xref: /sqlite-3.40.0/src/where.c (revision 52b1dbb5)
1 /*
2 ** 2001 September 15
3 **
4 ** The author disclaims copyright to this source code.  In place of
5 ** a legal notice, here is a blessing:
6 **
7 **    May you do good and not evil.
8 **    May you find forgiveness for yourself and forgive others.
9 **    May you share freely, never taking more than you give.
10 **
11 *************************************************************************
12 ** This module contains C code that generates VDBE code used to process
13 ** the WHERE clause of SQL statements.  This module is responsible for
14 ** generating the code that loops through a table looking for applicable
15 ** rows.  Indices are selected and used to speed the search when doing
16 ** so is applicable.  Because this module is responsible for selecting
17 ** indices, you might also think of this module as the "query optimizer".
18 */
19 #include "sqliteInt.h"
20 #include "whereInt.h"
21 
22 /* Forward declaration of methods */
23 static int whereLoopResize(sqlite3*, WhereLoop*, int);
24 
25 /* Test variable that can be set to enable WHERE tracing */
26 #if defined(SQLITE_TEST) || defined(SQLITE_DEBUG)
27 /***/ int sqlite3WhereTrace = 0;
28 #endif
29 
30 
31 /*
32 ** Return the estimated number of output rows from a WHERE clause
33 */
34 LogEst sqlite3WhereOutputRowCount(WhereInfo *pWInfo){
35   return pWInfo->nRowOut;
36 }
37 
38 /*
39 ** Return one of the WHERE_DISTINCT_xxxxx values to indicate how this
40 ** WHERE clause returns outputs for DISTINCT processing.
41 */
42 int sqlite3WhereIsDistinct(WhereInfo *pWInfo){
43   return pWInfo->eDistinct;
44 }
45 
46 /*
47 ** Return TRUE if the WHERE clause returns rows in ORDER BY order.
48 ** Return FALSE if the output needs to be sorted.
49 */
50 int sqlite3WhereIsOrdered(WhereInfo *pWInfo){
51   return pWInfo->nOBSat;
52 }
53 
54 /*
55 ** Return TRUE if the innermost loop of the WHERE clause implementation
56 ** returns rows in ORDER BY order for complete run of the inner loop.
57 **
58 ** Across multiple iterations of outer loops, the output rows need not be
59 ** sorted.  As long as rows are sorted for just the innermost loop, this
60 ** routine can return TRUE.
61 */
62 int sqlite3WhereOrderedInnerLoop(WhereInfo *pWInfo){
63   return pWInfo->bOrderedInnerLoop;
64 }
65 
66 /*
67 ** Return the VDBE address or label to jump to in order to continue
68 ** immediately with the next row of a WHERE clause.
69 */
70 int sqlite3WhereContinueLabel(WhereInfo *pWInfo){
71   assert( pWInfo->iContinue!=0 );
72   return pWInfo->iContinue;
73 }
74 
75 /*
76 ** Return the VDBE address or label to jump to in order to break
77 ** out of a WHERE loop.
78 */
79 int sqlite3WhereBreakLabel(WhereInfo *pWInfo){
80   return pWInfo->iBreak;
81 }
82 
83 /*
84 ** Return ONEPASS_OFF (0) if an UPDATE or DELETE statement is unable to
85 ** operate directly on the rowis returned by a WHERE clause.  Return
86 ** ONEPASS_SINGLE (1) if the statement can operation directly because only
87 ** a single row is to be changed.  Return ONEPASS_MULTI (2) if the one-pass
88 ** optimization can be used on multiple
89 **
90 ** If the ONEPASS optimization is used (if this routine returns true)
91 ** then also write the indices of open cursors used by ONEPASS
92 ** into aiCur[0] and aiCur[1].  iaCur[0] gets the cursor of the data
93 ** table and iaCur[1] gets the cursor used by an auxiliary index.
94 ** Either value may be -1, indicating that cursor is not used.
95 ** Any cursors returned will have been opened for writing.
96 **
97 ** aiCur[0] and aiCur[1] both get -1 if the where-clause logic is
98 ** unable to use the ONEPASS optimization.
99 */
100 int sqlite3WhereOkOnePass(WhereInfo *pWInfo, int *aiCur){
101   memcpy(aiCur, pWInfo->aiCurOnePass, sizeof(int)*2);
102 #ifdef WHERETRACE_ENABLED
103   if( sqlite3WhereTrace && pWInfo->eOnePass!=ONEPASS_OFF ){
104     sqlite3DebugPrintf("%s cursors: %d %d\n",
105          pWInfo->eOnePass==ONEPASS_SINGLE ? "ONEPASS_SINGLE" : "ONEPASS_MULTI",
106          aiCur[0], aiCur[1]);
107   }
108 #endif
109   return pWInfo->eOnePass;
110 }
111 
112 /*
113 ** Move the content of pSrc into pDest
114 */
115 static void whereOrMove(WhereOrSet *pDest, WhereOrSet *pSrc){
116   pDest->n = pSrc->n;
117   memcpy(pDest->a, pSrc->a, pDest->n*sizeof(pDest->a[0]));
118 }
119 
120 /*
121 ** Try to insert a new prerequisite/cost entry into the WhereOrSet pSet.
122 **
123 ** The new entry might overwrite an existing entry, or it might be
124 ** appended, or it might be discarded.  Do whatever is the right thing
125 ** so that pSet keeps the N_OR_COST best entries seen so far.
126 */
127 static int whereOrInsert(
128   WhereOrSet *pSet,      /* The WhereOrSet to be updated */
129   Bitmask prereq,        /* Prerequisites of the new entry */
130   LogEst rRun,           /* Run-cost of the new entry */
131   LogEst nOut            /* Number of outputs for the new entry */
132 ){
133   u16 i;
134   WhereOrCost *p;
135   for(i=pSet->n, p=pSet->a; i>0; i--, p++){
136     if( rRun<=p->rRun && (prereq & p->prereq)==prereq ){
137       goto whereOrInsert_done;
138     }
139     if( p->rRun<=rRun && (p->prereq & prereq)==p->prereq ){
140       return 0;
141     }
142   }
143   if( pSet->n<N_OR_COST ){
144     p = &pSet->a[pSet->n++];
145     p->nOut = nOut;
146   }else{
147     p = pSet->a;
148     for(i=1; i<pSet->n; i++){
149       if( p->rRun>pSet->a[i].rRun ) p = pSet->a + i;
150     }
151     if( p->rRun<=rRun ) return 0;
152   }
153 whereOrInsert_done:
154   p->prereq = prereq;
155   p->rRun = rRun;
156   if( p->nOut>nOut ) p->nOut = nOut;
157   return 1;
158 }
159 
160 /*
161 ** Return the bitmask for the given cursor number.  Return 0 if
162 ** iCursor is not in the set.
163 */
164 Bitmask sqlite3WhereGetMask(WhereMaskSet *pMaskSet, int iCursor){
165   int i;
166   assert( pMaskSet->n<=(int)sizeof(Bitmask)*8 );
167   for(i=0; i<pMaskSet->n; i++){
168     if( pMaskSet->ix[i]==iCursor ){
169       return MASKBIT(i);
170     }
171   }
172   return 0;
173 }
174 
175 /*
176 ** Create a new mask for cursor iCursor.
177 **
178 ** There is one cursor per table in the FROM clause.  The number of
179 ** tables in the FROM clause is limited by a test early in the
180 ** sqlite3WhereBegin() routine.  So we know that the pMaskSet->ix[]
181 ** array will never overflow.
182 */
183 static void createMask(WhereMaskSet *pMaskSet, int iCursor){
184   assert( pMaskSet->n < ArraySize(pMaskSet->ix) );
185   pMaskSet->ix[pMaskSet->n++] = iCursor;
186 }
187 
188 /*
189 ** Advance to the next WhereTerm that matches according to the criteria
190 ** established when the pScan object was initialized by whereScanInit().
191 ** Return NULL if there are no more matching WhereTerms.
192 */
193 static WhereTerm *whereScanNext(WhereScan *pScan){
194   int iCur;            /* The cursor on the LHS of the term */
195   i16 iColumn;         /* The column on the LHS of the term.  -1 for IPK */
196   Expr *pX;            /* An expression being tested */
197   WhereClause *pWC;    /* Shorthand for pScan->pWC */
198   WhereTerm *pTerm;    /* The term being tested */
199   int k = pScan->k;    /* Where to start scanning */
200 
201   while( pScan->iEquiv<=pScan->nEquiv ){
202     iCur = pScan->aiCur[pScan->iEquiv-1];
203     iColumn = pScan->aiColumn[pScan->iEquiv-1];
204     if( iColumn==XN_EXPR && pScan->pIdxExpr==0 ) return 0;
205     while( (pWC = pScan->pWC)!=0 ){
206       for(pTerm=pWC->a+k; k<pWC->nTerm; k++, pTerm++){
207         if( pTerm->leftCursor==iCur
208          && pTerm->u.leftColumn==iColumn
209          && (iColumn!=XN_EXPR
210              || sqlite3ExprCompare(pTerm->pExpr->pLeft,pScan->pIdxExpr,iCur)==0)
211          && (pScan->iEquiv<=1 || !ExprHasProperty(pTerm->pExpr, EP_FromJoin))
212         ){
213           if( (pTerm->eOperator & WO_EQUIV)!=0
214            && pScan->nEquiv<ArraySize(pScan->aiCur)
215            && (pX = sqlite3ExprSkipCollate(pTerm->pExpr->pRight))->op==TK_COLUMN
216           ){
217             int j;
218             for(j=0; j<pScan->nEquiv; j++){
219               if( pScan->aiCur[j]==pX->iTable
220                && pScan->aiColumn[j]==pX->iColumn ){
221                   break;
222               }
223             }
224             if( j==pScan->nEquiv ){
225               pScan->aiCur[j] = pX->iTable;
226               pScan->aiColumn[j] = pX->iColumn;
227               pScan->nEquiv++;
228             }
229           }
230           if( (pTerm->eOperator & pScan->opMask)!=0 ){
231             /* Verify the affinity and collating sequence match */
232             if( pScan->zCollName && (pTerm->eOperator & WO_ISNULL)==0 ){
233               CollSeq *pColl;
234               Parse *pParse = pWC->pWInfo->pParse;
235               pX = pTerm->pExpr;
236               if( !sqlite3IndexAffinityOk(pX, pScan->idxaff) ){
237                 continue;
238               }
239               assert(pX->pLeft);
240               pColl = sqlite3BinaryCompareCollSeq(pParse,
241                                                   pX->pLeft, pX->pRight);
242               if( pColl==0 ) pColl = pParse->db->pDfltColl;
243               if( sqlite3StrICmp(pColl->zName, pScan->zCollName) ){
244                 continue;
245               }
246             }
247             if( (pTerm->eOperator & (WO_EQ|WO_IS))!=0
248              && (pX = pTerm->pExpr->pRight)->op==TK_COLUMN
249              && pX->iTable==pScan->aiCur[0]
250              && pX->iColumn==pScan->aiColumn[0]
251             ){
252               testcase( pTerm->eOperator & WO_IS );
253               continue;
254             }
255             pScan->k = k+1;
256             return pTerm;
257           }
258         }
259       }
260       pScan->pWC = pScan->pWC->pOuter;
261       k = 0;
262     }
263     pScan->pWC = pScan->pOrigWC;
264     k = 0;
265     pScan->iEquiv++;
266   }
267   return 0;
268 }
269 
270 /*
271 ** Initialize a WHERE clause scanner object.  Return a pointer to the
272 ** first match.  Return NULL if there are no matches.
273 **
274 ** The scanner will be searching the WHERE clause pWC.  It will look
275 ** for terms of the form "X <op> <expr>" where X is column iColumn of table
276 ** iCur.   Or if pIdx!=0 then X is column iColumn of index pIdx.  pIdx
277 ** must be one of the indexes of table iCur.
