2Sdrh sqlite3DebugPrintf("WHERE clause being coded:\n"); 1469f1bb31e2Sdrh sqlite3TreeViewExpr(0, pWInfo->pWhere, 0); 1470f1bb31e2Sdrh } 1471f1bb31e2Sdrh sqlite3DebugPrintf("All WHERE-clause terms before coding:\n"); 1472118efd16Sdrh sqlite3WhereClausePrint(pWC); 1473118efd16Sdrh } 1474118efd16Sdrh #endif 14756f82e85aSdrh 14766f82e85aSdrh /* Create labels for the "break" and "continue" instructions 14776f82e85aSdrh ** for the current loop. Jump to addrBrk to break out of a loop. 14786f82e85aSdrh ** Jump to cont to go immediately to the next iteration of the 14796f82e85aSdrh ** loop. 14806f82e85aSdrh ** 14816f82e85aSdrh ** When there is an IN operator, we also have a "addrNxt" label that 14826f82e85aSdrh ** means to continue with the next IN value combination. When 14836f82e85aSdrh ** there are no IN operators in the constraints, the "addrNxt" label 14846f82e85aSdrh ** is the same as "addrBrk". 14856f82e85aSdrh */ 1486ec4ccdbcSdrh addrBrk = pLevel->addrBrk = pLevel->addrNxt = sqlite3VdbeMakeLabel(pParse); 1487ec4ccdbcSdrh addrCont = pLevel->addrCont = sqlite3VdbeMakeLabel(pParse); 14886f82e85aSdrh 14896f82e85aSdrh /* If this is the right table of a LEFT OUTER JOIN, allocate and 14906f82e85aSdrh ** initialize a memory cell that records if this table matches any 14916f82e85aSdrh ** row of the left table of the join. 14926f82e85aSdrh */ 1493820fcd2cSdan assert( (pWInfo->wctrlFlags & WHERE_OR_SUBCLAUSE) 1494820fcd2cSdan || pLevel->iFrom>0 || (pTabItem[0].fg.jointype & JT_LEFT)==0 1495820fcd2cSdan ); 14968a48b9c0Sdrh if( pLevel->iFrom>0 && (pTabItem[0].fg.jointype & JT_LEFT)!=0 ){ 14976f82e85aSdrh pLevel->iLeftJoin = ++pParse->nMem; 14986f82e85aSdrh sqlite3VdbeAddOp2(v, OP_Integer, 0, pLevel->iLeftJoin); 14996f82e85aSdrh VdbeComment((v, "init LEFT JOIN no-match flag")); 15006f82e85aSdrh } 15016f82e85aSdrh 15023a3b420aSdrh /* Compute a safe address to jump to if we discover that the table for 15033a3b420aSdrh ** this loop is empty and can never contribute content. */ 15043a3b420aSdrh for(j=iLevel; j>0 && pWInfo->a[j].iLeftJoin==0; j--){} 15053a3b420aSdrh addrHalt = pWInfo->a[j].addrBrk; 15063a3b420aSdrh 15076f82e85aSdrh /* Special case of a FROM clause subquery implemented as a co-routine */ 15088a48b9c0Sdrh if( pTabItem->fg.viaCoroutine ){ 15096f82e85aSdrh int regYield = pTabItem->regReturn; 15106f82e85aSdrh sqlite3VdbeAddOp3(v, OP_InitCoroutine, regYield, 0, pTabItem->addrFillSub); 15116f82e85aSdrh pLevel->p2 = sqlite3VdbeAddOp2(v, OP_Yield, regYield, addrBrk); 15126f82e85aSdrh VdbeCoverage(v); 1513fef37760Sdrh VdbeComment((v, "next row of %s", pTabItem->pTab->zName)); 15146f82e85aSdrh pLevel->op = OP_Goto; 15156f82e85aSdrh }else 15166f82e85aSdrh 15176f82e85aSdrh #ifndef SQLITE_OMIT_VIRTUALTABLE 15186f82e85aSdrh if( (pLoop->wsFlags & WHERE_VIRTUALTABLE)!=0 ){ 15196f82e85aSdrh /* Case 1: The table is a virtual-table. Use the VFilter and VNext 15206f82e85aSdrh ** to access the data. 15216f82e85aSdrh */ 15226f82e85aSdrh int iReg; /* P3 Value for OP_VFilter */ 15236f82e85aSdrh int addrNotFound; 15246f82e85aSdrh int nConstraint = pLoop->nLTerm; 1525dbc49161Sdrh int iIn; /* Counter for IN constraints */ 15266f82e85aSdrh 15276f82e85aSdrh iReg = sqlite3GetTempRange(pParse, nConstraint+2); 15286f82e85aSdrh addrNotFound = pLevel->addrBrk; 15296f82e85aSdrh for(j=0; j<nConstraint; j++){ 15306f82e85aSdrh int iTarget = iReg+j+2; 15316f82e85aSdrh pTerm = pLoop->aLTerm[j]; 1532599d5764Sdrh if( NEVER(pTerm==0) ) continue; 15336f82e85aSdrh if( pTerm->eOperator & WO_IN ){ 15346f82e85aSdrh codeEqualityTerm(pParse, pTerm, pLevel, j, bRev, iTarget); 15356f82e85aSdrh addrNotFound = pLevel->addrNxt; 15366f82e85aSdrh }else{ 15376256c1c2Sdan Expr *pRight = pTerm->pExpr->pRight; 15386256c1c2Sdan codeExprOrVector(pParse, pRight, iTarget, 1); 15396256c1c2Sdan } 15406f82e85aSdrh } 15416f82e85aSdrh sqlite3VdbeAddOp2(v, OP_Integer, pLoop->u.vtab.idxNum, iReg); 15426f82e85aSdrh sqlite3VdbeAddOp2(v, OP_Integer, nConstraint, iReg+1); 15436f82e85aSdrh sqlite3VdbeAddOp4(v, OP_VFilter, iCur, addrNotFound, iReg, 15446f82e85aSdrh pLoop->u.vtab.idxStr, 1545861b1307Sdrh pLoop->u.vtab.needFree ? P4_DYNAMIC : P4_STATIC); 15466f82e85aSdrh VdbeCoverage(v); 15476f82e85aSdrh pLoop->u.vtab.needFree = 0; 1548bc2e9514Sdrh /* An OOM inside of AddOp4(OP_VFilter) instruction above might have freed 1549bc2e9514Sdrh ** the u.vtab.idxStr. NULL it out to prevent a use-after-free */ 1550bc2e9514Sdrh if( db->mallocFailed ) pLoop->u.vtab.idxStr = 0; 15516f82e85aSdrh pLevel->p1 = iCur; 1552354474adSdan pLevel->op = pWInfo->eOnePass ? OP_Noop : OP_VNext; 15536f82e85aSdrh pLevel->p2 = sqlite3VdbeCurrentAddr(v); 15540475629dSdrh assert( (pLoop->wsFlags & WHERE_MULTI_OR)==0 ); 15550475629dSdrh if( pLoop->wsFlags & WHERE_IN_ABLE ){ 1556dbc49161Sdrh iIn = pLevel->u.in.nIn; 15570475629dSdrh }else{ 15580475629dSdrh iIn = 0; 15590475629dSdrh } 1560dbc49161Sdrh for(j=nConstraint-1; j>=0; j--){ 1561dbc49161Sdrh pTerm = pLoop->aLTerm[j]; 156268748ec5Sdrh if( (pTerm->eOperator & WO_IN)!=0 ) iIn--; 1563dbc49161Sdrh if( j<16 && (pLoop->u.vtab.omitMask>>j)&1 ){ 1564dbc49161Sdrh disableTerm(pLevel, pTerm); 15654ec3e820Sdrh }else if( (pTerm->eOperator & WO_IN)!=0 15664ec3e820Sdrh && sqlite3ExprVectorSize(pTerm->pExpr->pLeft)==1 15672d82269cSdan ){ 1568dbc49161Sdrh Expr *pCompare; /* The comparison operator */ 1569dbc49161Sdrh Expr *pRight; /* RHS of the comparison */ 1570dbc49161Sdrh VdbeOp *pOp; /* Opcode to access the value of the IN constraint */ 1571dbc49161Sdrh 1572dbc49161Sdrh /* Reload the constraint value into reg[iReg+j+2]. The same value 1573dbc49161Sdrh ** was loaded into the same register prior to the OP_VFilter, but 1574dbc49161Sdrh ** the xFilter implementation might have changed the datatype or 1575dbc49161Sdrh ** encoding of the value in the register, so it *must* be reloaded. */ 1576dbc49161Sdrh assert( pLevel->u.in.aInLoop!=0 || db->mallocFailed ); 1577fb826b8cSdrh if( !db->mallocFailed ){ 157868748ec5Sdrh assert( iIn>=0 && iIn<pLevel->u.in.nIn ); 157968748ec5Sdrh pOp = sqlite3VdbeGetOp(v, pLevel->u.in.aInLoop[iIn].addrInTop); 1580dbc49161Sdrh assert( pOp->opcode==OP_Column || pOp->opcode==OP_Rowid ); 1581dbc49161Sdrh assert( pOp->opcode!=OP_Column || pOp->p3==iReg+j+2 ); 1582dbc49161Sdrh assert( pOp->opcode!=OP_Rowid || pOp->p2==iReg+j+2 ); 1583dbc49161Sdrh testcase( pOp->opcode==OP_Rowid ); 1584dbc49161Sdrh sqlite3VdbeAddOp3(v, pOp->opcode, pOp->p1, pOp->p2, pOp->p3); 1585dbc49161Sdrh } 1586dbc49161Sdrh 1587dbc49161Sdrh /* Generate code that will continue to the next row if 1588dbc49161Sdrh ** the IN constraint is not satisfied */ 1589abfd35eaSdrh pCompare = sqlite3PExpr(pParse, TK_EQ, 0, 0); 1590dbc49161Sdrh assert( pCompare!=0 || db->mallocFailed ); 1591dbc49161Sdrh if( pCompare ){ 1592dbc49161Sdrh pCompare->pLeft = pTerm->pExpr->pLeft; 1593dbc49161Sdrh pCompare->pRight = pRight = sqlite3Expr(db, TK_REGISTER, 0); 1594237b2b71Sdrh if( pRight ){ 1595237b2b71Sdrh pRight->iTable = iReg+j+2; 1596d03f77aeSdan sqlite3ExprIfFalse( 1597d03f77aeSdan pParse, pCompare, pLevel->addrCont, SQLITE_JUMPIFNULL 1598d03f77aeSdan ); 1599237b2b71Sdrh } 1600dbc49161Sdrh pCompare->pLeft = 0; 1601dbc49161Sdrh sqlite3ExprDelete(db, pCompare); 1602dbc49161Sdrh } 1603dbc49161Sdrh } 1604dbc49161Sdrh } 160568748ec5Sdrh assert( iIn==0 || db->mallocFailed ); 1606ba26faa3Sdrh /* These registers need to be preserved in case there is an IN operator 1607ba26faa3Sdrh ** loop. So we could deallocate the registers here (and potentially 1608ba26faa3Sdrh ** reuse them later) if (pLoop->wsFlags & WHERE_IN_ABLE)==0. But it seems 1609ba26faa3Sdrh ** simpler and safer to simply not reuse the registers. 1610ba26faa3Sdrh ** 1611ba26faa3Sdrh ** sqlite3ReleaseTempRange(pParse, iReg, nConstraint+2); 1612ba26faa3Sdrh */ 16136f82e85aSdrh }else 16146f82e85aSdrh #endif /* SQLITE_OMIT_VIRTUALTABLE */ 16156f82e85aSdrh 16166f82e85aSdrh if( (pLoop->wsFlags & WHERE_IPK)!