278 **
279 ** The <op> must be one of the operators described by opMask.
280 **
281 ** If the search is for X and the WHERE clause contains terms of the
282 ** form X=Y then this routine might also return terms of the form
283 ** "Y <op> <expr>".  The number of levels of transitivity is limited,
284 ** but is enough to handle most commonly occurring SQL statements.
285 **
286 ** If X is not the INTEGER PRIMARY KEY then X must be compatible with
287 ** index pIdx.
288 */
289 static WhereTerm *whereScanInit(
290   WhereScan *pScan,       /* The WhereScan object being initialized */
291   WhereClause *pWC,       /* The WHERE clause to be scanned */
292   int iCur,               /* Cursor to scan for */
293   int iColumn,            /* Column to scan for */
294   u32 opMask,             /* Operator(s) to scan for */
295   Index *pIdx             /* Must be compatible with this index */
296 ){
297   int j = 0;
298 
299   /* memset(pScan, 0, sizeof(*pScan)); */
300   pScan->pOrigWC = pWC;
301   pScan->pWC = pWC;
302   pScan->pIdxExpr = 0;
303   if( pIdx ){
304     j = iColumn;
305     iColumn = pIdx->aiColumn[j];
306     if( iColumn==XN_EXPR ) pScan->pIdxExpr = pIdx->aColExpr->a[j].pExpr;
307     if( iColumn==pIdx->pTable->iPKey ) iColumn = XN_ROWID;
308   }
309   if( pIdx && iColumn>=0 ){
310     pScan->idxaff = pIdx->pTable->aCol[iColumn].affinity;
311     pScan->zCollName = pIdx->azColl[j];
312   }else{
313     pScan->idxaff = 0;
314     pScan->zCollName = 0;
315   }
316   pScan->opMask = opMask;
317   pScan->k = 0;
318   pScan->aiCur[0] = iCur;
319   pScan->aiColumn[0] = iColumn;
320   pScan->nEquiv = 1;
321   pScan->iEquiv = 1;
322   return whereScanNext(pScan);
323 }
324 
325 /*
326 ** Search for a term in the WHERE clause that is of the form "X <op> <expr>"
327 ** where X is a reference to the iColumn of table iCur or of index pIdx
328 ** if pIdx!=0 and <op> is one of the WO_xx operator codes specified by
329 ** the op parameter.  Return a pointer to the term.  Return 0 if not found.
330 **
331 ** If pIdx!=0 then it must be one of the indexes of table iCur.
332 ** Search for terms matching the iColumn-th column of pIdx
333 ** rather than the iColumn-th column of table iCur.
334 **
335 ** The term returned might by Y=<expr> if there is another constraint in
336 ** the WHERE clause that specifies that X=Y.  Any such constraints will be
337 ** identified by the WO_EQUIV bit in the pTerm->eOperator field.  The
338 ** aiCur[]/iaColumn[] arrays hold X and all its equivalents. There are 11
339 ** slots in aiCur[]/aiColumn[] so that means we can look for X plus up to 10
340 ** other equivalent values.  Hence a search for X will return <expr> if X=A1
341 ** and A1=A2 and A2=A3 and ... and A9=A10 and A10=<expr>.
342 **
343 ** If there are multiple terms in the WHERE clause of the form "X <op> <expr>"
344 ** then try for the one with no dependencies on <expr> - in other words where
345 ** <expr> is a constant expression of some kind.  Only return entries of
346 ** the form "X <op> Y" where Y is a column in another table if no terms of
347 ** the form "X <op> <const-expr>" exist.   If no terms with a constant RHS
348 ** exist, try to return a term that does not use WO_EQUIV.
349 */
350 WhereTerm *sqlite3WhereFindTerm(
351   WhereClause *pWC,     /* The WHERE clause to be searched */
352   int iCur,             /* Cursor number of LHS */
353   int iColumn,          /* Column number of LHS */
354   Bitmask notReady,     /* RHS must not overlap with this mask */
355   u32 op,               /* Mask of WO_xx values describing operator */
356   Index *pIdx           /* Must be compatible with this index, if not NULL */
357 ){
358   WhereTerm *pResult = 0;
359   WhereTerm *p;
360   WhereScan scan;
361 
362   p = whereScanInit(&scan, pWC, iCur, iColumn, op, pIdx);
363   op &= WO_EQ|WO_IS;
364   while( p ){
365     if( (p->prereqRight & notReady)==0 ){
366       if( p->prereqRight==0 && (p->eOperator&op)!=0 ){
367         testcase( p->eOperator & WO_IS );
368         return p;
369       }
370       if( pResult==0 ) pResult = p;
371     }
372     p = whereScanNext(&scan);
373   }
374   return pResult;
375 }
376 
377 /*
378 ** This function searches pList for an entry that matches the iCol-th column
379 ** of index pIdx.
380 **
381 ** If such an expression is found, its index in pList->a[] is returned. If
382 ** no expression is found, -1 is returned.
383 */
384 static int findIndexCol(
385   Parse *pParse,                  /* Parse context */
386   ExprList *pList,                /* Expression list to search */
387   int iBase,                      /* Cursor for table associated with pIdx */
388   Index *pIdx,                    /* Index to match column of */
389   int iCol                        /* Column of index to match */
390 ){
391   int i;
392   const char *zColl = pIdx->azColl[iCol];
393 
394   for(i=0; i<pList->nExpr; i++){
395     Expr *p = sqlite3ExprSkipCollate(pList->a[i].pExpr);
396     if( p->op==TK_COLUMN
397      && p->iColumn==pIdx->aiColumn[iCol]
398      && p->iTable==iBase
399     ){
400       CollSeq *pColl = sqlite3ExprCollSeq(pParse, pList->a[i].pExpr);
401       if( pColl && 0==sqlite3StrICmp(pColl->zName, zColl) ){
402         return i;
403       }
404     }
405   }
406 
407   return -1;
408 }
409 
410 /*
411 ** Return TRUE if the iCol-th column of index pIdx is NOT NULL
412 */
413 static int indexColumnNotNull(Index *pIdx, int iCol){
414   int j;
415   assert( pIdx!=0 );
416   assert( iCol>=0 && iCol<pIdx->nColumn );
417   j = pIdx->aiColumn[iCol];
418   if( j>=0 ){
419     return pIdx->pTable->aCol[j].notNull;
420   }else if( j==(-1) ){
421     return 1;
422   }else{
423     assert( j==(-2) );
424     return 0;  /* Assume an indexed expression can always yield a NULL */
425 
426   }
427 }
428 
429 /*
430 ** Return true if the DISTINCT expression-list passed as the third argument
431 ** is redundant.
432 **
433 ** A DISTINCT list is redundant if any subset of the columns in the
434 ** DISTINCT list are collectively unique and individually non-null.
435 */
436 static int isDistinctRedundant(
437   Parse *pParse,            /* Parsing context */
438   SrcList *pTabList,        /* The FROM clause */
439   WhereClause *pWC,         /* The WHERE clause */
440   ExprList *pDistinct       /* The result set that needs to be DISTINCT */
441 ){
442   Table *pTab;
443   Index *pIdx;
444   int i;
445   int iBase;
446 
447   /* If there is more than one table or sub-select in the FROM clause of
448   ** this query, then it will not be possible to show that the DISTINCT
449   ** clause is redundant. */
450   if( pTabList->nSrc!=1 ) return 0;
451   iBase = pTabList->a[0].iCursor;
452   pTab = pTabList->a[0].pTab;
453 
454   /* If any of the expressions is an IPK column on table iBase, then return
455   ** true. Note: The (p->iTable==iBase) part of this test may be false if the
456   ** current SELECT is a correlated sub-query.
457   */
458   for(i=0; i<pDistinct->nExpr; i++){
459     Expr *p = sqlite3ExprSkipCollate(pDistinct->a[i].pExpr);
460     if( p->op==TK_COLUMN && p->iTable==iBase && p->iColumn<0 ) return 1;
461   }
462 
463   /* Loop through all indices on the table, checking each to see if it makes
464   ** the DISTINCT qualifier redundant. It does so if:
465   **
466   **   1. The index is itself UNIQUE, and
467   **
468   **   2. All of the columns in the index are either part of the pDistinct
469   **      list, or else the WHERE clause contains a term of the form "col=X",
470   **      where X is a constant value. The collation sequences of the
471   **      comparison and select-list expressions must match those of the index.
472   **
473   **   3. All of those index columns for which the WHERE clause does not
474   **      contain a "col=X" term are subject to a NOT NULL constraint.
475   */
476   for(pIdx=pTab->pIndex; pIdx; pIdx=pIdx->pNext){
477     if( !IsUniqueIndex(pIdx) ) continue;
478     for(i=0; i<pIdx->nKeyCol; i++){
479       if( 0==sqlite3WhereFindTerm(pWC, iBase, i, ~(Bitmask)0, WO_EQ, pIdx) ){
480         if( findIndexCol(pParse, pDistinct, iBase, pIdx, i)<0 ) break;
481         if( indexColumnNotNull(pIdx, i)==0 ) break;
482       }
483     }
484     if( i==pIdx->nKeyCol ){
485       /* This index implies that the DISTINCT qualifier is redundant. */
486       return 1;
487     }
488   }
489 
490   return 0;
491 }
492 
493 
494 /*
495 ** Estimate the logarithm of the input value to base 2.
496 */
497 static LogEst estLog(LogEst N){
498   return N<=10 ? 0 : sqlite3LogEst(N) - 33;
499 }
500 
501 /*
502 ** Convert OP_Column opcodes to OP_Copy in previously generated code.
503 **
504 ** This routine runs over generated VDBE code and translates OP_Column
505 ** opcodes into OP_Copy when the table is being accessed via co-routine
506 ** instead of via table lookup.
507 **
508 ** If the bIncrRowid parameter is 0, then any OP_Rowid instructions on
509 ** cursor iTabCur are transformed into OP_Null. Or, if bIncrRowid is non-zero,
510 ** then each OP_Rowid is transformed into an instruction to increment the
511 ** value stored in its output register.
512 */
513 static void translateColumnToCopy(
514   Vdbe *v,            /* The VDBE containing code to translate */
515   int iStart,         /* Translate from this opcode to the end */
516   int iTabCur,        /* OP_Column/OP_Rowid references to this table */
517   int iRegister,      /* The first column is in this register */
518   int bIncrRowid      /* If non-zero, transform OP_rowid to OP_AddImm(1) */
519 ){
520   VdbeOp *pOp = sqlite3VdbeGetOp(v, iStart);
521   int iEnd = sqlite3VdbeCurrentAddr(v);
522   for(; iStart<iEnd; iStart++, pOp++){
523     if( pOp->p1!=iTabCur ) continue;
524     if( pOp->opcode==OP_Column ){
525       pOp->opcode = OP_Copy;
526       pOp->p1 = pOp->p2 + iRegister;
527       pOp->p2 = pOp->p3;
528       pOp->p3 = 0;
529     }else if( pOp->opcode==OP_Rowid ){
530       if( bIncrRowid ){
531         /* Increment the value stored in the P2 operand of the OP_Rowid. */
532         pOp->opcode = OP_AddImm;
533         pOp->p1 = pOp->p2;
534         pOp->p2 = 1;
535       }else{
536         pOp->opcode = OP_Null;
537         pOp->p1 = 0;
538         pOp->p3 = 0;
539       }
540     }
541   }
542 }
543 
544 /*
545 ** Two routines for printing the content of an sqlite3_index_info
546 ** structure.  Used for testing and debugging only.  If neither
547 ** SQLITE_TEST or SQLITE_DEBUG are defined, then these routines
548 ** are no-ops.