=0 16176f82e85aSdrh && (pLoop->wsFlags & (WHERE_COLUMN_IN|WHERE_COLUMN_EQ))!=0 16186f82e85aSdrh ){ 16196f82e85aSdrh /* Case 2: We can directly reference a single row using an 16206f82e85aSdrh ** equality comparison against the ROWID field. Or 16216f82e85aSdrh ** we reference multiple rows using a "rowid IN (...)" 16226f82e85aSdrh ** construct. 16236f82e85aSdrh */ 16246f82e85aSdrh assert( pLoop->u.btree.nEq==1 ); 16256f82e85aSdrh pTerm = pLoop->aLTerm[0]; 16266f82e85aSdrh assert( pTerm!=0 ); 16276f82e85aSdrh assert( pTerm->pExpr!=0 ); 16286f82e85aSdrh testcase( pTerm->wtFlags & TERM_VIRTUAL ); 16296f82e85aSdrh iReleaseReg = ++pParse->nMem; 16306f82e85aSdrh iRowidReg = codeEqualityTerm(pParse, pTerm, pLevel, 0, bRev, iReleaseReg); 16316f82e85aSdrh if( iRowidReg!=iReleaseReg ) sqlite3ReleaseTempReg(pParse, iReleaseReg); 16326f82e85aSdrh addrNxt = pLevel->addrNxt; 16332db144c3Sdrh if( pLevel->regFilter ){ 16342db144c3Sdrh sqlite3VdbeAddOp4Int(v, OP_Filter, pLevel->regFilter, addrNxt, 16352db144c3Sdrh iRowidReg, 1); 1636067c60cfSdrh VdbeCoverage(v); 163735685d3eSdrh filterPullDown(pParse, pWInfo, iLevel, addrNxt, notReady); 16382db144c3Sdrh } 1639eeb9565aSdrh sqlite3VdbeAddOp3(v, OP_SeekRowid, iCur, addrNxt, iRowidReg); 16406f82e85aSdrh VdbeCoverage(v); 16416f82e85aSdrh pLevel->op = OP_Noop; 16426f82e85aSdrh }else if( (pLoop->wsFlags & WHERE_IPK)!=0 16436f82e85aSdrh && (pLoop->wsFlags & WHERE_COLUMN_RANGE)!=0 16446f82e85aSdrh ){ 16456f82e85aSdrh /* Case 3: We have an inequality comparison against the ROWID field. 16466f82e85aSdrh */ 16476f82e85aSdrh int testOp = OP_Noop; 16486f82e85aSdrh int start; 16496f82e85aSdrh int memEndValue = 0; 16506f82e85aSdrh WhereTerm *pStart, *pEnd; 16516f82e85aSdrh 16526f82e85aSdrh j = 0; 16536f82e85aSdrh pStart = pEnd = 0; 16546f82e85aSdrh if( pLoop->wsFlags & WHERE_BTM_LIMIT ) pStart = pLoop->aLTerm[j++]; 16556f82e85aSdrh if( pLoop->wsFlags & WHERE_TOP_LIMIT ) pEnd = pLoop->aLTerm[j++]; 16566f82e85aSdrh assert( pStart!=0 || pEnd!=0 ); 16576f82e85aSdrh if( bRev ){ 16586f82e85aSdrh pTerm = pStart; 16596f82e85aSdrh pStart = pEnd; 16606f82e85aSdrh pEnd = pTerm; 16616f82e85aSdrh } 1662b324cf75Sdan codeCursorHint(pTabItem, pWInfo, pLevel, pEnd); 16636f82e85aSdrh if( pStart ){ 16646f82e85aSdrh Expr *pX; /* The expression that defines the start bound */ 16656f82e85aSdrh int r1, rTemp; /* Registers for holding the start boundary */ 166619ff12ddSdan int op; /* Cursor seek operation */ 16676f82e85aSdrh 16686f82e85aSdrh /* The following constant maps TK_xx codes into corresponding 16696f82e85aSdrh ** seek opcodes. It depends on a particular ordering of TK_xx 16706f82e85aSdrh */ 16716f82e85aSdrh const u8 aMoveOp[] = { 16726f82e85aSdrh /* TK_GT */ OP_SeekGT, 16736f82e85aSdrh /* TK_LE */ OP_SeekLE, 16746f82e85aSdrh /* TK_LT */ OP_SeekLT, 16756f82e85aSdrh /* TK_GE */ OP_SeekGE 16766f82e85aSdrh }; 16776f82e85aSdrh assert( TK_LE==TK_GT+1 ); /* Make sure the ordering.. */ 16786f82e85aSdrh assert( TK_LT==TK_GT+2 ); /* ... of the TK_xx values... */ 16796f82e85aSdrh assert( TK_GE==TK_GT+3 ); /* ... is correcct. */ 16806f82e85aSdrh 16816f82e85aSdrh assert( (pStart->wtFlags & TERM_VNULL)==0 ); 16826f82e85aSdrh testcase( pStart->wtFlags & TERM_VIRTUAL ); 16836f82e85aSdrh pX = pStart->pExpr; 16846f82e85aSdrh assert( pX!=0 ); 16856f82e85aSdrh testcase( pStart->leftCursor!=iCur ); /* transitive constraints */ 1686625015e0Sdan if( sqlite3ExprIsVector(pX->pRight) ){ 168719ff12ddSdan r1 = rTemp = sqlite3GetTempReg(pParse); 168819ff12ddSdan codeExprOrVector(pParse, pX->pRight, r1, 1); 16894d1c6845Sdrh testcase( pX->op==TK_GT ); 16904d1c6845Sdrh testcase( pX->op==TK_GE ); 16914d1c6845Sdrh testcase( pX->op==TK_LT ); 16924d1c6845Sdrh testcase( pX->op==TK_LE ); 16934d1c6845Sdrh op = aMoveOp[((pX->op - TK_GT - 1) & 0x3) | 0x1]; 16944d1c6845Sdrh assert( pX->op!=TK_GT || op==OP_SeekGE ); 16954d1c6845Sdrh assert( pX->op!=TK_GE || op==OP_SeekGE ); 16964d1c6845Sdrh assert( pX->op!=TK_LT || op==OP_SeekLE ); 16974d1c6845Sdrh assert( pX->op!=TK_LE || op==OP_SeekLE ); 169819ff12ddSdan }else{ 16996f82e85aSdrh r1 = sqlite3ExprCodeTemp(pParse, pX->pRight, &rTemp); 170019ff12ddSdan disableTerm(pLevel, pStart); 170119ff12ddSdan op = aMoveOp[(pX->op - TK_GT)]; 170219ff12ddSdan } 170319ff12ddSdan sqlite3VdbeAddOp3(v, op, iCur, addrBrk, r1); 17046f82e85aSdrh VdbeComment((v, "pk")); 17056f82e85aSdrh VdbeCoverageIf(v, pX->op==TK_GT); 17066f82e85aSdrh VdbeCoverageIf(v, pX->op==TK_LE); 17076f82e85aSdrh VdbeCoverageIf(v, pX->op==TK_LT); 17086f82e85aSdrh VdbeCoverageIf(v, pX->op==TK_GE); 17096f82e85aSdrh sqlite3ReleaseTempReg(pParse, rTemp); 17106f82e85aSdrh }else{ 17113a3b420aSdrh sqlite3VdbeAddOp2(v, bRev ? OP_Last : OP_Rewind, iCur, addrHalt); 17126f82e85aSdrh VdbeCoverageIf(v, bRev==0); 17136f82e85aSdrh VdbeCoverageIf(v, bRev!=0); 17146f82e85aSdrh } 17156f82e85aSdrh if( pEnd ){ 17166f82e85aSdrh Expr *pX; 17176f82e85aSdrh pX = pEnd->pExpr; 17186f82e85aSdrh assert( pX!=0 ); 17196f82e85aSdrh assert( (pEnd->wtFlags & TERM_VNULL)==0 ); 17206f82e85aSdrh testcase( pEnd->leftCursor!=iCur ); /* Transitive constraints */ 17216f82e85aSdrh testcase( pEnd->wtFlags & TERM_VIRTUAL ); 17226f82e85aSdrh memEndValue = ++pParse->nMem; 172319ff12ddSdan codeExprOrVector(pParse, pX->pRight, memEndValue, 1); 1724625015e0Sdan if( 0==sqlite3ExprIsVector(pX->pRight) 1725625015e0Sdan && (pX->op==TK_LT || pX->op==TK_GT) 1726625015e0Sdan ){ 17276f82e85aSdrh testOp = bRev ? OP_Le : OP_Ge; 17286f82e85aSdrh }else{ 17296f82e85aSdrh testOp = bRev ? OP_Lt : OP_Gt; 17306f82e85aSdrh } 1731553168c7Sdan if( 0==sqlite3ExprIsVector(pX->pRight) ){ 17326f82e85aSdrh disableTerm(pLevel, pEnd); 17336f82e85aSdrh } 1734553168c7Sdan } 17356f82e85aSdrh start = sqlite3VdbeCurrentAddr(v); 17366f82e85aSdrh pLevel->op = bRev ? OP_Prev : OP_Next; 17376f82e85aSdrh pLevel->p1 = iCur; 17386f82e85aSdrh pLevel->p2 = start; 17396f82e85aSdrh assert( pLevel->p5==0 ); 17406f82e85aSdrh if( testOp!=OP_Noop ){ 17416f82e85aSdrh iRowidReg = ++pParse->nMem; 17426f82e85aSdrh sqlite3VdbeAddOp2(v, OP_Rowid, iCur, iRowidReg); 17436f82e85aSdrh sqlite3VdbeAddOp3(v, testOp, memEndValue, addrBrk, iRowidReg); 17446f82e85aSdrh VdbeCoverageIf(v, testOp==OP_Le); 17456f82e85aSdrh VdbeCoverageIf(v, testOp==OP_Lt); 17466f82e85aSdrh VdbeCoverageIf(v, testOp==OP_Ge); 17476f82e85aSdrh VdbeCoverageIf(v, testOp==OP_Gt); 17486f82e85aSdrh sqlite3VdbeChangeP5(v, SQLITE_AFF_NUMERIC | SQLITE_JUMPIFNULL); 17496f82e85aSdrh } 17506f82e85aSdrh }else if( pLoop->wsFlags & WHERE_INDEXED ){ 17516f82e85aSdrh /* Case 4: A scan using an index. 17526f82e85aSdrh ** 17536f82e85aSdrh ** The WHERE clause may contain zero or more equality 17546f82e85aSdrh ** terms ("==" or "IN" operators) that refer to the N 17556f82e85aSdrh ** left-most columns of the index. It may also contain 17566f82e85aSdrh ** inequality constraints (>, <, >= or <=) on the indexed 17576f82e85aSdrh ** column that immediately follows the N equalities. Only 17586f82e85aSdrh ** the right-most column can be an inequality - the rest must 17596f82e85aSdrh ** use the "==" and "IN" operators. For example, if the 17606f82e85aSdrh ** index is on (x,y,z), then the following clauses are all 17616f82e85aSdrh ** optimized: 17626f82e85aSdrh ** 17636f82e85aSdrh ** x=5 17646f82e85aSdrh ** x=5 AND y=10 17656f82e85aSdrh ** x=5 AND y<10 17666f82e85aSdrh ** x=5 AND y>5 AND y<10 17676f82e85aSdrh ** x=5 AND y=5 AND z<=10 17686f82e85aSdrh ** 17696f82e85aSdrh ** The z<10 term of the following cannot be used, only 17706f82e85aSdrh ** the x=5 term: 17716f82e85aSdrh ** 17726f82e85aSdrh ** x=5 AND z<10 17736f82e85aSdrh ** 17746f82e85aSdrh ** N may be zero if there are inequality constraints. 17756f82e85aSdrh ** If there are no inequality constraints, then N is at 17766f82e85aSdrh ** least one. 17776f82e85aSdrh ** 17786f82e85aSdrh ** This case is also used when there are no WHERE clause 17796f82e85aSdrh ** constraints but an index is selected anyway, in order 17806f82e85aSdrh ** to force the output order to conform to an ORDER BY. 17816f82e85aSdrh */ 17826f82e85aSdrh static const u8 aStartOp[] = { 17836f82e85aSdrh 0, 17846f82e85aSdrh 0, 17856f82e85aSdrh OP_Rewind, /* 2: (!start_constraints && startEq && !bRev) */ 17866f82e85aSdrh OP_Last, /* 3: (!start_constraints && startEq && bRev) */ 17876f82e85aSdrh OP_SeekGT, /* 4: (start_constraints && !startEq && !bRev) */ 17886f82e85aSdrh OP_SeekLT, /* 5: (start_constraints && !startEq && bRev) */ 17896f82e85aSdrh OP_SeekGE, /* 6: (start_constraints && startEq && !bRev) */ 17906f82e85aSdrh OP_SeekLE /* 7: (start_constraints && startEq && bRev) */ 17916f82e85aSdrh }; 17926f82e85aSdrh static const u8 aEndOp[] = { 17936f82e85aSdrh OP_IdxGE, /* 0: (end_constraints && !bRev && !endEq) */ 17946f82e85aSdrh OP_IdxGT, /* 1: (end_constraints && !bRev && endEq) */ 17956f82e85aSdrh OP_IdxLE, /* 2: (end_constraints && bRev && !endEq) */ 17966f82e85aSdrh OP_IdxLT, /* 3: (end_constraints && bRev && endEq) */ 17976f82e85aSdrh }; 17986f82e85aSdrh u16 nEq = pLoop->u.btree.nEq; /* Number of == or IN terms */ 179971c57db0Sdan u16 nBtm = pLoop->u.btree.nBtm; /* Length of BTM vector */ 180071c57db0Sdan u16 nTop = pLoop->u.btree.nTop; /* Length of TOP vector */ 18016f82e85aSdrh int regBase; /* Base register holding constraint values */ 18026f82e85aSdrh WhereTerm *pRangeStart = 0; /* Inequality constraint at range start */ 18036f82e85aSdrh WhereTerm *pRangeEnd = 0; /* Inequality constraint at range end */ 18046f82e85aSdrh int startEq; /* True if range start uses ==, >= or <= */ 18056f82e85aSdrh int endEq; /* True if range end uses ==, >= or <= */ 18066f82e85aSdrh int start_constraints; /* Start of range is constrained */ 18076f82e85aSdrh int nConstraint; /* Number of constraint terms */ 18086f82e85aSdrh int iIdxCur; /* The VDBE cursor for the index */ 18096f82e85aSdrh int nExtraReg = 0; /* Number of extra registers needed */ 18106f82e85aSdrh int op; /* Instruction opcode */ 18116f82e85aSdrh char *zStartAff; /* Affinity for start of range constraint */ 1812b7ca2177Sdan char *zEndAff = 0; /* Affinity for end of range constraint */ 18136f82e85aSdrh u8 bSeekPastNull = 0; /* True to seek past initial nulls */ 18146f82e85aSdrh u8 bStopAtNull = 0; /* Add condition to terminate at NULLs */ 181547df8a2cSdrh int omitTable; /* True if we use the index only */ 181674e1b861Sdrh int regBignull = 0; /* big-null flag register */ 181704e70ce0Sdrh int addrSeekScan = 0; /* Opcode of the OP_SeekScan, if any */ 18186f82e85aSdrh 18196f82e85aSdrh pIdx = pLoop->u.btree.pIndex; 18206f82e85aSdrh iIdxCur = pLevel->iIdxCur; 18216f82e85aSdrh assert( nEq>=pLoop->nSkip ); 18226f82e85aSdrh 18236f82e85aSdrh /* Find any inequality constraint terms for the start and end 18246f82e85aSdrh ** of the range. 18256f82e85aSdrh */ 18266f82e85aSdrh j = nEq; 18276f82e85aSdrh if( pLoop->wsFlags & WHERE_BTM_LIMIT ){ 18286f82e85aSdrh pRangeStart = pLoop->aLTerm[j++]; 182971c57db0Sdan nExtraReg = MAX(nExtraReg, pLoop->u.btree.nBtm); 18306f82e85aSdrh /* Like optimization range constraints always occur in pairs */ 18316f82e85aSdrh assert( (pRangeStart->wtFlags & TERM_LIKEOPT)==0 || 18326f82e85aSdrh (pLoop->wsFlags & WHERE_TOP_LIMIT)!=0 ); 18336f82e85aSdrh } 18346f82e85aSdrh if( pLoop->wsFlags & WHERE_TOP_LIMIT ){ 18356f82e85aSdrh pRangeEnd = pLoop->aLTerm[j++]; 183671c57db0Sdan nExtraReg = MAX(nExtraReg, pLoop->u.btree.nTop); 183741d2e66eSdrh #ifndef SQLITE_LIKE_DOESNT_MATCH_BLOBS 18386f82e85aSdrh if( (pRangeEnd->wtFlags & TERM_LIKEOPT)!=0 ){ 18396f82e85aSdrh assert( pRangeStart!=0 ); /* LIKE opt constraints */ 18406f82e85aSdrh assert( pRangeStart->wtFlags & TERM_LIKEOPT ); /* occur in pairs */ 184144aebff2Sdrh pLevel->iLikeRepCntr = (u32)++pParse->nMem; 184244aebff2Sdrh sqlite3VdbeAddOp2(v, OP_Integer, 1, (int)pLevel->iLikeRepCntr); 18436f82e85aSdrh VdbeComment((v, "LIKE loop counter")); 18446f82e85aSdrh pLevel->addrLikeRep = sqlite3VdbeCurrentAddr(v); 184544aebff2Sdrh /* iLikeRepCntr actually stores 2x the counter register number. The 184644aebff2Sdrh ** bottom bit indicates whether the search order is ASC or DESC. */ 184744aebff2Sdrh testcase( bRev ); 184844aebff2Sdrh testcase( pIdx->aSortOrder[nEq]==SQLITE_SO_DESC ); 184944aebff2Sdrh assert( (bRev & ~1)==0 ); 185044aebff2Sdrh pLevel->iLikeRepCntr <<=1; 185144aebff2Sdrh pLevel->iLikeRepCntr |= bRev ^ (pIdx->aSortOrder[nEq]==SQLITE_SO_DESC); 18526f82e85aSdrh } 185341d2e66eSdrh #endif 185448590fcbSdrh if( pRangeStart==0 ){ 185548590fcbSdrh j = pIdx->aiColumn[nEq]; 185648590fcbSdrh if( (j>=0 && pIdx->pTable->aCol[j].notNull==0) || j==XN_EXPR ){ 18576f82e85aSdrh bSeekPastNull = 1; 18586f82e85aSdrh } 18596f82e85aSdrh } 186048590fcbSdrh } 18616f82e85aSdrh assert( pRangeEnd==0 || (pRangeEnd->wtFlags & TERM_VNULL)==0 ); 18626f82e85aSdrh 186315750a26Sdan /* If the WHERE_BIGNULL_SORT flag is set, then index column nEq uses 186415750a26Sdan ** a non-default "big-null" sort (either ASC NULLS LAST or DESC NULLS 186515750a26Sdan ** FIRST). In both cases separate ordered scans are made of those 186615750a26Sdan ** index entries for which the column is null and for those for which 186715750a26Sdan ** it is not. For an ASC sort, the non-NULL entries are scanned first. 186815750a26Sdan ** For DESC, NULL entries are scanned first. 186915750a26Sdan */ 187015750a26Sdan if( (pLoop->wsFlags & (WHERE_TOP_LIMIT|WHERE_BTM_LIMIT))==0 187115750a26Sdan && (pLoop->wsFlags & WHERE_BIGNULL_SORT)!=0 187215750a26Sdan ){ 187315750a26Sdan assert( bSeekPastNull==0 && nExtraReg==0 && nBtm==0 && nTop==0 ); 187415750a26Sdan assert( pRangeEnd==0 && pRangeStart==0 ); 18754adb1d00Sdan testcase( pLoop->nSkip>0 ); 187615750a26Sdan nExtraReg = 1; 187715750a26Sdan bSeekPastNull = 1; 187815750a26Sdan pLevel->regBignull = regBignull = ++pParse->nMem; 18797f05d52cSdrh if( pLevel->iLeftJoin ){ 18807f05d52cSdrh sqlite3VdbeAddOp2(v, OP_Integer, 0, regBignull); 18817f05d52cSdrh } 1882cc491f4bSdan pLevel->addrBignull = sqlite3VdbeMakeLabel(pParse); 188315750a26Sdan } 188415750a26Sdan 18856f82e85aSdrh /* If we are doing a reverse order scan on an ascending index, or 18866f82e85aSdrh ** a forward order scan on a descending index, interchange the 18876f82e85aSdrh ** start and end terms (pRangeStart and pRangeEnd). 18886f82e85aSdrh */ 18897ffb16b4Sdrh if( (nEq<pIdx->nColumn && bRev==(pIdx->aSortOrder[nEq]==SQLITE_SO_ASC)) ){ 18906f82e85aSdrh SWAP(WhereTerm *, pRangeEnd, pRangeStart); 18916f82e85aSdrh SWAP(u8, bSeekPastNull, bStopAtNull); 189271c57db0Sdan SWAP(u8, nBtm, nTop); 18936f82e85aSdrh } 18946f82e85aSdrh 1895df1b52e7Sdan if( iLevel>0 && (pLoop->wsFlags & WHERE_IN_SEEKSCAN)!=0 ){ 1896df1b52e7Sdan /* In case OP_SeekScan is used, ensure that the index cursor does not 1897df1b52e7Sdan ** point to a valid row for the first iteration of this loop. */ 1898df1b52e7Sdan sqlite3VdbeAddOp1(v, OP_NullRow, iIdxCur); 1899df1b52e7Sdan } 1900df1b52e7Sdan 1901bcf40a7fSdrh /* Generate code to evaluate all constraint terms using == or IN 1902bcf40a7fSdrh ** and store the values of those terms in an array of registers 1903bcf40a7fSdrh ** starting at regBase. 1904bcf40a7fSdrh */ 1905b324cf75Sdan codeCursorHint(pTabItem, pWInfo, pLevel, pRangeEnd); 1906bcf40a7fSdrh regBase = codeAllEqualityTerms(pParse,pLevel,bRev,nExtraReg,&zStartAff); 1907bcf40a7fSdrh assert( zStartAff==0 || sqlite3Strlen30(zStartAff)>=nEq ); 1908b7ca2177Sdan if( zStartAff && nTop ){ 1909b7ca2177Sdan zEndAff = sqlite3DbStrDup(db, &zStartAff[nEq]); 1910b7ca2177Sdan } 1911cc491f4bSdan addrNxt = (regBignull ? pLevel->addrBignull : pLevel->addrNxt); 1912bcf40a7fSdrh 19136f82e85aSdrh testcase( pRangeStart && (pRangeStart->eOperator & WO_LE)!=0 ); 19146f82e85aSdrh testcase( pRangeStart && (pRangeStart->eOperator & WO_GE)!=0 ); 19156f82e85aSdrh testcase( pRangeEnd && (pRangeEnd->eOperator & WO_LE)!