549 */
550 #if !defined(SQLITE_OMIT_VIRTUALTABLE) && defined(WHERETRACE_ENABLED)
551 static void TRACE_IDX_INPUTS(sqlite3_index_info *p){
552   int i;
553   if( !sqlite3WhereTrace ) return;
554   for(i=0; i<p->nConstraint; i++){
555     sqlite3DebugPrintf("  constraint[%d]: col=%d termid=%d op=%d usabled=%d\n",
556        i,
557        p->aConstraint[i].iColumn,
558        p->aConstraint[i].iTermOffset,
559        p->aConstraint[i].op,
560        p->aConstraint[i].usable);
561   }
562   for(i=0; i<p->nOrderBy; i++){
563     sqlite3DebugPrintf("  orderby[%d]: col=%d desc=%d\n",
564        i,
565        p->aOrderBy[i].iColumn,
566        p->aOrderBy[i].desc);
567   }
568 }
569 static void TRACE_IDX_OUTPUTS(sqlite3_index_info *p){
570   int i;
571   if( !sqlite3WhereTrace ) return;
572   for(i=0; i<p->nConstraint; i++){
573     sqlite3DebugPrintf("  usage[%d]: argvIdx=%d omit=%d\n",
574        i,
575        p->aConstraintUsage[i].argvIndex,
576        p->aConstraintUsage[i].omit);
577   }
578   sqlite3DebugPrintf("  idxNum=%d\n", p->idxNum);
579   sqlite3DebugPrintf("  idxStr=%s\n", p->idxStr);
580   sqlite3DebugPrintf("  orderByConsumed=%d\n", p->orderByConsumed);
581   sqlite3DebugPrintf("  estimatedCost=%g\n", p->estimatedCost);
582   sqlite3DebugPrintf("  estimatedRows=%lld\n", p->estimatedRows);
583 }
584 #else
585 #define TRACE_IDX_INPUTS(A)
586 #define TRACE_IDX_OUTPUTS(A)
587 #endif
588 
589 #ifndef SQLITE_OMIT_AUTOMATIC_INDEX
590 /*
591 ** Return TRUE if the WHERE clause term pTerm is of a form where it
592 ** could be used with an index to access pSrc, assuming an appropriate
593 ** index existed.
594 */
595 static int termCanDriveIndex(
596   WhereTerm *pTerm,              /* WHERE clause term to check */
597   struct SrcList_item *pSrc,     /* Table we are trying to access */
598   Bitmask notReady               /* Tables in outer loops of the join */
599 ){
600   char aff;
601   if( pTerm->leftCursor!=pSrc->iCursor ) return 0;
602   if( (pTerm->eOperator & (WO_EQ|WO_IS))==0 ) return 0;
603   if( (pTerm->prereqRight & notReady)!=0 ) return 0;
604   if( pTerm->u.leftColumn<0 ) return 0;
605   aff = pSrc->pTab->aCol[pTerm->u.leftColumn].affinity;
606   if( !sqlite3IndexAffinityOk(pTerm->pExpr, aff) ) return 0;
607   testcase( pTerm->pExpr->op==TK_IS );
608   return 1;
609 }
610 #endif
611 
612 
613 #ifndef SQLITE_OMIT_AUTOMATIC_INDEX
614 /*
615 ** Generate code to construct the Index object for an automatic index
616 ** and to set up the WhereLevel object pLevel so that the code generator
617 ** makes use of the automatic index.
618 */
619 static void constructAutomaticIndex(
620   Parse *pParse,              /* The parsing context */
621   WhereClause *pWC,           /* The WHERE clause */
622   struct SrcList_item *pSrc,  /* The FROM clause term to get the next index */
623   Bitmask notReady,           /* Mask of cursors that are not available */
624   WhereLevel *pLevel          /* Write new index here */
625 ){
626   int nKeyCol;                /* Number of columns in the constructed index */
627   WhereTerm *pTerm;           /* A single term of the WHERE clause */
628   WhereTerm *pWCEnd;          /* End of pWC->a[] */
629   Index *pIdx;                /* Object describing the transient index */
630   Vdbe *v;                    /* Prepared statement under construction */
631   int addrInit;               /* Address of the initialization bypass jump */
632   Table *pTable;              /* The table being indexed */
633   int addrTop;                /* Top of the index fill loop */
634   int regRecord;              /* Register holding an index record */
635   int n;                      /* Column counter */
636   int i;                      /* Loop counter */
637   int mxBitCol;               /* Maximum column in pSrc->colUsed */
638   CollSeq *pColl;             /* Collating sequence to on a column */
639   WhereLoop *pLoop;           /* The Loop object */
640   char *zNotUsed;             /* Extra space on the end of pIdx */
641   Bitmask idxCols;            /* Bitmap of columns used for indexing */
642   Bitmask extraCols;          /* Bitmap of additional columns */
643   u8 sentWarning = 0;         /* True if a warnning has been issued */
644   Expr *pPartial = 0;         /* Partial Index Expression */
645   int iContinue = 0;          /* Jump here to skip excluded rows */
646   struct SrcList_item *pTabItem;  /* FROM clause term being indexed */
647   int addrCounter = 0;        /* Address where integer counter is initialized */
648   int regBase;                /* Array of registers where record is assembled */
649 
650   /* Generate code to skip over the creation and initialization of the
651   ** transient index on 2nd and subsequent iterations of the loop. */
652   v = pParse->pVdbe;
653   assert( v!=0 );
654   addrInit = sqlite3CodeOnce(pParse); VdbeCoverage(v);
655 
656   /* Count the number of columns that will be added to the index
657   ** and used to match WHERE clause constraints */
658   nKeyCol = 0;
659   pTable = pSrc->pTab;
660   pWCEnd = &pWC->a[pWC->nTerm];
661   pLoop = pLevel->pWLoop;
662   idxCols = 0;
663   for(pTerm=pWC->a; pTerm<pWCEnd; pTerm++){
664     Expr *pExpr = pTerm->pExpr;
665     assert( !ExprHasProperty(pExpr, EP_FromJoin)    /* prereq always non-zero */
666          || pExpr->iRightJoinTable!=pSrc->iCursor   /*   for the right-hand   */
667          || pLoop->prereq!=0 );                     /*   table of a LEFT JOIN */
668     if( pLoop->prereq==0
669      && (pTerm->wtFlags & TERM_VIRTUAL)==0
670      && !ExprHasProperty(pExpr, EP_FromJoin)
671      && sqlite3ExprIsTableConstant(pExpr, pSrc->iCursor) ){
672       pPartial = sqlite3ExprAnd(pParse->db, pPartial,
673                                 sqlite3ExprDup(pParse->db, pExpr, 0));
674     }
675     if( termCanDriveIndex(pTerm, pSrc, notReady) ){
676       int iCol = pTerm->u.leftColumn;
677       Bitmask cMask = iCol>=BMS ? MASKBIT(BMS-1) : MASKBIT(iCol);
678       testcase( iCol==BMS );
679       testcase( iCol==BMS-1 );
680       if( !sentWarning ){
681         sqlite3_log(SQLITE_WARNING_AUTOINDEX,
682             "automatic index on %s(%s)", pTable->zName,
683             pTable->aCol[iCol].zName);
684         sentWarning = 1;
685       }
686       if( (idxCols & cMask)==0 ){
687         if( whereLoopResize(pParse->db, pLoop, nKeyCol+1) ){
688           goto end_auto_index_create;
689         }
690         pLoop->aLTerm[nKeyCol++] = pTerm;
691         idxCols |= cMask;
692       }
693     }
694   }
695   assert( nKeyCol>0 );
696   pLoop->u.btree.nEq = pLoop->nLTerm = nKeyCol;
697   pLoop->wsFlags = WHERE_COLUMN_EQ | WHERE_IDX_ONLY | WHERE_INDEXED
698                      | WHERE_AUTO_INDEX;
699 
700   /* Count the number of additional columns needed to create a
701   ** covering index.  A "covering index" is an index that contains all
702   ** columns that are needed by the query.  With a covering index, the
703   ** original table never needs to be accessed.  Automatic indices must
704   ** be a covering index because the index will not be updated if the
705   ** original table changes and the index and table cannot both be used
706   ** if they go out of sync.
707   */
708   extraCols = pSrc->colUsed & (~idxCols | MASKBIT(BMS-1));
709   mxBitCol = MIN(BMS-1,pTable->nCol);
710   testcase( pTable->nCol==BMS-1 );
711   testcase( pTable->nCol==BMS-2 );
712   for(i=0; i<mxBitCol; i++){
713     if( extraCols & MASKBIT(i) ) nKeyCol++;
714   }
715   if( pSrc->colUsed & MASKBIT(BMS-1) ){
716     nKeyCol += pTable->nCol - BMS + 1;
717   }
718 
719   /* Construct the Index object to describe this index */
720   pIdx = sqlite3AllocateIndexObject(pParse->db, nKeyCol+1, 0, &zNotUsed);
721   if( pIdx==0 ) goto end_auto_index_create;
722   pLoop->u.btree.pIndex = pIdx;
723   pIdx->zName = "auto-index";
724   pIdx->pTable = pTable;
725   n = 0;
726   idxCols = 0;
727   for(pTerm=pWC->a; pTerm<pWCEnd; pTerm++){
728     if( termCanDriveIndex(pTerm, pSrc, notReady) ){
729       int iCol = pTerm->u.leftColumn;
730       Bitmask cMask = iCol>=BMS ? MASKBIT(BMS-1) : MASKBIT(iCol);
731       testcase( iCol==BMS-1 );
732       testcase( iCol==BMS );
733       if( (idxCols & cMask)==0 ){
734         Expr *pX = pTerm->pExpr;
735         idxCols |= cMask;
736         pIdx->aiColumn[n] = pTerm->u.leftColumn;
737         pColl = sqlite3BinaryCompareCollSeq(pParse, pX->pLeft, pX->pRight);
738         pIdx->azColl[n] = pColl ? pColl->zName : sqlite3StrBINARY;
739         n++;
740       }
741     }
742   }
743   assert( (u32)n==pLoop->u.btree.nEq );
744 
745   /* Add additional columns needed to make the automatic index into
746   ** a covering index */
747   for(i=0; i<mxBitCol; i++){
748     if( extraCols & MASKBIT(i) ){
749       pIdx->aiColumn[n] = i;
750       pIdx->azColl[n] = sqlite3StrBINARY;
751       n++;
752     }
753   }
754   if( pSrc->colUsed & MASKBIT(BMS-1) ){
755     for(i=BMS-1; i<pTable->nCol; i++){
756       pIdx->aiColumn[n] = i;
757       pIdx->azColl[n] = sqlite3StrBINARY;
758       n++;
759     }
760   }
761   assert( n==nKeyCol );
762   pIdx->aiColumn[n] = XN_ROWID;
763   pIdx->azColl[n] = sqlite3StrBINARY;
764 
765   /* Create the automatic index */
766   assert( pLevel->iIdxCur>=0 );
767   pLevel->iIdxCur = pParse->nTab++;
768   sqlite3VdbeAddOp2(v, OP_OpenAutoindex, pLevel->iIdxCur, nKeyCol+1);
769   sqlite3VdbeSetP4KeyInfo(pParse, pIdx);
770   VdbeComment((v, "for %s", pTable->zName));
771 
772   /* Fill the automatic index with content */
773   sqlite3ExprCachePush(pParse);
774   pTabItem = &pWC->pWInfo->pTabList->a[pLevel->iFrom];
775   if( pTabItem->fg.viaCoroutine ){
776     int regYield = pTabItem->regReturn;
777     addrCounter = sqlite3VdbeAddOp2(v, OP_Integer, 0, 0);
778     sqlite3VdbeAddOp3(v, OP_InitCoroutine, regYield, 0, pTabItem->addrFillSub);
779     addrTop =  sqlite3VdbeAddOp1(v, OP_Yield, regYield);
780     VdbeCoverage(v);
781     VdbeComment((v, "next row of \"%s\"", pTabItem->pTab->zName));
782   }else{
783     addrTop = sqlite3VdbeAddOp1(v, OP_Rewind, pLevel->iTabCur); VdbeCoverage(v);
784   }
785   if( pPartial ){
786     iContinue = sqlite3VdbeMakeLabel(v);
787     sqlite3ExprIfFalse(pParse, pPartial, iContinue, SQLITE_JUMPIFNULL);
788     pLoop->wsFlags |= WHERE_PARTIALIDX;
789   }
790   regRecord = sqlite3GetTempReg(pParse);
791   regBase = sqlite3GenerateIndexKey(
792       pParse, pIdx, pLevel->iTabCur, regRecord, 0, 0, 0, 0
793   );
794   sqlite3VdbeAddOp2(v, OP_IdxInsert, pLevel->iIdxCur, regRecord);
795   sqlite3VdbeChangeP5(v, OPFLAG_USESEEKRESULT);
796   if( pPartial ) sqlite3VdbeResolveLabel(v, iContinue);
797   if( pTabItem->fg.viaCoroutine ){
798     sqlite3VdbeChangeP2(v, addrCounter, regBase+n);
799     translateColumnToCopy(v, addrTop, pLevel->iTabCur, pTabItem->regResult, 1);
800     sqlite3VdbeGoto(v, addrTop);
801     pTabItem->fg.viaCoroutine = 0;
802   }else{
803     sqlite3VdbeAddOp2(v, OP_Next, pLevel->iTabCur, addrTop+1); VdbeCoverage(v);
804   }
805   sqlite3VdbeChangeP5(v, SQLITE_STMTSTATUS_AUTOINDEX);
806   sqlite3VdbeJumpHere(v, addrTop);
807   sqlite3ReleaseTempReg(pParse, regRecord);
808   sqlite3ExprCachePop(pParse);
809 
810   /* Jump here when skipping the initialization */
811   sqlite3VdbeJumpHere(v, addrInit);
812 
813 end_auto_index_create:
814   sqlite3ExprDelete(pParse->db, pPartial);
815 }
816 #endif /* SQLITE_OMIT_AUTOMATIC_INDEX */
817 
818 #ifndef SQLITE_OMIT_VIRTUALTABLE
819 /*
820 ** Allocate and populate an sqlite3_index_info structure. It is the
821 ** responsibility of the caller to eventually release the structure
822 ** by passing the pointer returned by this function to sqlite3_free().
823 */
824 static sqlite3_index_info *allocateIndexInfo(
825   Parse *pParse,
826   WhereClause *pWC,
827   Bitmask mUnusable,              /* Ignore terms with these prereqs */
828   struct SrcList_item *pSrc,
829   ExprList *pOrderBy
830 ){
831   int i, j;
832   int nTerm;
833   struct sqlite3_index_constraint *pIdxCons;
834   struct sqlite3_index_orderby *pIdxOrderBy;
835   struct sqlite3_index_constraint_usage *pUsage;
836   WhereTerm *pTerm;
837   int nOrderBy;
838   sqlite3_index_info *pIdxInfo;
839 
840   /* Count the number of possible WHERE clause constraints referring
841   ** to this virtual table */
842   for(i=nTerm=0, pTerm=pWC->a; i<pWC->nTerm; i++, pTerm++){
843     if( pTerm->leftCursor != pSrc->iCursor ) continue;
844     if( pTerm->prereqRight & mUnusable ) continue;
845     assert( IsPowerOfTwo(pTerm->eOperator & ~WO_EQUIV) );
846     testcase( pTerm->eOperator & WO_IN );
847     testcase( pTerm->eOperator & WO_ISNULL );
848     testcase( pTerm->eOperator & WO_IS );
849     testcase( pTerm->eOperator & WO_ALL );
850     if( (pTerm->eOperator & ~(WO_ISNULL|WO_EQUIV|WO_IS))==0 ) continue;
851     if( pTerm->wtFlags & TERM_VNULL ) continue;
852     assert( pTerm->u.leftColumn>=(-1) );
853     nTerm++;
854   }
855 
856   /* If the ORDER BY clause contains only columns in the current
857   ** virtual table then allocate space for the aOrderBy part of
858   ** the sqlite3_index_info structure.
859   */
860   nOrderBy = 0;
861   if( pOrderBy ){
862     int n = pOrderBy->nExpr;
863     for(i=0; i<n; i++){
864       Expr *pExpr = pOrderBy->a[i].pExpr;
865       if( pExpr->op!=TK_COLUMN || pExpr->iTable!=pSrc->iCursor ) break;
866     }
867     if( i==n){
868       nOrderBy = n;
869     }
870   }
871 
872   /* Allocate the sqlite3_index_info structure
873   */
874   pIdxInfo = sqlite3DbMallocZero(pParse->db, sizeof(*pIdxInfo)
875                            + (sizeof(*pIdxCons) + sizeof(*pUsage))*nTerm
876                            + sizeof(*pIdxOrderBy)*nOrderBy );
877   if( pIdxInfo==0 ){
878     sqlite3ErrorMsg(pParse, "out of memory");
879     return 0;
880   }
881 
882   /* Initialize the structure.  The sqlite3_index_info structure contains
883   ** many fields that are declared "const" to prevent xBestIndex from
884   ** changing them.  We have to do some funky casting in order to
885   ** initialize those fields.
886   */
887   pIdxCons = (struct sqlite3_index_constraint*)&pIdxInfo[1];
888   pIdxOrderBy = (struct sqlite3_index_orderby*)&pIdxCons[nTerm];
889   pUsage = (struct sqlite3_index_constraint_usage*)&pIdxOrderBy[nOrderBy];
890   *(int*)&pIdxInfo->nConstraint = nTerm;
891   *(int*)&pIdxInfo->nOrderBy = nOrderBy;
892   *(struct sqlite3_index_constraint**)&pIdxInfo->aConstraint = pIdxCons;
893   *(struct sqlite3_index_orderby**)&pIdxInfo->aOrderBy = pIdxOrderBy;
894   *(struct sqlite3_index_constraint_usage**)&pIdxInfo->aConstraintUsage =
895                                                                    pUsage;
896 
897   for(i=j=0, pTerm=pWC->a; i<pWC->nTerm; i++, pTerm++){
898     u8 op;
899     if( pTerm->leftCursor != pSrc->iCursor ) continue;
900     if( pTerm->prereqRight & mUnusable ) continue;
901     assert( IsPowerOfTwo(pTerm->eOperator & ~WO_EQUIV) );
902     testcase( pTerm->eOperator & WO_IN );
903     testcase( pTerm->eOperator & WO_IS );
904     testcase( pTerm->eOperator & WO_ISNULL );
905     testcase( pTerm->eOperator & WO_ALL );
906     if( (pTerm->eOperator & ~(WO_ISNULL|WO_EQUIV|WO_IS))==0 ) continue;
907     if( pTerm->wtFlags & TERM_VNULL ) continue;
908     assert( pTerm->u.leftColumn>=(-1) );
909     pIdxCons[j].iColumn = pTerm->u.leftColumn;
910     pIdxCons[j].iTermOffset = i;
911     op = (u8)pTerm->eOperator & WO_ALL;
912     if( op==WO_IN ) op = WO_EQ;
913     if( op==WO_MATCH ){
914       op = pTerm->eMatchOp;
915     }
916     pIdxCons[j].op = op;
917     /* The direct assignment in the previous line is possible only because
918     ** the WO_ and SQLITE_INDEX_CONSTRAINT_ codes are identical.  The
919     ** following asserts verify this fact. */
920     assert( WO_EQ==SQLITE_INDEX_CONSTRAINT_EQ );
921     assert( WO_LT==SQLITE_INDEX_CONSTRAINT_LT );
922     assert( WO_LE==SQLITE_INDEX_CONSTRAINT_LE );
923     assert( WO_GT==SQLITE_INDEX_CONSTRAINT_GT );
924     assert( WO_GE==SQLITE_INDEX_CONSTRAINT_GE );
925     assert( WO_MATCH==SQLITE_INDEX_CONSTRAINT_MATCH );
926     assert( pTerm->eOperator & (WO_IN|WO_EQ|WO_LT|WO_LE|WO_GT|WO_GE|WO_MATCH) );
927     j++;
928   }
929   for(i=0; i<nOrderBy; i++){
930     Expr *pExpr = pOrderBy->a[i].pExpr;
931     pIdxOrderBy[i].iColumn = pExpr->iColumn;
932     pIdxOrderBy[i].desc = pOrderBy->a[i].sortOrder;
933   }
934 
935   return pIdxInfo;
936 }
937 
938 /*
939 ** The table object reference passed as the second argument to this function
940 ** must represent a virtual table. This function invokes the xBestIndex()
941 ** method of the virtual table with the sqlite3_index_info object that
942 ** comes in as the 3rd argument to this function.
943 **
944 ** If an error occurs, pParse is populated with an error message and a
945 ** non-zero value is returned. Otherwise, 0 is returned and the output
946 ** part of the sqlite3_index_info structure is left populated.
947 **
948 ** Whether or not an error is returned, it is the responsibility of the
949 ** caller to eventually free p->idxStr if p->needToFreeIdxStr indicates
950 ** that this is required.
951 */
952 static int vtabBestIndex(Parse *pParse, Table *pTab, sqlite3_index_info *p){
953   sqlite3_vtab *pVtab = sqlite3GetVTable(pParse->db, pTab)->pVtab;
954   int rc;
955 
956   TRACE_IDX_INPUTS(p);
957   rc = pVtab->pModule->xBestIndex(pVtab, p);
958   TRACE_IDX_OUTPUTS(p);
959 
960   if( rc!=SQLITE_OK ){
961     if( rc==SQLITE_NOMEM ){
962       sqlite3OomFault(pParse->db);
963     }else if( !pVtab->zErrMsg ){
964       sqlite3ErrorMsg(pParse, "%s", sqlite3ErrStr(rc));
965     }else{
966       sqlite3ErrorMsg(pParse, "%s", pVtab->zErrMsg);
967     }
968   }
969   sqlite3_free(pVtab->zErrMsg);
970   pVtab->zErrMsg = 0;
971 
972 #if 0
973   /* This error is now caught by the caller.
974   ** Search for "xBestIndex malfunction" below */
975   for(i=0; i<p->nConstraint; i++){
976     if( !p->aConstraint[i].usable && p->aConstraintUsage[i].argvIndex>0 ){
977       sqlite3ErrorMsg(pParse,
978           "table %s: xBestIndex returned an invalid plan", pTab->zName);
979     }
980   }
981 #endif
982 
983   return pParse->nErr;
984 }
985 #endif /* !defined(SQLITE_OMIT_VIRTUALTABLE) */
986 
987 #ifdef SQLITE_ENABLE_STAT3_OR_STAT4
988 /*
989 ** Estimate the location of a particular key among all keys in an
990 ** index.  Store the results in aStat as follows:
991 **
992 **    aStat[0]      Est. number of rows less than pRec
993 **    aStat[1]      Est. number of rows equal to pRec
994 **
995 ** Return the index of the sample that is the smallest sample that
996 ** is greater than or equal to pRec. Note that this index is not an index
997 ** into the aSample[] array - it is an index into a virtual set of samples
998 ** based on the contents of aSample[] and the number of fields in record
999 ** pRec.