=0 ); 19166f82e85aSdrh testcase( pRangeEnd && (pRangeEnd->eOperator & WO_GE)!=0 ); 19176f82e85aSdrh startEq = !pRangeStart || pRangeStart->eOperator & (WO_LE|WO_GE); 19186f82e85aSdrh endEq = !pRangeEnd || pRangeEnd->eOperator & (WO_LE|WO_GE); 19196f82e85aSdrh start_constraints = pRangeStart || nEq>0; 19206f82e85aSdrh 19216f82e85aSdrh /* Seek the index cursor to the start of the range. */ 19226f82e85aSdrh nConstraint = nEq; 19236f82e85aSdrh if( pRangeStart ){ 19246f82e85aSdrh Expr *pRight = pRangeStart->pExpr->pRight; 192571c57db0Sdan codeExprOrVector(pParse, pRight, regBase+nEq, nBtm); 19266f82e85aSdrh whereLikeOptimizationStringFixup(v, pLevel, pRangeStart); 1927395a60daSdrh if( (pRangeStart->wtFlags & TERM_VNULL)==0 19286f82e85aSdrh && sqlite3ExprCanBeNull(pRight) 19296f82e85aSdrh ){ 19306f82e85aSdrh sqlite3VdbeAddOp2(v, OP_IsNull, regBase+nEq, addrNxt); 19316f82e85aSdrh VdbeCoverage(v); 19326f82e85aSdrh } 19336f82e85aSdrh if( zStartAff ){ 1934e3c6b61cSdrh updateRangeAffinityStr(pRight, nBtm, &zStartAff[nEq]); 19356f82e85aSdrh } 193671c57db0Sdan nConstraint += nBtm; 19376f82e85aSdrh testcase( pRangeStart->wtFlags & TERM_VIRTUAL ); 1938625015e0Sdan if( sqlite3ExprIsVector(pRight)==0 ){ 193971c57db0Sdan disableTerm(pLevel, pRangeStart); 194071c57db0Sdan }else{ 194171c57db0Sdan startEq = 1; 194271c57db0Sdan } 1943426f4ab0Sdrh bSeekPastNull = 0; 19446f82e85aSdrh }else if( bSeekPastNull ){ 19456f82e85aSdrh startEq = 0; 19460086e078Sdrh sqlite3VdbeAddOp2(v, OP_Null, 0, regBase+nEq); 19476f82e85aSdrh start_constraints = 1; 19480086e078Sdrh nConstraint++; 194915750a26Sdan }else if( regBignull ){ 195015750a26Sdan sqlite3VdbeAddOp2(v, OP_Null, 0, regBase+nEq); 195115750a26Sdan start_constraints = 1; 195215750a26Sdan nConstraint++; 19536f82e85aSdrh } 19546f82e85aSdrh codeApplyAffinity(pParse, regBase, nConstraint - bSeekPastNull, zStartAff); 19550bf2ad6aSdrh if( pLoop->nSkip>0 && nConstraint==pLoop->nSkip ){ 19560bf2ad6aSdrh /* The skip-scan logic inside the call to codeAllEqualityConstraints() 19570bf2ad6aSdrh ** above has already left the cursor sitting on the correct row, 19580bf2ad6aSdrh ** so no further seeking is needed */ 19590bf2ad6aSdrh }else{ 196015750a26Sdan if( regBignull ){ 1961ec3dda5bSdrh sqlite3VdbeAddOp2(v, OP_Integer, 1, regBignull); 1962a31d3554Sdrh VdbeComment((v, "NULL-scan pass ctr")); 196315750a26Sdan } 19642db144c3Sdrh if( pLevel->regFilter ){ 19652db144c3Sdrh sqlite3VdbeAddOp4Int(v, OP_Filter, pLevel->regFilter, addrNxt, 1966770dade2Sdrh regBase, nEq); 1967067c60cfSdrh VdbeCoverage(v); 196835685d3eSdrh filterPullDown(pParse, pWInfo, iLevel, addrNxt, notReady); 19692db144c3Sdrh } 197015750a26Sdan 19716f82e85aSdrh op = aStartOp[(start_constraints<<2) + (startEq<<1) + bRev]; 19726f82e85aSdrh assert( op!=0 ); 19737d14ffe4Sdrh if( (pLoop->wsFlags & WHERE_IN_SEEKSCAN)!=0 && op==OP_SeekGE ){ 197468cf0aceSdrh assert( regBignull==0 ); 19754f65b3bbSdrh /* TUNING: The OP_SeekScan opcode seeks to reduce the number 19764f65b3bbSdrh ** of expensive seek operations by replacing a single seek with 19774f65b3bbSdrh ** 1 or more step operations. The question is, how many steps 19784f65b3bbSdrh ** should we try before giving up and going with a seek. The cost 19794f65b3bbSdrh ** of a seek is proportional to the logarithm of the of the number 19804f65b3bbSdrh ** of entries in the tree, so basing the number of steps to try 19814f65b3bbSdrh ** on the estimated number of rows in the btree seems like a good 19824f65b3bbSdrh ** guess. */ 198304e70ce0Sdrh addrSeekScan = sqlite3VdbeAddOp1(v, OP_SeekScan, 198404e70ce0Sdrh (pIdx->aiRowLogEst[0]+9)/10); 19854f65b3bbSdrh VdbeCoverage(v); 198668cf0aceSdrh } 19876f82e85aSdrh sqlite3VdbeAddOp4Int(v, op, iIdxCur, addrNxt, regBase, nConstraint); 19886f82e85aSdrh VdbeCoverage(v); 19896f82e85aSdrh VdbeCoverageIf(v, op==OP_Rewind); testcase( op==OP_Rewind ); 19906f82e85aSdrh VdbeCoverageIf(v, op==OP_Last); testcase( op==OP_Last ); 19916f82e85aSdrh VdbeCoverageIf(v, op==OP_SeekGT); testcase( op==OP_SeekGT ); 19926f82e85aSdrh VdbeCoverageIf(v, op==OP_SeekGE); testcase( op==OP_SeekGE ); 19936f82e85aSdrh VdbeCoverageIf(v, op==OP_SeekLE); testcase( op==OP_SeekLE ); 19946f82e85aSdrh VdbeCoverageIf(v, op==OP_SeekLT); testcase( op==OP_SeekLT ); 1995ddd7421cSdan 19960086e078Sdrh assert( bSeekPastNull==0 || bStopAtNull==0 ); 199715750a26Sdan if( regBignull ){ 19980086e078Sdrh assert( bSeekPastNull==1 || bStopAtNull==1 ); 19995f6a4ea2Sdrh assert( bSeekPastNull==!bStopAtNull ); 20000086e078Sdrh assert( bStopAtNull==startEq ); 2001ddd7421cSdan sqlite3VdbeAddOp2(v, OP_Goto, 0, sqlite3VdbeCurrentAddr(v)+2); 20020086e078Sdrh op = aStartOp[(nConstraint>1)*4 + 2 + bRev]; 20030086e078Sdrh sqlite3VdbeAddOp4Int(v, op, iIdxCur, addrNxt, regBase, 20040086e078Sdrh nConstraint-startEq); 2005505ae9deSdrh VdbeCoverage(v); 2006505ae9deSdrh VdbeCoverageIf(v, op==OP_Rewind); testcase( op==OP_Rewind ); 2007505ae9deSdrh VdbeCoverageIf(v, op==OP_Last); testcase( op==OP_Last ); 2008505ae9deSdrh VdbeCoverageIf(v, op==OP_SeekGE); testcase( op==OP_SeekGE ); 2009505ae9deSdrh VdbeCoverageIf(v, op==OP_SeekLE); testcase( op==OP_SeekLE ); 20100086e078Sdrh assert( op==OP_Rewind || op==OP_Last || op==OP_SeekGE || op==OP_SeekLE); 2011ddd7421cSdan } 2012a6d2f8ebSdrh } 20136f82e85aSdrh 20146f82e85aSdrh /* Load the value for the inequality constraint at the end of the 20156f82e85aSdrh ** range (if any). 20166f82e85aSdrh */ 20176f82e85aSdrh nConstraint = nEq; 20185d742e39Sdrh assert( pLevel->p2==0 ); 20196f82e85aSdrh if( pRangeEnd ){ 20206f82e85aSdrh Expr *pRight = pRangeEnd->pExpr->pRight; 20215d742e39Sdrh if( addrSeekScan ){ 20225d742e39Sdrh /* For a seek-scan that has a range on the lowest term of the index, 20235d742e39Sdrh ** we have to make the top of the loop be code that sets the end 20245d742e39Sdrh ** condition of the range. Otherwise, the OP_SeekScan might jump 20255d742e39Sdrh ** over that initialization, leaving the range-end value set to the 20265d742e39Sdrh ** range-start value, resulting in a wrong answer. 20275d742e39Sdrh ** See ticket 5981a8c041a3c2f3 (2021-11-02). 20285d742e39Sdrh */ 20295d742e39Sdrh pLevel->p2 = sqlite3VdbeCurrentAddr(v); 20305d742e39Sdrh } 203171c57db0Sdan codeExprOrVector(pParse, pRight, regBase+nEq, nTop); 20326f82e85aSdrh whereLikeOptimizationStringFixup(v, pLevel, pRangeEnd); 2033395a60daSdrh if( (pRangeEnd->wtFlags & TERM_VNULL)==0 20346f82e85aSdrh && sqlite3ExprCanBeNull(pRight) 20356f82e85aSdrh ){ 20366f82e85aSdrh sqlite3VdbeAddOp2(v, OP_IsNull, regBase+nEq, addrNxt); 20376f82e85aSdrh VdbeCoverage(v); 20386f82e85aSdrh } 20390c36fca0Sdrh if( zEndAff ){ 2040e3c6b61cSdrh updateRangeAffinityStr(pRight, nTop, zEndAff); 2041b7ca2177Sdan codeApplyAffinity(pParse, regBase+nEq, nTop, zEndAff); 20420c36fca0Sdrh }else{ 20430c36fca0Sdrh assert( pParse->db->mallocFailed ); 20440c36fca0Sdrh } 204571c57db0Sdan nConstraint += nTop; 20466f82e85aSdrh testcase( pRangeEnd->wtFlags & TERM_VIRTUAL ); 204771c57db0Sdan 2048625015e0Sdan if( sqlite3ExprIsVector(pRight)==0 ){ 204971c57db0Sdan disableTerm(pLevel, pRangeEnd); 205071c57db0Sdan }else{ 205171c57db0Sdan endEq = 1; 205271c57db0Sdan } 20536f82e85aSdrh }else if( bStopAtNull ){ 205415750a26Sdan if( regBignull==0 ){ 20556f82e85aSdrh sqlite3VdbeAddOp2(v, OP_Null, 0, regBase+nEq); 20566f82e85aSdrh endEq = 0; 205715750a26Sdan } 20586f82e85aSdrh nConstraint++; 20596f82e85aSdrh } 20606f82e85aSdrh sqlite3DbFree(db, zStartAff); 2061b7ca2177Sdan sqlite3DbFree(db, zEndAff); 20626f82e85aSdrh 20636f82e85aSdrh /* Top of the loop body */ 20645d742e39Sdrh if( pLevel->p2==0 ) pLevel->p2 = sqlite3VdbeCurrentAddr(v); 20656f82e85aSdrh 20666f82e85aSdrh /* Check if the index cursor is past the end of the range. */ 20676f82e85aSdrh if( nConstraint ){ 206815750a26Sdan if( regBignull ){ 20695f6a4ea2Sdrh /* Except, skip the end-of-range check while doing the NULL-scan */ 2070ec3dda5bSdrh sqlite3VdbeAddOp2(v, OP_IfNot, regBignull, sqlite3VdbeCurrentAddr(v)+3); 2071a31d3554Sdrh VdbeComment((v, "If NULL-scan 2nd pass")); 2072505ae9deSdrh VdbeCoverage(v); 207315750a26Sdan } 20746f82e85aSdrh op = aEndOp[bRev*2 + endEq]; 20756f82e85aSdrh sqlite3VdbeAddOp4Int(v, op, iIdxCur, addrNxt, regBase, nConstraint); 20766f82e85aSdrh testcase( op==OP_IdxGT ); VdbeCoverageIf(v, op==OP_IdxGT ); 20776f82e85aSdrh testcase( op==OP_IdxGE ); VdbeCoverageIf(v, op==OP_IdxGE ); 20786f82e85aSdrh testcase( op==OP_IdxLT ); VdbeCoverageIf(v, op==OP_IdxLT ); 20796f82e85aSdrh testcase( op==OP_IdxLE ); VdbeCoverageIf(v, op==OP_IdxLE ); 208004e70ce0Sdrh if( addrSeekScan ) sqlite3VdbeJumpHere(v, addrSeekScan); 20816f82e85aSdrh } 208215750a26Sdan if( regBignull ){ 20835f6a4ea2Sdrh /* During a NULL-scan, check to see if we have reached the end of 20845f6a4ea2Sdrh ** the NULLs */ 20855f6a4ea2Sdrh assert( bSeekPastNull==!bStopAtNull ); 20865f6a4ea2Sdrh assert( bSeekPastNull+bStopAtNull==1 ); 20875f6a4ea2Sdrh assert( nConstraint+bSeekPastNull>0 ); 2088ec3dda5bSdrh sqlite3VdbeAddOp2(v, OP_If, regBignull, sqlite3VdbeCurrentAddr(v)+2); 2089a31d3554Sdrh VdbeComment((v, "If NULL-scan 1st pass")); 2090505ae9deSdrh VdbeCoverage(v); 20915f6a4ea2Sdrh op = aEndOp[bRev*2 + bSeekPastNull]; 20925f6a4ea2Sdrh sqlite3VdbeAddOp4Int(v, op, iIdxCur, addrNxt, regBase, 20935f6a4ea2Sdrh nConstraint+bSeekPastNull); 2094505ae9deSdrh testcase( op==OP_IdxGT ); VdbeCoverageIf(v, op==OP_IdxGT ); 2095505ae9deSdrh testcase( op==OP_IdxGE ); VdbeCoverageIf(v, op==OP_IdxGE ); 2096505ae9deSdrh testcase( op==OP_IdxLT ); VdbeCoverageIf(v, op==OP_IdxLT ); 2097505ae9deSdrh testcase( op==OP_IdxLE ); VdbeCoverageIf(v, op==OP_IdxLE ); 209815750a26Sdan } 20996f82e85aSdrh 2100f761d937Sdrh if( (pLoop->wsFlags & WHERE_IN_EARLYOUT)!=0 ){ 2101fa17e134Sdrh sqlite3VdbeAddOp3(v, OP_SeekHit, iIdxCur, nEq, nEq); 21028c2b6d78Sdrh } 21038c2b6d78Sdrh 21046f82e85aSdrh /* Seek the table cursor, if required */ 210547df8a2cSdrh omitTable = (pLoop->wsFlags & WHERE_IDX_ONLY)!=0 210647df8a2cSdrh && (pWInfo->wctrlFlags & WHERE_OR_SUBCLAUSE)==0; 21076f82e85aSdrh if( omitTable ){ 21086f82e85aSdrh /* pIdx is a covering index. No need to access the main table. */ 21096f82e85aSdrh }else if( HasRowid(pIdx->pTable) ){ 2110784c1b93Sdrh codeDeferredSeek(pWInfo, pIdx, iCur, iIdxCur); 21116f82e85aSdrh }else if( iCur!=iIdxCur ){ 21126f82e85aSdrh Index *pPk = sqlite3PrimaryKeyIndex(pIdx->pTable); 21136f82e85aSdrh iRowidReg = sqlite3GetTempRange(pParse, pPk->nKeyCol); 21146f82e85aSdrh for(j=0; j<pPk->nKeyCol; j++){ 2115b9bcf7caSdrh k = sqlite3TableColumnToIndex(pIdx, pPk->aiColumn[j]); 21166f82e85aSdrh sqlite3VdbeAddOp3(v, OP_Column, iIdxCur, k, iRowidReg+j); 21176f82e85aSdrh } 21186f82e85aSdrh sqlite3VdbeAddOp4Int(v, OP_NotFound, iCur, addrCont, 21196f82e85aSdrh iRowidReg, pPk->nKeyCol); VdbeCoverage(v); 21206f82e85aSdrh } 21216f82e85aSdrh 2122db535390Sdrh if( pLevel->iLeftJoin==0 ){ 2123eac5fc04Sdrh /* If pIdx is an index on one or more expressions, then look through 2124eac5fc04Sdrh ** all the expressions in pWInfo and try to transform matching expressions 2125c7476735Sdrh ** into reference to index columns. Also attempt to translate references 2126c7476735Sdrh ** to virtual columns in the table into references to (stored) columns 2127c7476735Sdrh ** of the index. 21284da04f78Sdan ** 21294da04f78Sdan ** Do not do this for the RHS of a LEFT JOIN. This is because the 21304da04f78Sdan ** expression may be evaluated after OP_NullRow has been executed on 21314da04f78Sdan ** the cursor. In this case it is important to do the full evaluation, 21324da04f78Sdan ** as the result of the expression may not be NULL, even if all table 21335776c139Sdrh ** column values are. https://www.sqlite.org/src/info/7fa8049685b50b5a 21348851e100Sdrh ** 21358851e100Sdrh ** Also, do not do this when processing one index an a multi-index 21368851e100Sdrh ** OR clause, since the transformation will become invalid once we 21378851e100Sdrh ** move forward to the next index. 21388851e100Sdrh ** https://sqlite.org/src/info/4e8e4857d32d401f 2139eac5fc04Sdrh */ 2140db535390Sdrh if( (pWInfo->wctrlFlags & WHERE_OR_SUBCLAUSE)==0 ){ 2141aca19e19Sdrh whereIndexExprTrans(pIdx, iCur, iIdxCur, pWInfo); 21424da04f78Sdan } 2143aca19e19Sdrh 2144b531aa8fSdrh /* If a partial index is driving the loop, try to eliminate WHERE clause 2145b531aa8fSdrh ** terms from the query that must be true due to the WHERE clause of 2146db535390Sdrh ** the partial index. 2147db535390Sdrh ** 2148db535390Sdrh ** 2019-11-02 ticket 623eff57e76d45f6: This optimization does not work 2149db535390Sdrh ** for a LEFT JOIN. 2150b531aa8fSdrh */ 2151b531aa8fSdrh if( pIdx->pPartIdxWhere ){ 2152b531aa8fSdrh whereApplyPartialIndexConstraints(pIdx->pPartIdxWhere, iCur, pWC); 2153b531aa8fSdrh } 2154db535390Sdrh }else{ 2155db535390Sdrh testcase( pIdx->pPartIdxWhere ); 215606fc2455Sdrh /* The following assert() is not a requirement, merely an observation: 215706fc2455Sdrh ** The OR-optimization doesn't work for the right hand table of 215806fc2455Sdrh ** a LEFT JOIN: */ 215906fc2455Sdrh assert( (pWInfo->wctrlFlags & WHERE_OR_SUBCLAUSE)==0 ); 2160db535390Sdrh } 2161b531aa8fSdrh 216271c57db0Sdan /* Record the instruction used to terminate the loop. */ 21636f82e85aSdrh if( pLoop->wsFlags & WHERE_ONEROW ){ 21646f82e85aSdrh pLevel->op = OP_Noop; 21656f82e85aSdrh }else if( bRev ){ 21666f82e85aSdrh pLevel->op = OP_Prev; 21676f82e85aSdrh }else{ 21686f82e85aSdrh pLevel->op = OP_Next; 21696f82e85aSdrh } 21706f82e85aSdrh pLevel->p1 = iIdxCur; 21716f82e85aSdrh pLevel->p3 = (pLoop->wsFlags&WHERE_UNQ_WANTED)!=0 ? 1:0; 21726f82e85aSdrh if( (pLoop->wsFlags & WHERE_CONSTRAINT)==0 ){ 21736f82e85aSdrh pLevel->p5 = SQLITE_STMTSTATUS_FULLSCAN_STEP; 21746f82e85aSdrh }else{ 21756f82e85aSdrh assert( pLevel->p5==0 ); 21766f82e85aSdrh } 21776f654a40Sdan if( omitTable ) pIdx = 0; 21786f82e85aSdrh }else 21796f82e85aSdrh 21806f82e85aSdrh #ifndef SQLITE_OMIT_OR_OPTIMIZATION 21816f82e85aSdrh if( pLoop->wsFlags & WHERE_MULTI_OR ){ 21826f82e85aSdrh /* Case 5: Two or more separately indexed terms connected by OR 21836f82e85aSdrh ** 21846f82e85aSdrh ** Example: 21856f82e85aSdrh ** 21866f82e85aSdrh ** CREATE TABLE t1(a,b,c,d); 21876f82e85aSdrh ** CREATE INDEX i1 ON t1(a); 21886f82e85aSdrh ** CREATE INDEX i2 ON t1(b); 21896f82e85aSdrh ** CREATE INDEX i3 ON t1(c); 21906f82e85aSdrh ** 21916f82e85aSdrh ** SELECT * FROM t1 WHERE a=5 OR b=7 OR (c=11 AND d=13) 21926f82e85aSdrh ** 21936f82e85aSdrh ** In the example, there are three indexed terms connected by OR. 21946f82e85aSdrh ** The top of the loop looks like this: 21956f82e85aSdrh ** 21966f82e85aSdrh ** Null 1 # Zero the rowset in reg 1 21976f82e85aSdrh ** 21986f82e85aSdrh ** Then, for each indexed term, the following. The arguments to 21996f82e85aSdrh ** RowSetTest are such that the rowid of the current row is inserted 22006f82e85aSdrh ** into the RowSet. If it is already present, control skips the 22016f82e85aSdrh ** Gosub opcode and jumps straight to the code generated by WhereEnd(). 22026f82e85aSdrh ** 22036f82e85aSdrh ** sqlite3WhereBegin(<term>) 22046f82e85aSdrh ** RowSetTest # Insert rowid into rowset 22056f82e85aSdrh ** Gosub 2 A 22066f82e85aSdrh ** sqlite3WhereEnd() 22076f82e85aSdrh ** 22086f82e85aSdrh ** Following the above, code to terminate the loop. Label A, the target 22096f82e85aSdrh ** of the Gosub above, jumps to the instruction right after the Goto. 22106f82e85aSdrh ** 22116f82e85aSdrh ** Null 1 # Zero the rowset in reg 1 22126f82e85aSdrh ** Goto B # The loop is finished. 22136f82e85aSdrh ** 22146f82e85aSdrh ** A: <loop body> # Return data, whatever. 