1000 */
1001 static int whereKeyStats(
1002   Parse *pParse,              /* Database connection */
1003   Index *pIdx,                /* Index to consider domain of */
1004   UnpackedRecord *pRec,       /* Vector of values to consider */
1005   int roundUp,                /* Round up if true.  Round down if false */
1006   tRowcnt *aStat              /* OUT: stats written here */
1007 ){
1008   IndexSample *aSample = pIdx->aSample;
1009   int iCol;                   /* Index of required stats in anEq[] etc. */
1010   int i;                      /* Index of first sample >= pRec */
1011   int iSample;                /* Smallest sample larger than or equal to pRec */
1012   int iMin = 0;               /* Smallest sample not yet tested */
1013   int iTest;                  /* Next sample to test */
1014   int res;                    /* Result of comparison operation */
1015   int nField;                 /* Number of fields in pRec */
1016   tRowcnt iLower = 0;         /* anLt[] + anEq[] of largest sample pRec is > */
1017 
1018 #ifndef SQLITE_DEBUG
1019   UNUSED_PARAMETER( pParse );
1020 #endif
1021   assert( pRec!=0 );
1022   assert( pIdx->nSample>0 );
1023   assert( pRec->nField>0 && pRec->nField<=pIdx->nSampleCol );
1024 
1025   /* Do a binary search to find the first sample greater than or equal
1026   ** to pRec. If pRec contains a single field, the set of samples to search
1027   ** is simply the aSample[] array. If the samples in aSample[] contain more
1028   ** than one fields, all fields following the first are ignored.
1029   **
1030   ** If pRec contains N fields, where N is more than one, then as well as the
1031   ** samples in aSample[] (truncated to N fields), the search also has to
1032   ** consider prefixes of those samples. For example, if the set of samples
1033   ** in aSample is:
1034   **
1035   **     aSample[0] = (a, 5)
1036   **     aSample[1] = (a, 10)
1037   **     aSample[2] = (b, 5)
1038   **     aSample[3] = (c, 100)
1039   **     aSample[4] = (c, 105)
1040   **
1041   ** Then the search space should ideally be the samples above and the
1042   ** unique prefixes [a], [b] and [c]. But since that is hard to organize,
1043   ** the code actually searches this set:
1044   **
1045   **     0: (a)
1046   **     1: (a, 5)
1047   **     2: (a, 10)
1048   **     3: (a, 10)
1049   **     4: (b)
1050   **     5: (b, 5)
1051   **     6: (c)
1052   **     7: (c, 100)
1053   **     8: (c, 105)
1054   **     9: (c, 105)
1055   **
1056   ** For each sample in the aSample[] array, N samples are present in the
1057   ** effective sample array. In the above, samples 0 and 1 are based on
1058   ** sample aSample[0]. Samples 2 and 3 on aSample[1] etc.
1059   **
1060   ** Often, sample i of each block of N effective samples has (i+1) fields.
1061   ** Except, each sample may be extended to ensure that it is greater than or
1062   ** equal to the previous sample in the array. For example, in the above,
1063   ** sample 2 is the first sample of a block of N samples, so at first it
1064   ** appears that it should be 1 field in size. However, that would make it
1065   ** smaller than sample 1, so the binary search would not work. As a result,
1066   ** it is extended to two fields. The duplicates that this creates do not
1067   ** cause any problems.
1068   */
1069   nField = pRec->nField;
1070   iCol = 0;
1071   iSample = pIdx->nSample * nField;
1072   do{
1073     int iSamp;                    /* Index in aSample[] of test sample */
1074     int n;                        /* Number of fields in test sample */
1075 
1076     iTest = (iMin+iSample)/2;
1077     iSamp = iTest / nField;
1078     if( iSamp>0 ){
1079       /* The proposed effective sample is a prefix of sample aSample[iSamp].
1080       ** Specifically, the shortest prefix of at least (1 + iTest%nField)
1081       ** fields that is greater than the previous effective sample.  */
1082       for(n=(iTest % nField) + 1; n<nField; n++){
1083         if( aSample[iSamp-1].anLt[n-1]!=aSample[iSamp].anLt[n-1] ) break;
1084       }
1085     }else{
1086       n = iTest + 1;
1087     }
1088 
1089     pRec->nField = n;
1090     res = sqlite3VdbeRecordCompare(aSample[iSamp].n, aSample[iSamp].p, pRec);
1091     if( res<0 ){
1092       iLower = aSample[iSamp].anLt[n-1] + aSample[iSamp].anEq[n-1];
1093       iMin = iTest+1;
1094     }else if( res==0 && n<nField ){
1095       iLower = aSample[iSamp].anLt[n-1];
1096       iMin = iTest+1;
1097       res = -1;
1098     }else{
1099       iSample = iTest;
1100       iCol = n-1;
1101     }
1102   }while( res && iMin<iSample );
1103   i = iSample / nField;
1104 
1105 #ifdef SQLITE_DEBUG
1106   /* The following assert statements check that the binary search code
1107   ** above found the right answer. This block serves no purpose other
1108   ** than to invoke the asserts.  */
1109   if( pParse->db->mallocFailed==0 ){
1110     if( res==0 ){
1111       /* If (res==0) is true, then pRec must be equal to sample i. */
1112       assert( i<pIdx->nSample );
1113       assert( iCol==nField-1 );
1114       pRec->nField = nField;
1115       assert( 0==sqlite3VdbeRecordCompare(aSample[i].n, aSample[i].p, pRec)
1116            || pParse->db->mallocFailed
1117       );
1118     }else{
1119       /* Unless i==pIdx->nSample, indicating that pRec is larger than
1120       ** all samples in the aSample[] array, pRec must be smaller than the
1121       ** (iCol+1) field prefix of sample i.  */
1122       assert( i<=pIdx->nSample && i>=0 );
1123       pRec->nField = iCol+1;
1124       assert( i==pIdx->nSample
1125            || sqlite3VdbeRecordCompare(aSample[i].n, aSample[i].p, pRec)>0
1126            || pParse->db->mallocFailed );
1127 
1128       /* if i==0 and iCol==0, then record pRec is smaller than all samples
1129       ** in the aSample[] array. Otherwise, if (iCol>0) then pRec must
1130       ** be greater than or equal to the (iCol) field prefix of sample i.
1131       ** If (i>0), then pRec must also be greater than sample (i-1).  */
1132       if( iCol>0 ){
1133         pRec->nField = iCol;
1134         assert( sqlite3VdbeRecordCompare(aSample[i].n, aSample[i].p, pRec)<=0
1135              || pParse->db->mallocFailed );
1136       }
1137       if( i>0 ){
1138         pRec->nField = nField;
1139         assert( sqlite3VdbeRecordCompare(aSample[i-1].n, aSample[i-1].p, pRec)<0
1140              || pParse->db->mallocFailed );
1141       }
1142     }
1143   }
1144 #endif /* ifdef SQLITE_DEBUG */
1145 
1146   if( res==0 ){
1147     /* Record pRec is equal to sample i */
1148     assert( iCol==nField-1 );
1149     aStat[0] = aSample[i].anLt[iCol];
1150     aStat[1] = aSample[i].anEq[iCol];
1151   }else{
1152     /* At this point, the (iCol+1) field prefix of aSample[i] is the first
1153     ** sample that is greater than pRec. Or, if i==pIdx->nSample then pRec
1154     ** is larger than all samples in the array. */
1155     tRowcnt iUpper, iGap;
1156     if( i>=pIdx->nSample ){
1157       iUpper = sqlite3LogEstToInt(pIdx->aiRowLogEst[0]);
1158     }else{
1159       iUpper = aSample[i].anLt[iCol];
1160     }
1161 
1162     if( iLower>=iUpper ){
1163       iGap = 0;
1164     }else{
1165       iGap = iUpper - iLower;
1166     }
1167     if( roundUp ){
1168       iGap = (iGap*2)/3;
1169     }else{
1170       iGap = iGap/3;
1171     }
1172     aStat[0] = iLower + iGap;
1173     aStat[1] = pIdx->aAvgEq[iCol];
1174   }
1175 
1176   /* Restore the pRec->nField value before returning.  */
1177   pRec->nField = nField;
1178   return i;
1179 }
1180 #endif /* SQLITE_ENABLE_STAT3_OR_STAT4 */
1181 
1182 /*
1183 ** If it is not NULL, pTerm is a term that provides an upper or lower
1184 ** bound on a range scan. Without considering pTerm, it is estimated
1185 ** that the scan will visit nNew rows. This function returns the number
1186 ** estimated to be visited after taking pTerm into account.
1187 **
1188 ** If the user explicitly specified a likelihood() value for this term,
1189 ** then the return value is the likelihood multiplied by the number of
1190 ** input rows. Otherwise, this function assumes that an "IS NOT NULL" term
1191 ** has a likelihood of 0.50, and any other term a likelihood of 0.25.
1192 */
1193 static LogEst whereRangeAdjust(WhereTerm *pTerm, LogEst nNew){
1194   LogEst nRet = nNew;
1195   if( pTerm ){
1196     if( pTerm->truthProb<=0 ){
1197       nRet += pTerm->truthProb;
1198     }else if( (pTerm->wtFlags & TERM_VNULL)==0 ){
1199       nRet -= 20;        assert( 20==sqlite3LogEst(4) );
1200     }
1201   }
1202   return nRet;
1203 }
1204 
1205 
1206 #ifdef SQLITE_ENABLE_STAT3_OR_STAT4
1207 /*
1208 ** Return the affinity for a single column of an index.
1209 */
1210 static char sqlite3IndexColumnAffinity(sqlite3 *db, Index *pIdx, int iCol){
1211   assert( iCol>=0 && iCol<pIdx->nColumn );
1212   if( !pIdx->zColAff ){
1213     if( sqlite3IndexAffinityStr(db, pIdx)==0 ) return SQLITE_AFF_BLOB;
1214   }
1215   return pIdx->zColAff[iCol];
1216 }
1217 #endif
1218 
1219 
1220 #ifdef SQLITE_ENABLE_STAT3_OR_STAT4
1221 /*
1222 ** This function is called to estimate the number of rows visited by a
1223 ** range-scan on a skip-scan index. For example:
1224 **
1225 **   CREATE INDEX i1 ON t1(a, b, c);
1226 **   SELECT * FROM t1 WHERE a=? AND c BETWEEN ? AND ?;
1227 **
1228 ** Value pLoop->nOut is currently set to the estimated number of rows
1229 ** visited for scanning (a=? AND b=?). This function reduces that estimate
1230 ** by some factor to account for the (c BETWEEN ? AND ?) expression based
1231 ** on the stat4 data for the index. this scan will be peformed multiple
1232 ** times (once for each (a,b) combination that matches a=?) is dealt with
1233 ** by the caller.
1234 **
1235 ** It does this by scanning through all stat4 samples, comparing values
1236 ** extracted from pLower and pUpper with the corresponding column in each
1237 ** sample. If L and U are the number of samples found to be less than or
1238 ** equal to the values extracted from pLower and pUpper respectively, and
1239 ** N is the total number of samples, the pLoop->nOut value is adjusted
1240 ** as follows:
1241 **
1242 **   nOut = nOut * ( min(U - L, 1) / N )
1243 **
1244 ** If pLower is NULL, or a value cannot be extracted from the term, L is
1245 ** set to zero. If pUpper is NULL, or a value cannot be extracted from it,
1246 ** U is set to N.
1247 **
1248 ** Normally, this function sets *pbDone to 1 before returning. However,
1249 ** if no value can be extracted from either pLower or pUpper (and so the
1250 ** estimate of the number of rows delivered remains unchanged), *pbDone
1251 ** is left as is.
1252 **
1253 ** If an error occurs, an SQLite error code is returned. Otherwise,
1254 ** SQLITE_OK.