22156f82e85aSdrh ** 22166f82e85aSdrh ** Return 2 # Jump back to the Gosub 22176f82e85aSdrh ** 22186f82e85aSdrh ** B: <after the loop> 22196f82e85aSdrh ** 22206f82e85aSdrh ** Added 2014-05-26: If the table is a WITHOUT ROWID table, then 22216f82e85aSdrh ** use an ephemeral index instead of a RowSet to record the primary 22226f82e85aSdrh ** keys of the rows we have already seen. 22236f82e85aSdrh ** 22246f82e85aSdrh */ 22256f82e85aSdrh WhereClause *pOrWc; /* The OR-clause broken out into subterms */ 22266f82e85aSdrh SrcList *pOrTab; /* Shortened table list or OR-clause generation */ 22276f82e85aSdrh Index *pCov = 0; /* Potential covering index (or NULL) */ 22286f82e85aSdrh int iCovCur = pParse->nTab++; /* Cursor used for index scans (if any) */ 22296f82e85aSdrh 22306f82e85aSdrh int regReturn = ++pParse->nMem; /* Register used with OP_Gosub */ 22316f82e85aSdrh int regRowset = 0; /* Register for RowSet object */ 22326f82e85aSdrh int regRowid = 0; /* Register holding rowid */ 2233ec4ccdbcSdrh int iLoopBody = sqlite3VdbeMakeLabel(pParse);/* Start of loop body */ 22346f82e85aSdrh int iRetInit; /* Address of regReturn init */ 22356f82e85aSdrh int untestedTerms = 0; /* Some terms not completely tested */ 22366f82e85aSdrh int ii; /* Loop counter */ 22376f82e85aSdrh Expr *pAndExpr = 0; /* An ".. AND (...)" expression */ 22386f82e85aSdrh Table *pTab = pTabItem->pTab; 22396f82e85aSdrh 22406f82e85aSdrh pTerm = pLoop->aLTerm[0]; 22416f82e85aSdrh assert( pTerm!=0 ); 22426f82e85aSdrh assert( pTerm->eOperator & WO_OR ); 22436f82e85aSdrh assert( (pTerm->wtFlags & TERM_ORINFO)!=0 ); 22446f82e85aSdrh pOrWc = &pTerm->u.pOrInfo->wc; 22456f82e85aSdrh pLevel->op = OP_Return; 22466f82e85aSdrh pLevel->p1 = regReturn; 22476f82e85aSdrh 22486f82e85aSdrh /* Set up a new SrcList in pOrTab containing the table being scanned 22496f82e85aSdrh ** by this loop in the a[0] slot and all notReady tables in a[1..] slots. 22506f82e85aSdrh ** This becomes the SrcList in the recursive call to sqlite3WhereBegin(). 22516f82e85aSdrh */ 22526f82e85aSdrh if( pWInfo->nLevel>1 ){ 22536f82e85aSdrh int nNotReady; /* The number of notReady tables */ 22547601294aSdrh SrcItem *origSrc; /* Original list of tables */ 22556f82e85aSdrh nNotReady = pWInfo->nLevel - iLevel - 1; 22566f82e85aSdrh pOrTab = sqlite3StackAllocRaw(db, 22576f82e85aSdrh sizeof(*pOrTab)+ nNotReady*sizeof(pOrTab->a[0])); 22586f82e85aSdrh if( pOrTab==0 ) return notReady; 22596f82e85aSdrh pOrTab->nAlloc = (u8)(nNotReady + 1); 22606f82e85aSdrh pOrTab->nSrc = pOrTab->nAlloc; 22616f82e85aSdrh memcpy(pOrTab->a, pTabItem, sizeof(*pTabItem)); 22626f82e85aSdrh origSrc = pWInfo->pTabList->a; 22636f82e85aSdrh for(k=1; k<=nNotReady; k++){ 22646f82e85aSdrh memcpy(&pOrTab->a[k], &origSrc[pLevel[k].iFrom], sizeof(pOrTab->a[k])); 22656f82e85aSdrh } 22666f82e85aSdrh }else{ 22676f82e85aSdrh pOrTab = pWInfo->pTabList; 22686f82e85aSdrh } 22696f82e85aSdrh 22706f82e85aSdrh /* Initialize the rowset register to contain NULL. An SQL NULL is 22716f82e85aSdrh ** equivalent to an empty rowset. Or, create an ephemeral index 22726f82e85aSdrh ** capable of holding primary keys in the case of a WITHOUT ROWID. 22736f82e85aSdrh ** 22746f82e85aSdrh ** Also initialize regReturn to contain the address of the instruction 22756f82e85aSdrh ** immediately following the OP_Return at the bottom of the loop. This 22766f82e85aSdrh ** is required in a few obscure LEFT JOIN cases where control jumps 22776f82e85aSdrh ** over the top of the loop into the body of it. In this case the 22786f82e85aSdrh ** correct response for the end-of-loop code (the OP_Return) is to 22796f82e85aSdrh ** fall through to the next instruction, just as an OP_Next does if 22806f82e85aSdrh ** called on an uninitialized cursor. 22816f82e85aSdrh */ 22826f82e85aSdrh if( (pWInfo->wctrlFlags & WHERE_DUPLICATES_OK)==0 ){ 22836f82e85aSdrh if( HasRowid(pTab) ){ 22846f82e85aSdrh regRowset = ++pParse->nMem; 22856f82e85aSdrh sqlite3VdbeAddOp2(v, OP_Null, 0, regRowset); 22866f82e85aSdrh }else{ 22876f82e85aSdrh Index *pPk = sqlite3PrimaryKeyIndex(pTab); 22886f82e85aSdrh regRowset = pParse->nTab++; 22896f82e85aSdrh sqlite3VdbeAddOp2(v, OP_OpenEphemeral, regRowset, pPk->nKeyCol); 22906f82e85aSdrh sqlite3VdbeSetP4KeyInfo(pParse, pPk); 22916f82e85aSdrh } 22926f82e85aSdrh regRowid = ++pParse->nMem; 22936f82e85aSdrh } 22946f82e85aSdrh iRetInit = sqlite3VdbeAddOp2(v, OP_Integer, 0, regReturn); 22956f82e85aSdrh 22966f82e85aSdrh /* If the original WHERE clause is z of the form: (x1 OR x2 OR ...) AND y 22976f82e85aSdrh ** Then for every term xN, evaluate as the subexpression: xN AND z 22986f82e85aSdrh ** That way, terms in y that are factored into the disjunction will 22996f82e85aSdrh ** be picked up by the recursive calls to sqlite3WhereBegin() below. 23006f82e85aSdrh ** 23016f82e85aSdrh ** Actually, each subexpression is converted to "xN AND w" where w is 23026f82e85aSdrh ** the "interesting" terms of z - terms that did not originate in the 23036f82e85aSdrh ** ON or USING clause of a LEFT JOIN, and terms that are usable as 23046f82e85aSdrh ** indices. 23056f82e85aSdrh ** 23066f82e85aSdrh ** This optimization also only applies if the (x1 OR x2 OR ...) term 23076f82e85aSdrh ** is not contained in the ON clause of a LEFT JOIN. 23086f82e85aSdrh ** See ticket http://www.sqlite.org/src/info/f2369304e4 23096f82e85aSdrh */ 23106f82e85aSdrh if( pWC->nTerm>1 ){ 23116f82e85aSdrh int iTerm; 23126f82e85aSdrh for(iTerm=0; iTerm<pWC->nTerm; iTerm++){ 23136f82e85aSdrh Expr *pExpr = pWC->a[iTerm].pExpr; 23146f82e85aSdrh if( &pWC->a[iTerm] == pTerm ) continue; 23153b83f0cdSdrh testcase( pWC->a[iTerm].wtFlags & TERM_VIRTUAL ); 23163b83f0cdSdrh testcase( pWC->a[iTerm].wtFlags & TERM_CODED ); 23173b83f0cdSdrh if( (pWC->a[iTerm].wtFlags & (TERM_VIRTUAL|TERM_CODED))!=0 ) continue; 23186f82e85aSdrh if( (pWC->a[iTerm].eOperator & WO_ALL)==0 ) continue; 23196f82e85aSdrh testcase( pWC->a[iTerm].wtFlags & TERM_ORINFO ); 23206f82e85aSdrh pExpr = sqlite3ExprDup(db, pExpr, 0); 2321d5c851c1Sdrh pAndExpr = sqlite3ExprAnd(pParse, pAndExpr, pExpr); 23226f82e85aSdrh } 23236f82e85aSdrh if( pAndExpr ){ 2324f1722baaSdrh /* The extra 0x10000 bit on the opcode is masked off and does not 2325f1722baaSdrh ** become part of the new Expr.op. However, it does make the 2326f1722baaSdrh ** op==TK_AND comparison inside of sqlite3PExpr() false, and this 232793ffb50fSdrh ** prevents sqlite3PExpr() from applying the AND short-circuit 2328f1722baaSdrh ** optimization, which we do not want here. */ 2329f1722baaSdrh pAndExpr = sqlite3PExpr(pParse, TK_AND|0x10000, 0, pAndExpr); 23306f82e85aSdrh } 23316f82e85aSdrh } 23326f82e85aSdrh 23336f82e85aSdrh /* Run a separate WHERE clause for each term of the OR clause. After 23346f82e85aSdrh ** eliminating duplicates from other WHERE clauses, the action for each 23356f82e85aSdrh ** sub-WHERE clause is to to invoke the main loop body as a subroutine. 23366f82e85aSdrh */ 23375d72d924Sdrh ExplainQueryPlan((pParse, 1, "MULTI-INDEX OR")); 23386f82e85aSdrh for(ii=0; ii<pOrWc->nTerm; ii++){ 23396f82e85aSdrh WhereTerm *pOrTerm = &pOrWc->a[ii]; 23406f82e85aSdrh if( pOrTerm->leftCursor==iCur || (pOrTerm->eOperator & WO_AND)!=0 ){ 23416f82e85aSdrh WhereInfo *pSubWInfo; /* Info for single OR-term scan */ 23426f82e85aSdrh Expr *pOrExpr = pOrTerm->pExpr; /* Current OR clause term */ 234393ffb50fSdrh Expr *pDelete; /* Local copy of OR clause term */ 2344728e0f91Sdrh int jmp1 = 0; /* Address of jump operation */ 23453b8eb08bSdrh testcase( (pTabItem[0].fg.jointype & JT_LEFT)!=0 23463b8eb08bSdrh && !ExprHasProperty(pOrExpr, EP_FromJoin) 23473b8eb08bSdrh ); /* See TH3 vtab25.400 and ticket 614b25314c766238 */ 234893ffb50fSdrh pDelete = pOrExpr = sqlite3ExprDup(db, pOrExpr, 0); 234993ffb50fSdrh if( db->mallocFailed ){ 235093ffb50fSdrh sqlite3ExprDelete(db, pDelete); 235193ffb50fSdrh continue; 235293ffb50fSdrh } 2353820fcd2cSdan if( pAndExpr ){ 23546f82e85aSdrh pAndExpr->pLeft = pOrExpr; 23556f82e85aSdrh pOrExpr = pAndExpr; 23566f82e85aSdrh } 23576f82e85aSdrh /* Loop through table entries that match term pOrTerm. */ 2358bd462bccSdrh ExplainQueryPlan((pParse, 1, "INDEX %d", ii+1)); 23596f82e85aSdrh WHERETRACE(0xffff, ("Subplan for OR-clause:\n")); 23606f82e85aSdrh pSubWInfo = sqlite3WhereBegin(pParse, pOrTab, pOrExpr, 0, 0, 236168c0c710Sdrh WHERE_OR_SUBCLAUSE, iCovCur); 23626f82e85aSdrh assert( pSubWInfo || pParse->nErr || db->mallocFailed ); 23636f82e85aSdrh if( pSubWInfo ){ 23646f82e85aSdrh WhereLoop *pSubLoop; 23656f82e85aSdrh int addrExplain = sqlite3WhereExplainOneScan( 2366e2188f0bSdrh pParse, pOrTab, &pSubWInfo->a[0], 0 23676f82e85aSdrh ); 23686f82e85aSdrh sqlite3WhereAddScanStatus(v, pOrTab, &pSubWInfo->a[0], addrExplain); 23696f82e85aSdrh 23706f82e85aSdrh /* This is the sub-WHERE clause body. First skip over 23716f82e85aSdrh ** duplicate rows from prior sub-WHERE clauses, and record the 23726f82e85aSdrh ** rowid (or PRIMARY KEY) for the current row so that the same 23736f82e85aSdrh ** row will be skipped in subsequent sub-WHERE clauses. 23746f82e85aSdrh */ 23756f82e85aSdrh if( (pWInfo->wctrlFlags & WHERE_DUPLICATES_OK)==0 ){ 23766f82e85aSdrh int iSet = ((ii==pOrWc->nTerm-1)?-1:ii); 23776f82e85aSdrh if( HasRowid(pTab) ){ 23786df9c4b9Sdrh sqlite3ExprCodeGetColumnOfTable(v, pTab, iCur, -1, regRowid); 2379728e0f91Sdrh jmp1 = sqlite3VdbeAddOp4Int(v, OP_RowSetTest, regRowset, 0, 23808c607191Sdrh regRowid, iSet); 23816f82e85aSdrh VdbeCoverage(v); 23826f82e85aSdrh }else{ 23836f82e85aSdrh Index *pPk = sqlite3PrimaryKeyIndex(pTab); 23846f82e85aSdrh int nPk = pPk->nKeyCol; 23856f82e85aSdrh int iPk; 23868c607191Sdrh int r; 23876f82e85aSdrh 23886f82e85aSdrh /* Read the PK into an array of temp registers. */ 23896f82e85aSdrh r = sqlite3GetTempRange(pParse, nPk); 23906f82e85aSdrh for(iPk=0; iPk<nPk; iPk++){ 23916f82e85aSdrh int iCol = pPk->aiColumn[iPk]; 23926df9c4b9Sdrh sqlite3ExprCodeGetColumnOfTable(v, pTab, iCur, iCol,r+iPk); 23936f82e85aSdrh } 23946f82e85aSdrh 23956f82e85aSdrh /* Check if the temp table already contains this key. If so, 23966f82e85aSdrh ** the row has already been included in the result set and 23976f82e85aSdrh ** can be ignored (by jumping past the Gosub below). Otherwise, 23986f82e85aSdrh ** insert the key into the temp table and proceed with processing 23996f82e85aSdrh ** the row. 24006f82e85aSdrh ** 24016f82e85aSdrh ** Use some of the same optimizations as OP_RowSetTest: If iSet 24026f82e85aSdrh ** is zero, assume that the key cannot already be present in 24036f82e85aSdrh ** the temp table. And if iSet is -1, assume that there is no 24046f82e85aSdrh ** need to insert the key into the temp table, as it will never 24056f82e85aSdrh ** be tested for. */ 24066f82e85aSdrh if( iSet ){ 2407728e0f91Sdrh jmp1 = sqlite3VdbeAddOp4Int(v, OP_Found, regRowset, 0, r, nPk); 24086f82e85aSdrh VdbeCoverage(v); 24096f82e85aSdrh } 24106f82e85aSdrh if( iSet>=0 ){ 24116f82e85aSdrh sqlite3VdbeAddOp3(v, OP_MakeRecord, r, nPk, regRowid); 24129b4eaebcSdrh sqlite3VdbeAddOp4Int(v, OP_IdxInsert, regRowset, regRowid, 24139b4eaebcSdrh r, nPk); 24146f82e85aSdrh if( iSet ) sqlite3VdbeChangeP5(v, OPFLAG_USESEEKRESULT); 24156f82e85aSdrh } 24166f82e85aSdrh 24176f82e85aSdrh /* Release the array of temp registers */ 24186f82e85aSdrh sqlite3ReleaseTempRange(pParse, r, nPk); 24196f82e85aSdrh } 24206f82e85aSdrh } 24216f82e85aSdrh 24226f82e85aSdrh /* Invoke the main loop body as a subroutine */ 24236f82e85aSdrh sqlite3VdbeAddOp2(v, OP_Gosub, regReturn, iLoopBody); 24246f82e85aSdrh 24256f82e85aSdrh /* Jump here (skipping the main loop body subroutine) if the 24266f82e85aSdrh ** current sub-WHERE row is a duplicate from prior sub-WHEREs. */ 2427728e0f91Sdrh if( jmp1 ) sqlite3VdbeJumpHere(v, jmp1); 24286f82e85aSdrh 24296f82e85aSdrh /* The pSubWInfo->untestedTerms flag means that this OR term 24306f82e85aSdrh ** contained one or more AND term from a notReady table. The 24316f82e85aSdrh ** terms from the notReady table could not be tested and will 24326f82e85aSdrh ** need to be tested later. 24336f82e85aSdrh */ 24346f82e85aSdrh if( pSubWInfo->untestedTerms ) untestedTerms = 1; 24356f82e85aSdrh 24366f82e85aSdrh /* If all of the OR-connected terms are optimized using the same 24376f82e85aSdrh ** index, and the index is opened using the same cursor number 24386f82e85aSdrh ** by each call to sqlite3WhereBegin() made by this loop, it may 24396f82e85aSdrh ** be possible to use that index as a covering index. 24406f82e85aSdrh ** 24416f82e85aSdrh ** If the call to sqlite3WhereBegin() above resulted in a scan that 24426f82e85aSdrh ** uses an index, and this is either the first OR-connected term 24436f82e85aSdrh ** processed or the index is the same as that used by all previous 24446f82e85aSdrh ** terms, set pCov to the candidate covering index. Otherwise, set 24456f82e85aSdrh ** pCov to NULL to indicate that no candidate covering index will 24466f82e85aSdrh ** be available. 24476f82e85aSdrh */ 24486f82e85aSdrh pSubLoop = pSubWInfo->a[0].pWLoop; 24496f82e85aSdrh assert( (pSubLoop->wsFlags & WHERE_AUTO_INDEX)==0 ); 24506f82e85aSdrh if( (pSubLoop->wsFlags & WHERE_INDEXED)!=0 24516f82e85aSdrh && (ii==0 || pSubLoop->u.btree.pIndex==pCov) 24526f82e85aSdrh && (HasRowid(pTab) || !IsPrimaryKeyIndex(pSubLoop->u.btree.pIndex)) 24536f82e85aSdrh ){ 24546f82e85aSdrh assert( pSubWInfo->a[0].iIdxCur==iCovCur ); 24556f82e85aSdrh pCov = pSubLoop->u.btree.pIndex; 24566f82e85aSdrh }else{ 24576f82e85aSdrh pCov = 0; 24586f82e85aSdrh } 245968c0c710Sdrh if( sqlite3WhereUsesDeferredSeek(pSubWInfo) ){ 246068c0c710Sdrh pWInfo->bDeferredSeek = 1; 246168c0c710Sdrh } 24626f82e85aSdrh 24636f82e85aSdrh /* Finish the loop through table entries that match term pOrTerm. */ 24646f82e85aSdrh sqlite3WhereEnd(pSubWInfo); 2465bd462bccSdrh ExplainQueryPlanPop(pParse); 24666f82e85aSdrh } 246793ffb50fSdrh sqlite3ExprDelete(db, pDelete); 24686f82e85aSdrh } 24696f82e85aSdrh } 24705d72d924Sdrh ExplainQueryPlanPop(pParse); 24710475629dSdrh assert( pLevel->pWLoop==pLoop ); 24720475629dSdrh assert( (pLoop->wsFlags & WHERE_MULTI_OR)!=0 ); 24730475629dSdrh assert( (pLoop->wsFlags & WHERE_IN_ABLE)==0 ); 24740475629dSdrh pLevel->u.pCoveringIdx = pCov; 24756f82e85aSdrh if( pCov ) pLevel->iIdxCur = iCovCur; 24766f82e85aSdrh if( pAndExpr ){ 24776f82e85aSdrh pAndExpr->pLeft = 0; 24786f82e85aSdrh sqlite3ExprDelete(db, pAndExpr); 24796f82e85aSdrh } 24806f82e85aSdrh sqlite3VdbeChangeP1(v, iRetInit, sqlite3VdbeCurrentAddr(v)); 2481076e85f5Sdrh sqlite3VdbeGoto(v, pLevel->addrBrk); 24826f82e85aSdrh sqlite3VdbeResolveLabel(v, iLoopBody); 24836f82e85aSdrh 2484dd2d9a3dSdrh if( pWInfo->nLevel>1 ){ sqlite3StackFree(db, pOrTab); } 24856f82e85aSdrh if( !untestedTerms ) disableTerm(pLevel, pTerm); 24866f82e85aSdrh }else 24876f82e85aSdrh #endif /* SQLITE_OMIT_OR_OPTIMIZATION */ 24886f82e85aSdrh 24896f82e85aSdrh { 24906f82e85aSdrh /* Case 6: There is no usable index. We must do a complete 24916f82e85aSdrh ** scan of the entire table. 24926f82e85aSdrh */ 24936f82e85aSdrh static const u8 aStep[] = { OP_Next, OP_Prev }; 24946f82e85aSdrh static const u8 aStart[] = { OP_Rewind, OP_Last }; 24956f82e85aSdrh assert( bRev==0 || bRev==1 ); 24968a48b9c0Sdrh if( pTabItem->fg.isRecursive ){ 24976f82e85aSdrh /* Tables marked isRecursive have only a single row that is stored in 24986f82e85aSdrh ** a pseudo-cursor. No need to Rewind or Next such cursors. */ 24996f82e85aSdrh pLevel->op = OP_Noop; 25006f82e85aSdrh }else{ 2501b324cf75Sdan codeCursorHint(pTabItem, pWInfo, pLevel, 0); 25026f82e85aSdrh pLevel->op = aStep[bRev]; 25036f82e85aSdrh pLevel->p1 = iCur; 25043a3b420aSdrh pLevel->p2 = 1 + sqlite3VdbeAddOp2(v, aStart[bRev], iCur, addrHalt); 25056f82e85aSdrh VdbeCoverageIf(v, bRev==0); 25066f82e85aSdrh VdbeCoverageIf(v, bRev!=0); 25076f82e85aSdrh pLevel->p5 = SQLITE_STMTSTATUS_FULLSCAN_STEP; 25086f82e85aSdrh } 25096f82e85aSdrh } 25106f82e85aSdrh 25116f82e85aSdrh #ifdef SQLITE_ENABLE_STMT_SCANSTATUS 25126f82e85aSdrh pLevel->addrVisit = sqlite3VdbeCurrentAddr(v); 25136f82e85aSdrh #endif 25146f82e85aSdrh 25156f82e85aSdrh /* Insert code to test every subexpression that can be completely 25166f82e85aSdrh ** computed using the current set of tables. 