1255 */
1256 static int whereRangeSkipScanEst(
1257   Parse *pParse,       /* Parsing & code generating context */
1258   WhereTerm *pLower,   /* Lower bound on the range. ex: "x>123" Might be NULL */
1259   WhereTerm *pUpper,   /* Upper bound on the range. ex: "x<455" Might be NULL */
1260   WhereLoop *pLoop,    /* Update the .nOut value of this loop */
1261   int *pbDone          /* Set to true if at least one expr. value extracted */
1262 ){
1263   Index *p = pLoop->u.btree.pIndex;
1264   int nEq = pLoop->u.btree.nEq;
1265   sqlite3 *db = pParse->db;
1266   int nLower = -1;
1267   int nUpper = p->nSample+1;
1268   int rc = SQLITE_OK;
1269   u8 aff = sqlite3IndexColumnAffinity(db, p, nEq);
1270   CollSeq *pColl;
1271 
1272   sqlite3_value *p1 = 0;          /* Value extracted from pLower */
1273   sqlite3_value *p2 = 0;          /* Value extracted from pUpper */
1274   sqlite3_value *pVal = 0;        /* Value extracted from record */
1275 
1276   pColl = sqlite3LocateCollSeq(pParse, p->azColl[nEq]);
1277   if( pLower ){
1278     rc = sqlite3Stat4ValueFromExpr(pParse, pLower->pExpr->pRight, aff, &p1);
1279     nLower = 0;
1280   }
1281   if( pUpper && rc==SQLITE_OK ){
1282     rc = sqlite3Stat4ValueFromExpr(pParse, pUpper->pExpr->pRight, aff, &p2);
1283     nUpper = p2 ? 0 : p->nSample;
1284   }
1285 
1286   if( p1 || p2 ){
1287     int i;
1288     int nDiff;
1289     for(i=0; rc==SQLITE_OK && i<p->nSample; i++){
1290       rc = sqlite3Stat4Column(db, p->aSample[i].p, p->aSample[i].n, nEq, &pVal);
1291       if( rc==SQLITE_OK && p1 ){
1292         int res = sqlite3MemCompare(p1, pVal, pColl);
1293         if( res>=0 ) nLower++;
1294       }
1295       if( rc==SQLITE_OK && p2 ){
1296         int res = sqlite3MemCompare(p2, pVal, pColl);
1297         if( res>=0 ) nUpper++;
1298       }
1299     }
1300     nDiff = (nUpper - nLower);
1301     if( nDiff<=0 ) nDiff = 1;
1302 
1303     /* If there is both an upper and lower bound specified, and the
1304     ** comparisons indicate that they are close together, use the fallback
1305     ** method (assume that the scan visits 1/64 of the rows) for estimating
1306     ** the number of rows visited. Otherwise, estimate the number of rows
1307     ** using the method described in the header comment for this function. */
1308     if( nDiff!=1 || pUpper==0 || pLower==0 ){
1309       int nAdjust = (sqlite3LogEst(p->nSample) - sqlite3LogEst(nDiff));
1310       pLoop->nOut -= nAdjust;
1311       *pbDone = 1;
1312       WHERETRACE(0x10, ("range skip-scan regions: %u..%u  adjust=%d est=%d\n",
1313                            nLower, nUpper, nAdjust*-1, pLoop->nOut));
1314     }
1315 
1316   }else{
1317     assert( *pbDone==0 );
1318   }
1319 
1320   sqlite3ValueFree(p1);
1321   sqlite3ValueFree(p2);
1322   sqlite3ValueFree(pVal);
1323 
1324   return rc;
1325 }
1326 #endif /* SQLITE_ENABLE_STAT3_OR_STAT4 */
1327 
1328 /*
1329 ** This function is used to estimate the number of rows that will be visited
1330 ** by scanning an index for a range of values. The range may have an upper
1331 ** bound, a lower bound, or both. The WHERE clause terms that set the upper
1332 ** and lower bounds are represented by pLower and pUpper respectively. For
1333 ** example, assuming that index p is on t1(a):
1334 **
1335 **   ... FROM t1 WHERE a > ? AND a < ? ...
1336 **                    |_____|   |_____|
1337 **                       |         |
1338 **                     pLower    pUpper
1339 **
1340 ** If either of the upper or lower bound is not present, then NULL is passed in
1341 ** place of the corresponding WhereTerm.
1342 **
1343 ** The value in (pBuilder->pNew->u.btree.nEq) is the number of the index
1344 ** column subject to the range constraint. Or, equivalently, the number of
1345 ** equality constraints optimized by the proposed index scan. For example,
1346 ** assuming index p is on t1(a, b), and the SQL query is:
1347 **
1348 **   ... FROM t1 WHERE a = ? AND b > ? AND b < ? ...
1349 **
1350 ** then nEq is set to 1 (as the range restricted column, b, is the second
1351 ** left-most column of the index). Or, if the query is:
1352 **
1353 **   ... FROM t1 WHERE a > ? AND a < ? ...
1354 **
1355 ** then nEq is set to 0.
1356 **
1357 ** When this function is called, *pnOut is set to the sqlite3LogEst() of the
1358 ** number of rows that the index scan is expected to visit without
1359 ** considering the range constraints. If nEq is 0, then *pnOut is the number of
1360 ** rows in the index. Assuming no error occurs, *pnOut is adjusted (reduced)
1361 ** to account for the range constraints pLower and pUpper.
1362 **
1363 ** In the absence of sqlite_stat4 ANALYZE data, or if such data cannot be
1364 ** used, a single range inequality reduces the search space by a factor of 4.
1365 ** and a pair of constraints (x>? AND x<?) reduces the expected number of
1366 ** rows visited by a factor of 64.
1367 */
1368 static int whereRangeScanEst(
1369   Parse *pParse,       /* Parsing & code generating context */
1370   WhereLoopBuilder *pBuilder,
1371   WhereTerm *pLower,   /* Lower bound on the range. ex: "x>123" Might be NULL */
1372   WhereTerm *pUpper,   /* Upper bound on the range. ex: "x<455" Might be NULL */
1373   WhereLoop *pLoop     /* Modify the .nOut and maybe .rRun fields */
1374 ){
1375   int rc = SQLITE_OK;
1376   int nOut = pLoop->nOut;
1377   LogEst nNew;
1378 
1379 #ifdef SQLITE_ENABLE_STAT3_OR_STAT4
1380   Index *p = pLoop->u.btree.pIndex;
1381   int nEq = pLoop->u.btree.nEq;
1382 
1383   if( p->nSample>0 && nEq<p->nSampleCol ){
1384     if( nEq==pBuilder->nRecValid ){
1385       UnpackedRecord *pRec = pBuilder->pRec;
1386       tRowcnt a[2];
1387       u8 aff;
1388 
1389       /* Variable iLower will be set to the estimate of the number of rows in
1390       ** the index that are less than the lower bound of the range query. The
1391       ** lower bound being the concatenation of $P and $L, where $P is the
1392       ** key-prefix formed by the nEq values matched against the nEq left-most
1393       ** columns of the index, and $L is the value in pLower.
1394       **
1395       ** Or, if pLower is NULL or $L cannot be extracted from it (because it
1396       ** is not a simple variable or literal value), the lower bound of the
1397       ** range is $P. Due to a quirk in the way whereKeyStats() works, even
1398       ** if $L is available, whereKeyStats() is called for both ($P) and
1399       ** ($P:$L) and the larger of the two returned values is used.
1400       **
1401       ** Similarly, iUpper is to be set to the estimate of the number of rows
1402       ** less than the upper bound of the range query. Where the upper bound
1403       ** is either ($P) or ($P:$U). Again, even if $U is available, both values
1404       ** of iUpper are requested of whereKeyStats() and the smaller used.
1405       **
1406       ** The number of rows between the two bounds is then just iUpper-iLower.
1407       */
1408       tRowcnt iLower;     /* Rows less than the lower bound */
1409       tRowcnt iUpper;     /* Rows less than the upper bound */
1410       int iLwrIdx = -2;   /* aSample[] for the lower bound */
1411       int iUprIdx = -1;   /* aSample[] for the upper bound */
1412 
1413       if( pRec ){
1414         testcase( pRec->nField!=pBuilder->nRecValid );
1415         pRec->nField = pBuilder->nRecValid;
1416       }
1417       aff = sqlite3IndexColumnAffinity(pParse->db, p, nEq);
1418       assert( nEq!=p->nKeyCol || aff==SQLITE_AFF_INTEGER );
1419       /* Determine iLower and iUpper using ($P) only. */
1420       if( nEq==0 ){
1421         iLower = 0;
1422         iUpper = p->nRowEst0;
1423       }else{
1424         /* Note: this call could be optimized away - since the same values must
1425         ** have been requested when testing key $P in whereEqualScanEst().  */
1426         whereKeyStats(pParse, p, pRec, 0, a);
1427         iLower = a[0];
1428         iUpper = a[0] + a[1];
1429       }
1430 
1431       assert( pLower==0 || (pLower->eOperator & (WO_GT|WO_GE))!=0 );
1432       assert( pUpper==0 || (pUpper->eOperator & (WO_LT|WO_LE))!=0 );
1433       assert( p->aSortOrder!=0 );
1434       if( p->aSortOrder[nEq] ){
1435         /* The roles of pLower and pUpper are swapped for a DESC index */
1436         SWAP(WhereTerm*, pLower, pUpper);
1437       }
1438 
1439       /* If possible, improve on the iLower estimate using ($P:$L). */
1440       if( pLower ){
1441         int bOk;                    /* True if value is extracted from pExpr */
1442         Expr *pExpr = pLower->pExpr->pRight;
1443         rc = sqlite3Stat4ProbeSetValue(pParse, p, &pRec, pExpr, aff, nEq, &bOk);
1444         if( rc==SQLITE_OK && bOk ){
1445           tRowcnt iNew;
1446           iLwrIdx = whereKeyStats(pParse, p, pRec, 0, a);
1447           iNew = a[0] + ((pLower->eOperator & (WO_GT|WO_LE)) ? a[1] : 0);
1448           if( iNew>iLower ) iLower = iNew;
1449           nOut--;
1450           pLower = 0;
1451         }
1452       }
1453 
1454       /* If possible, improve on the iUpper estimate using ($P:$U). */
1455       if( pUpper ){
1456         int bOk;                    /* True if value is extracted from pExpr */
1457         Expr *pExpr = pUpper->pExpr->pRight;
1458         rc = sqlite3Stat4ProbeSetValue(pParse, p, &pRec, pExpr, aff, nEq, &bOk);
1459         if( rc==SQLITE_OK && bOk ){
1460           tRowcnt iNew;
1461           iUprIdx = whereKeyStats(pParse, p, pRec, 1, a);
1462           iNew = a[0] + ((pUpper->eOperator & (WO_GT|WO_LE)) ? a[1] : 0);
1463           if( iNew<iUpper ) iUpper = iNew;
1464           nOut--;
1465           pUpper = 0;
1466         }
1467       }
1468 
1469       pBuilder->pRec = pRec;
1470       if( rc==SQLITE_OK ){
1471         if( iUpper>iLower ){
1472           nNew = sqlite3LogEst(iUpper - iLower);
1473           /* TUNING:  If both iUpper and iLower are derived from the same
1474           ** sample, then assume they are 4x more selective.  This brings
1475           ** the estimated selectivity more in line with what it would be
1476           ** if estimated without the use of STAT3/4 tables. */
1477           if( iLwrIdx==iUprIdx ) nNew -= 20;  assert( 20==sqlite3LogEst(4) );
1478         }else{
1479           nNew = 10;        assert( 10==sqlite3LogEst(2) );
1480         }
1481         if( nNew<nOut ){
1482           nOut = nNew;
1483         }
1484         WHERETRACE(0x10, ("STAT4 range scan: %u..%u  est=%d\n",
1485                            (u32)iLower, (u32)iUpper, nOut));
1486       }
1487     }else{
1488       int bDone = 0;
1489       rc = whereRangeSkipScanEst(pParse, pLower, pUpper, pLoop, &bDone);
1490       if( bDone ) return rc;
1491     }
1492   }
1493 #else
1494   UNUSED_PARAMETER(pParse);
1495   UNUSED_PARAMETER(pBuilder);
1496   assert( pLower || pUpper );
1497 #endif
1498   assert( pUpper==0 || (pUpper->wtFlags & TERM_VNULL)==0 );
1499   nNew = whereRangeAdjust(pLower, nOut);
1500   nNew = whereRangeAdjust(pUpper, nNew);
1501 
1502   /* TUNING: If there is both an upper and lower limit and neither limit
1503   ** has an application-defined likelihood(), assume the range is
1504   ** reduced by an additional 75%. This means that, by default, an open-ended
1505   ** range query (e.g. col > ?) is assumed to match 1/4 of the rows in the
1506   ** index. While a closed range (e.g. col BETWEEN ? AND ?) is estimated to
1507   ** match 1/64 of the index. */
1508   if( pLower && pLower->truthProb>0 && pUpper && pUpper->truthProb>0 ){
1509     nNew -= 20;
1510   }
1511 
1512   nOut -= (pLower!=0) + (pUpper!=0);
1513   if( nNew<10 ) nNew = 10;
1514   if( nNew<nOut ) nOut = nNew;
1515 #if defined(WHERETRACE_ENABLED)
1516   if( pLoop->nOut>nOut ){
1517     WHERETRACE(0x10,("Range scan lowers nOut from %d to %d\n",
1518                     pLoop->nOut, nOut));
1519   }
1520 #endif
1521   pLoop->nOut = (LogEst)nOut;
1522   return rc;
1523 }
1524 
1525 #ifdef SQLITE_ENABLE_STAT3_OR_STAT4
1526 /*
1527 ** Estimate the number of rows that will be returned based on
1528 ** an equality constraint x=VALUE and where that VALUE occurs in
1529 ** the histogram data.  This only works when x is the left-most
1530 ** column of an index and sqlite_stat3 histogram data is available
1531 ** for that index.  When pExpr==NULL that means the constraint is
1532 ** "x IS NULL" instead of "x=VALUE".
1533 **
1534 ** Write the estimated row count into *pnRow and return SQLITE_OK.
1535 ** If unable to make an estimate, leave *pnRow unchanged and return
1536 ** non-zero.
1537 **
1538 ** This routine can fail if it is unable to load a collating sequence
1539 ** required for string comparison, or if unable to allocate memory
1540 ** for a UTF conversion required for comparison.  The error is stored
1541 ** in the pParse structure.
1542 */
1543 static int whereEqualScanEst(
1544   Parse *pParse,       /* Parsing & code generating context */
1545   WhereLoopBuilder *pBuilder,
1546   Expr *pExpr,         /* Expression for VALUE in the x=VALUE constraint */
1547   tRowcnt *pnRow       /* Write the revised row estimate here */
1548 ){
1549   Index *p = pBuilder->pNew->u.btree.pIndex;
1550   int nEq = pBuilder->pNew->u.btree.nEq;
1551   UnpackedRecord *pRec = pBuilder->pRec;
1552   u8 aff;                   /* Column affinity */
1553   int rc;                   /* Subfunction return code */
1554   tRowcnt a[2];             /* Statistics */
1555   int bOk;
1556 
1557   assert( nEq>=1 );
1558   assert( nEq<=p->nColumn );
1559   assert( p->aSample!=0 );
1560   assert( p->nSample>0 );
1561   assert( pBuilder->nRecValid<nEq );
1562 
1563   /* If values are not available for all fields of the index to the left
1564   ** of this one, no estimate can be made. Return SQLITE_NOTFOUND. */
1565   if( pBuilder->nRecValid<(nEq-1) ){
1566     return SQLITE_NOTFOUND;
1567   }
1568 
1569   /* This is an optimization only. The call to sqlite3Stat4ProbeSetValue()
1570   ** below would return the same value.  */
1571   if( nEq>=p->nColumn ){
1572     *pnRow = 1;
1573     return SQLITE_OK;
1574   }
1575 
1576   aff = sqlite3IndexColumnAffinity(pParse->db, p, nEq-1);
1577   rc = sqlite3Stat4ProbeSetValue(pParse, p, &pRec, pExpr, aff, nEq-1, &bOk);
1578   pBuilder->pRec = pRec;
1579   if( rc!=SQLITE_OK ) return rc;
1580   if( bOk==0 ) return SQLITE_NOTFOUND;
1581   pBuilder->nRecValid = nEq;
1582 
1583   whereKeyStats(pParse, p, pRec, 0, a);
1584   WHERETRACE(0x10,("equality scan regions %s(%d): %d\n",
1585                    p->zName, nEq-1, (int)a[1]));
1586   *pnRow = a[1];
1587 
1588   return rc;
1589 }
1590 #endif /* SQLITE_ENABLE_STAT3_OR_STAT4 */
1591 
1592 #ifdef SQLITE_ENABLE_STAT3_OR_STAT4
1593 /*
1594 ** Estimate the number of rows that will be returned based on
1595 ** an IN constraint where the right-hand side of the IN operator
1596 ** is a list of values.  Example:
1597 **
1598 **        WHERE x IN (1,2,3,4)
1599 **
1600 ** Write the estimated row count into *pnRow and return SQLITE_OK.
1601 ** If unable to make an estimate, leave *pnRow unchanged and return
1602 ** non-zero.
1603 **
1604 ** This routine can fail if it is unable to load a collating sequence
1605 ** required for string comparison, or if unable to allocate memory
1606 ** for a UTF conversion required for comparison.  The error is stored
1607 ** in the pParse structure.
1608 */
1609 static int whereInScanEst(
1610   Parse *pParse,       /* Parsing & code generating context */
1611   WhereLoopBuilder *pBuilder,
1612   ExprList *pList,     /* The value list on the RHS of "x IN (v1,v2,v3,...)" */
1613   tRowcnt *pnRow       /* Write the revised row estimate here */
1614 ){
1615   Index *p = pBuilder->pNew->u.btree.pIndex;
1616   i64 nRow0 = sqlite3LogEstToInt(p->aiRowLogEst[0]);
1617   int nRecValid = pBuilder->nRecValid;
1618   int rc = SQLITE_OK;     /* Subfunction return code */
1619   tRowcnt nEst;           /* Number of rows for a single term */
1620   tRowcnt nRowEst = 0;    /* New estimate of the number of rows */
1621   int i;                  /* Loop counter */
1622 
1623   assert( p->aSample!=0 );
1624   for(i=0; rc==SQLITE_OK && i<pList->nExpr; i++){
1625     nEst = nRow0;
1626     rc = whereEqualScanEst(pParse, pBuilder, pList->a[i].pExpr, &nEst);
1627     nRowEst += nEst;
1628     pBuilder->nRecValid = nRecValid;
1629   }
1630 
1631   if( rc==SQLITE_OK ){
1632     if( nRowEst > nRow0 ) nRowEst = nRow0;
1633     *pnRow = nRowEst;
1634     WHERETRACE(0x10,("IN row estimate: est=%d\n", nRowEst));
1635   }
1636   assert( pBuilder->nRecValid==nRecValid );
1637   return rc;
1638 }
1639 #endif /* SQLITE_ENABLE_STAT3_OR_STAT4 */
1640 
1641 
1642 #ifdef WHERETRACE_ENABLED
1643 /*
1644 ** Print the content of a WhereTerm object
1645 */
1646 static void whereTermPrint(WhereTerm *pTerm, int iTerm){
1647   if( pTerm==0 ){
1648     sqlite3DebugPrintf("TERM-%-3d NULL\n", iTerm);
1649   }else{
1650     char zType[4];
1651     char zLeft[50];
1652     memcpy(zType, "...", 4);
1653     if( pTerm->wtFlags & TERM_VIRTUAL ) zType[0] = 'V';
1654     if( pTerm->eOperator & WO_EQUIV  ) zType[1] = 'E';
1655     if( ExprHasProperty(pTerm->pExpr, EP_FromJoin) ) zType[2] = 'L';
1656     if( pTerm->eOperator & WO_SINGLE ){
1657       sqlite3_snprintf(sizeof(zLeft),zLeft,"left={%d:%d}",
1658                        pTerm->leftCursor, pTerm->u.leftColumn);
1659     }else if( (pTerm->eOperator & WO_OR)!=0 && pTerm->u.pOrInfo!=0 ){
1660       sqlite3_snprintf(sizeof(zLeft),zLeft,"indexable=0x%lld",
1661                        pTerm->u.pOrInfo->indexable);
1662     }else{
1663       sqlite3_snprintf(sizeof(zLeft),zLeft,"left=%d", pTerm->leftCursor);
1664     }
1665     sqlite3DebugPrintf(
1666        "TERM-%-3d %p %s %-12s prob=%-3d op=0x%03x wtFlags=0x%04x\n",
1667        iTerm, pTerm, zType, zLeft, pTerm->truthProb,
1668        pTerm->eOperator, pTerm->wtFlags);
1669     sqlite3TreeViewExpr(0, pTerm->pExpr, 0);
1670   }
1671 }
1672 #endif
1673 
1674 #ifdef WHERETRACE_ENABLED
1675 /*
1676 ** Show the complete content of a WhereClause
1677 */
1678 void sqlite3WhereClausePrint(WhereClause *pWC){
1679   int i;
1680   for(i=0; i<pWC->nTerm; i++){
1681     whereTermPrint(&pWC->a[i], i);
1682   }
1683 }
1684 #endif
1685 
1686 #ifdef WHERETRACE_ENABLED
1687 /*
1688 ** Print a WhereLoop object for debugging purposes
1689 */
1690 static void whereLoopPrint(WhereLoop *p, WhereClause *pWC){
1691   WhereInfo *pWInfo = pWC->pWInfo;
1692   int nb = 1+(pWInfo->pTabList->nSrc+3)/4;
1693   struct SrcList_item *pItem = pWInfo->pTabList->a + p->iTab;
1694   Table *pTab = pItem->pTab;
1695   Bitmask mAll = (((Bitmask)1)<<(nb*4)) - 1;
1696   sqlite3DebugPrintf("%c%2d.%0*llx.%0*llx", p->cId,
1697                      p->iTab, nb, p->maskSelf, nb, p->prereq & mAll);
1698   sqlite3DebugPrintf(" %12s",
1699                      pItem->zAlias ? pItem->zAlias : pTab->zName);
1700   if( (p->wsFlags & WHERE_VIRTUALTABLE)==0 ){
1701     const char *zName;
1702     if( p->u.btree.pIndex && (zName = p->u.btree.pIndex->zName)!=0 ){
1703       if( strncmp(zName, "sqlite_autoindex_", 17)==0 ){
1704         int i = sqlite3Strlen30(zName) - 1;
1705         while( zName[i]!='_' ) i--;
1706         zName += i;
1707       }
1708       sqlite3DebugPrintf(".%-16s %2d", zName, p->u.btree.nEq);
1709     }else{
1710       sqlite3DebugPrintf("%20s","");
1711     }
1712   }else{
1713     char *z;
1714     if( p->u.vtab.idxStr ){
1715       z = sqlite3_mprintf("(%d,\"%s\",%x)",
1716                 p->u.vtab.idxNum, p->u.vtab.idxStr, p->u.vtab.omitMask);
1717     }else{
1718       z = sqlite3_mprintf("(%d,%x)", p->u.vtab.idxNum, p->u.vtab.omitMask);
1719     }
1720     sqlite3DebugPrintf(" %-19s", z);
1721     sqlite3_free(z);
1722   }
1723   if( p->wsFlags & WHERE_SKIPSCAN ){
1724     sqlite3DebugPrintf(" f %05x %d-%d", p->wsFlags, p->nLTerm,p->nSkip);
1725   }else{
1726     sqlite3DebugPrintf(" f %05x N %d", p->wsFlags, p->nLTerm);
1727   }
1728   sqlite3DebugPrintf(" cost %d,%d,%d\n", p->rSetup, p->rRun, p->nOut);
1729   if( p->nLTerm && (sqlite3WhereTrace & 0x100)!=0 ){
1730     int i;
1731     for(i=0; i<p->nLTerm; i++){
1732       whereTermPrint(p->aLTerm[i], i);
1733     }
1734   }
1735 }
1736 #endif
1737 
1738 /*
1739 ** Convert bulk memory into a valid WhereLoop that can be passed
1740 ** to whereLoopClear harmlessly.