25176f654a40Sdan ** 2518ebc63013Sdan ** This loop may run between one and three times, depending on the 2519ebc63013Sdan ** constraints to be generated. The value of stack variable iLoop 2520ebc63013Sdan ** determines the constraints coded by each iteration, as follows: 2521ebc63013Sdan ** 2522ebc63013Sdan ** iLoop==1: Code only expressions that are entirely covered by pIdx. 2523ebc63013Sdan ** iLoop==2: Code remaining expressions that do not contain correlated 2524ebc63013Sdan ** sub-queries. 2525ebc63013Sdan ** iLoop==3: Code all remaining expressions. 2526ebc63013Sdan ** 2527ebc63013Sdan ** An effort is made to skip unnecessary iterations of the loop. 25286ab3eb5dSdrh */ 2529ebc63013Sdan iLoop = (pIdx ? 1 : 2); 25306ab3eb5dSdrh do{ 2531ebc63013Sdan int iNext = 0; /* Next value for iLoop */ 25326f82e85aSdrh for(pTerm=pWC->a, j=pWC->nTerm; j>0; j--, pTerm++){ 25336f82e85aSdrh Expr *pE; 25346f82e85aSdrh int skipLikeAddr = 0; 25356f82e85aSdrh testcase( pTerm->wtFlags & TERM_VIRTUAL ); 25366f82e85aSdrh testcase( pTerm->wtFlags & TERM_CODED ); 25376f82e85aSdrh if( pTerm->wtFlags & (TERM_VIRTUAL|TERM_CODED) ) continue; 25386f82e85aSdrh if( (pTerm->prereqAll & pLevel->notReady)!=0 ){ 25396f82e85aSdrh testcase( pWInfo->untestedTerms==0 2540ce943bc8Sdrh && (pWInfo->wctrlFlags & WHERE_OR_SUBCLAUSE)!=0 ); 25416f82e85aSdrh pWInfo->untestedTerms = 1; 25426f82e85aSdrh continue; 25436f82e85aSdrh } 25446f82e85aSdrh pE = pTerm->pExpr; 25456f82e85aSdrh assert( pE!=0 ); 2546820fcd2cSdan if( (pTabItem->fg.jointype&JT_LEFT) && !ExprHasProperty(pE,EP_FromJoin) ){ 25476f654a40Sdan continue; 25486f654a40Sdan } 2549ebc63013Sdan 25508674ec5aSdan if( iLoop==1 && !sqlite3ExprCoveredByIndex(pE, pLevel->iTabCur, pIdx) ){ 2551ebc63013Sdan iNext = 2; 25526f82e85aSdrh continue; 25536f82e85aSdrh } 2554d3930b12Sdan if( iLoop<3 && (pTerm->wtFlags & TERM_VARSELECT) ){ 2555ebc63013Sdan if( iNext==0 ) iNext = 3; 2556ebc63013Sdan continue; 2557ebc63013Sdan } 2558ebc63013Sdan 25594de3353dSdrh if( (pTerm->wtFlags & TERM_LIKECOND)!=0 ){ 256044aebff2Sdrh /* If the TERM_LIKECOND flag is set, that means that the range search 256144aebff2Sdrh ** is sufficient to guarantee that the LIKE operator is true, so we 256244aebff2Sdrh ** can skip the call to the like(A,B) function. But this only works 256344aebff2Sdrh ** for strings. So do not skip the call to the function on the pass 256444aebff2Sdrh ** that compares BLOBs. */ 256541d2e66eSdrh #ifdef SQLITE_LIKE_DOESNT_MATCH_BLOBS 256641d2e66eSdrh continue; 256741d2e66eSdrh #else 256844aebff2Sdrh u32 x = pLevel->iLikeRepCntr; 25694de3353dSdrh if( x>0 ){ 257044aebff2Sdrh skipLikeAddr = sqlite3VdbeAddOp1(v, (x&1)?OP_IfNot:OP_If,(int)(x>>1)); 25716f88359dSdrh VdbeCoverageIf(v, (x&1)==1); 25726f88359dSdrh VdbeCoverageIf(v, (x&1)==0); 25734de3353dSdrh } 257441d2e66eSdrh #endif 25756f82e85aSdrh } 257666a0bf31Sdrh #ifdef WHERETRACE_ENABLED /* 0xffff */ 257766a0bf31Sdrh if( sqlite3WhereTrace ){ 257866a0bf31Sdrh VdbeNoopComment((v, "WhereTerm[%d] (%p) priority=%d", 257966a0bf31Sdrh pWC->nTerm-j, pTerm, iLoop)); 258066a0bf31Sdrh } 2581118efd16Sdrh if( sqlite3WhereTrace & 0x800 ){ 2582118efd16Sdrh sqlite3DebugPrintf("Coding auxiliary constraint:\n"); 2583118efd16Sdrh sqlite3WhereTermPrint(pTerm, pWC->nTerm-j); 2584118efd16Sdrh } 258566a0bf31Sdrh #endif 25866f82e85aSdrh sqlite3ExprIfFalse(pParse, pE, addrCont, SQLITE_JUMPIFNULL); 25876f82e85aSdrh if( skipLikeAddr ) sqlite3VdbeJumpHere(v, skipLikeAddr); 25886f82e85aSdrh pTerm->wtFlags |= TERM_CODED; 25896f82e85aSdrh } 2590ebc63013Sdan iLoop = iNext; 2591ebc63013Sdan }while( iLoop>0 ); 25926f82e85aSdrh 25936f82e85aSdrh /* Insert code to test for implied constraints based on transitivity 25946f82e85aSdrh ** of the "==" operator. 25956f82e85aSdrh ** 25966f82e85aSdrh ** Example: If the WHERE clause contains "t1.a=t2.b" and "t2.b=123" 25976f82e85aSdrh ** and we are coding the t1 loop and the t2 loop has not yet coded, 25986f82e85aSdrh ** then we cannot use the "t1.a=t2.b" constraint, but we can code 25996f82e85aSdrh ** the implied "t1.a=123" constraint. 26006f82e85aSdrh */ 26016f82e85aSdrh for(pTerm=pWC->a, j=pWC->nTerm; j>0; j--, pTerm++){ 2602cb43a937Sdrh Expr *pE, sEAlt; 26036f82e85aSdrh WhereTerm *pAlt; 26046f82e85aSdrh if( pTerm->wtFlags & (TERM_VIRTUAL|TERM_CODED) ) continue; 26056f82e85aSdrh if( (pTerm->eOperator & (WO_EQ|WO_IS))==0 ) continue; 26066f82e85aSdrh if( (pTerm->eOperator & WO_EQUIV)==0 ) continue; 26076f82e85aSdrh if( pTerm->leftCursor!=iCur ) continue; 2608a4b2df5cSdrh if( pTabItem->fg.jointype & JT_LEFT ) continue; 26096f82e85aSdrh pE = pTerm->pExpr; 2610118efd16Sdrh #ifdef WHERETRACE_ENABLED /* 0x800 */ 2611118efd16Sdrh if( sqlite3WhereTrace & 0x800 ){ 2612118efd16Sdrh sqlite3DebugPrintf("Coding transitive constraint:\n"); 2613118efd16Sdrh sqlite3WhereTermPrint(pTerm, pWC->nTerm-j); 2614118efd16Sdrh } 2615118efd16Sdrh #endif 2616f1bb31e2Sdrh assert( !ExprHasProperty(pE, EP_FromJoin) ); 26176f82e85aSdrh assert( (pTerm->prereqRight & pLevel->notReady)!=0 ); 2618220f0d6fSdrh assert( (pTerm->eOperator & (WO_OR|WO_AND))==0 ); 261975fa2663Sdrh pAlt = sqlite3WhereFindTerm(pWC, iCur, pTerm->u.x.leftColumn, notReady, 26206f82e85aSdrh WO_EQ|WO_IN|WO_IS, 0); 26216f82e85aSdrh if( pAlt==0 ) continue; 26226f82e85aSdrh if( pAlt->wtFlags & (TERM_CODED) ) continue; 2623a916b570Sdan if( (pAlt->eOperator & WO_IN) 2624a4eeccdfSdrh && ExprUseXSelect(pAlt->pExpr) 2625a599e150Sdrh && (pAlt->pExpr->x.pSelect->pEList->nExpr>1) 2626a916b570Sdan ){ 2627a916b570Sdan continue; 2628a916b570Sdan } 26296f82e85aSdrh testcase( pAlt->eOperator & WO_EQ ); 26306f82e85aSdrh testcase( pAlt->eOperator & WO_IS ); 26316f82e85aSdrh testcase( pAlt->eOperator & WO_IN ); 26326f82e85aSdrh VdbeModuleComment((v, "begin transitive constraint")); 2633cb43a937Sdrh sEAlt = *pAlt->pExpr; 2634cb43a937Sdrh sEAlt.pLeft = pE->pLeft; 2635cb43a937Sdrh sqlite3ExprIfFalse(pParse, &sEAlt, addrCont, SQLITE_JUMPIFNULL); 2636240e36c0Sdan pAlt->wtFlags |= TERM_CODED; 26376f82e85aSdrh } 26386f82e85aSdrh 26396f82e85aSdrh /* For a LEFT OUTER JOIN, generate code that will record the fact that 26406f82e85aSdrh ** at least one row of the right table has matched the left table. 26416f82e85aSdrh */ 26426f82e85aSdrh if( pLevel->iLeftJoin ){ 26436f82e85aSdrh pLevel->addrFirst = sqlite3VdbeCurrentAddr(v); 26446f82e85aSdrh sqlite3VdbeAddOp2(v, OP_Integer, 1, pLevel->iLeftJoin); 26456f82e85aSdrh VdbeComment((v, "record LEFT JOIN hit")); 26466f82e85aSdrh for(pTerm=pWC->a, j=0; j<pWC->nTerm; j++, pTerm++){ 26476f82e85aSdrh testcase( pTerm->wtFlags & TERM_VIRTUAL ); 26486f82e85aSdrh testcase( pTerm->wtFlags & TERM_CODED ); 26496f82e85aSdrh if( pTerm->wtFlags & (TERM_VIRTUAL|TERM_CODED) ) continue; 26506f82e85aSdrh if( (pTerm->prereqAll & pLevel->notReady)!=0 ){ 26516f82e85aSdrh assert( pWInfo->untestedTerms ); 26526f82e85aSdrh continue; 26536f82e85aSdrh } 26546f82e85aSdrh assert( pTerm->pExpr ); 26556f82e85aSdrh sqlite3ExprIfFalse(pParse, pTerm->pExpr, addrCont, SQLITE_JUMPIFNULL); 26566f82e85aSdrh pTerm->wtFlags |= TERM_CODED; 26576f82e85aSdrh } 26586f82e85aSdrh } 26596f82e85aSdrh 2660118efd16Sdrh #if WHERETRACE_ENABLED /* 0x20800 */ 2661118efd16Sdrh if( sqlite3WhereTrace & 0x20000 ){ 2662f1bb31e2Sdrh sqlite3DebugPrintf("All WHERE-clause terms after coding level %d:\n", 2663f1bb31e2Sdrh iLevel); 2664118efd16Sdrh sqlite3WhereClausePrint(pWC); 2665118efd16Sdrh } 2666118efd16Sdrh if( sqlite3WhereTrace & 0x800 ){ 2667118efd16Sdrh sqlite3DebugPrintf("End Coding level %d: notReady=%llx\n", 2668118efd16Sdrh iLevel, (u64)pLevel->notReady); 2669118efd16Sdrh } 2670118efd16Sdrh #endif 26716f82e85aSdrh return pLevel->notReady; 26726f82e85aSdrh } 2673