1741 */
1742 static void whereLoopInit(WhereLoop *p){
1743   p->aLTerm = p->aLTermSpace;
1744   p->nLTerm = 0;
1745   p->nLSlot = ArraySize(p->aLTermSpace);
1746   p->wsFlags = 0;
1747 }
1748 
1749 /*
1750 ** Clear the WhereLoop.u union.  Leave WhereLoop.pLTerm intact.
1751 */
1752 static void whereLoopClearUnion(sqlite3 *db, WhereLoop *p){
1753   if( p->wsFlags & (WHERE_VIRTUALTABLE|WHERE_AUTO_INDEX) ){
1754     if( (p->wsFlags & WHERE_VIRTUALTABLE)!=0 && p->u.vtab.needFree ){
1755       sqlite3_free(p->u.vtab.idxStr);
1756       p->u.vtab.needFree = 0;
1757       p->u.vtab.idxStr = 0;
1758     }else if( (p->wsFlags & WHERE_AUTO_INDEX)!=0 && p->u.btree.pIndex!=0 ){
1759       sqlite3DbFree(db, p->u.btree.pIndex->zColAff);
1760       sqlite3DbFree(db, p->u.btree.pIndex);
1761       p->u.btree.pIndex = 0;
1762     }
1763   }
1764 }
1765 
1766 /*
1767 ** Deallocate internal memory used by a WhereLoop object
1768 */
1769 static void whereLoopClear(sqlite3 *db, WhereLoop *p){
1770   if( p->aLTerm!=p->aLTermSpace ) sqlite3DbFree(db, p->aLTerm);
1771   whereLoopClearUnion(db, p);
1772   whereLoopInit(p);
1773 }
1774 
1775 /*
1776 ** Increase the memory allocation for pLoop->aLTerm[] to be at least n.
1777 */
1778 static int whereLoopResize(sqlite3 *db, WhereLoop *p, int n){
1779   WhereTerm **paNew;
1780   if( p->nLSlot>=n ) return SQLITE_OK;
1781   n = (n+7)&~7;
1782   paNew = sqlite3DbMallocRawNN(db, sizeof(p->aLTerm[0])*n);
1783   if( paNew==0 ) return SQLITE_NOMEM_BKPT;
1784   memcpy(paNew, p->aLTerm, sizeof(p->aLTerm[0])*p->nLSlot);
1785   if( p->aLTerm!=p->aLTermSpace ) sqlite3DbFree(db, p->aLTerm);
1786   p->aLTerm = paNew;
1787   p->nLSlot = n;
1788   return SQLITE_OK;
1789 }
1790 
1791 /*
1792 ** Transfer content from the second pLoop into the first.
1793 */
1794 static int whereLoopXfer(sqlite3 *db, WhereLoop *pTo, WhereLoop *pFrom){
1795   whereLoopClearUnion(db, pTo);
1796   if( whereLoopResize(db, pTo, pFrom->nLTerm) ){
1797     memset(&pTo->u, 0, sizeof(pTo->u));
1798     return SQLITE_NOMEM_BKPT;
1799   }
1800   memcpy(pTo, pFrom, WHERE_LOOP_XFER_SZ);
1801   memcpy(pTo->aLTerm, pFrom->aLTerm, pTo->nLTerm*sizeof(pTo->aLTerm[0]));
1802   if( pFrom->wsFlags & WHERE_VIRTUALTABLE ){
1803     pFrom->u.vtab.needFree = 0;
1804   }else if( (pFrom->wsFlags & WHERE_AUTO_INDEX)!=0 ){
1805     pFrom->u.btree.pIndex = 0;
1806   }
1807   return SQLITE_OK;
1808 }
1809 
1810 /*
1811 ** Delete a WhereLoop object
1812 */
1813 static void whereLoopDelete(sqlite3 *db, WhereLoop *p){
1814   whereLoopClear(db, p);
1815   sqlite3DbFree(db, p);
1816 }
1817 
1818 /*
1819 ** Free a WhereInfo structure
1820 */
1821 static void whereInfoFree(sqlite3 *db, WhereInfo *pWInfo){
1822   if( ALWAYS(pWInfo) ){
1823     int i;
1824     for(i=0; i<pWInfo->nLevel; i++){
1825       WhereLevel *pLevel = &pWInfo->a[i];
1826       if( pLevel->pWLoop && (pLevel->pWLoop->wsFlags & WHERE_IN_ABLE) ){
1827         sqlite3DbFree(db, pLevel->u.in.aInLoop);
1828       }
1829     }
1830     sqlite3WhereClauseClear(&pWInfo->sWC);
1831     while( pWInfo->pLoops ){
1832       WhereLoop *p = pWInfo->pLoops;
1833       pWInfo->pLoops = p->pNextLoop;
1834       whereLoopDelete(db, p);
1835     }
1836     sqlite3DbFree(db, pWInfo);
1837   }
1838 }
1839 
1840 /*
1841 ** Return TRUE if all of the following are true:
1842 **
1843 **   (1)  X has the same or lower cost that Y
1844 **   (2)  X is a proper subset of Y
1845 **   (3)  X skips at least as many columns as Y
1846 **
1847 ** By "proper subset" we mean that X uses fewer WHERE clause terms
1848 ** than Y and that every WHERE clause term used by X is also used
1849 ** by Y.
1850 **
1851 ** If X is a proper subset of Y then Y is a better choice and ought
1852 ** to have a lower cost.  This routine returns TRUE when that cost
1853 ** relationship is inverted and needs to be adjusted.  The third rule
1854 ** was added because if X uses skip-scan less than Y it still might
1855 ** deserve a lower cost even if it is a proper subset of Y.
1856 */
1857 static int whereLoopCheaperProperSubset(
1858   const WhereLoop *pX,       /* First WhereLoop to compare */
1859   const WhereLoop *pY        /* Compare against this WhereLoop */
1860 ){
1861   int i, j;
1862   if( pX->nLTerm-pX->nSkip >= pY->nLTerm-pY->nSkip ){
1863     return 0; /* X is not a subset of Y */
1864   }
1865   if( pY->nSkip > pX->nSkip ) return 0;
1866   if( pX->rRun >= pY->rRun ){
1867     if( pX->rRun > pY->rRun ) return 0;    /* X costs more than Y */
1868     if( pX->nOut > pY->nOut ) return 0;    /* X costs more than Y */
1869   }
1870   for(i=pX->nLTerm-1; i>=0; i--){
1871     if( pX->aLTerm[i]==0 ) continue;
1872     for(j=pY->nLTerm-1; j>=0; j--){
1873       if( pY->aLTerm[j]==pX->aLTerm[i] ) break;
1874     }
1875     if( j<0 ) return 0;  /* X not a subset of Y since term X[i] not used by Y */
1876   }
1877   return 1;  /* All conditions meet */
1878 }
1879 
1880 /*
1881 ** Try to adjust the cost of WhereLoop pTemplate upwards or downwards so
1882 ** that:
1883 **
1884 **   (1) pTemplate costs less than any other WhereLoops that are a proper
1885 **       subset of pTemplate
1886 **
1887 **   (2) pTemplate costs more than any other WhereLoops for which pTemplate
1888 **       is a proper subset.
1889 **
1890 ** To say "WhereLoop X is a proper subset of Y" means that X uses fewer
1891 ** WHERE clause terms than Y and that every WHERE clause term used by X is
1892 ** also used by Y.
1893 */
1894 static void whereLoopAdjustCost(const WhereLoop *p, WhereLoop *pTemplate){
1895   if( (pTemplate->wsFlags & WHERE_INDEXED)==0 ) return;
1896   for(; p; p=p->pNextLoop){
1897     if( p->iTab!=pTemplate->iTab ) continue;
1898     if( (p->wsFlags & WHERE_INDEXED)==0 ) continue;
1899     if( whereLoopCheaperProperSubset(p, pTemplate) ){
1900       /* Adjust pTemplate cost downward so that it is cheaper than its
1901       ** subset p. */
1902       WHERETRACE(0x80,("subset cost adjustment %d,%d to %d,%d\n",
1903                        pTemplate->rRun, pTemplate->nOut, p->rRun, p->nOut-1));
1904       pTemplate->rRun = p->rRun;
1905       pTemplate->nOut = p->nOut - 1;
1906     }else if( whereLoopCheaperProperSubset(pTemplate, p) ){
1907       /* Adjust pTemplate cost upward so that it is costlier than p since
1908       ** pTemplate is a proper subset of p */
1909       WHERETRACE(0x80,("subset cost adjustment %d,%d to %d,%d\n",
1910                        pTemplate->rRun, pTemplate->nOut, p->rRun, p->nOut+1));
1911       pTemplate->rRun = p->rRun;
1912       pTemplate->nOut = p->nOut + 1;
1913     }
1914   }
1915 }
1916 
1917 /*
1918 ** Search the list of WhereLoops in *ppPrev looking for one that can be
1919 ** supplanted by pTemplate.
1920 **
1921 ** Return NULL if the WhereLoop list contains an entry that can supplant
1922 ** pTemplate, in other words if pTemplate does not belong on the list.
1923 **
1924 ** If pX is a WhereLoop that pTemplate can supplant, then return the
1925 ** link that points to pX.
1926 **
1927 ** If pTemplate cannot supplant any existing element of the list but needs
1928 ** to be added to the list, then return a pointer to the tail of the list.
1929 */
1930 static WhereLoop **whereLoopFindLesser(
1931   WhereLoop **ppPrev,
1932   const WhereLoop *pTemplate
1933 ){
1934   WhereLoop *p;
1935   for(p=(*ppPrev); p; ppPrev=&p->pNextLoop, p=*ppPrev){
1936     if( p->iTab!=pTemplate->iTab || p->iSortIdx!=pTemplate->iSortIdx ){
1937       /* If either the iTab or iSortIdx values for two WhereLoop are different
1938       ** then those WhereLoops need to be considered separately.  Neither is
1939       ** a candidate to replace the other. */
1940       continue;
1941     }
1942     /* In the current implementation, the rSetup value is either zero
1943     ** or the cost of building an automatic index (NlogN) and the NlogN
1944     ** is the same for compatible WhereLoops. */
1945     assert( p->rSetup==0 || pTemplate->rSetup==0
1946                  || p->rSetup==pTemplate->rSetup );
1947 
1948     /* whereLoopAddBtree() always generates and inserts the automatic index
1949     ** case first.  Hence compatible candidate WhereLoops never have a larger
1950     ** rSetup. Call this SETUP-INVARIANT */
1951     assert( p->rSetup>=pTemplate->rSetup );
1952 
1953     /* Any loop using an appliation-defined index (or PRIMARY KEY or
1954     ** UNIQUE constraint) with one or more == constraints is better
1955     ** than an automatic index. Unless it is a skip-scan. */
1956     if( (p->wsFlags & WHERE_AUTO_INDEX)!=0
1957      && (pTemplate->nSkip)==0
1958      && (pTemplate->wsFlags & WHERE_INDEXED)!=0
1959      && (pTemplate->wsFlags & WHERE_COLUMN_EQ)!=0
1960      && (p->prereq & pTemplate->prereq)==pTemplate->prereq
1961     ){
1962       break;
1963     }
1964 
1965     /* If existing WhereLoop p is better than pTemplate, pTemplate can be
1966     ** discarded.  WhereLoop p is better if:
1967     **   (1)  p has no more dependencies than pTemplate, and
1968     **   (2)  p has an equal or lower cost than pTemplate
1969     */
1970     if( (p->prereq & pTemplate->prereq)==p->prereq    /* (1)  */
1971      && p->rSetup<=pTemplate->rSetup                  /* (2a) */
1972      && p->rRun<=pTemplate->rRun                      /* (2b) */
1973      && p->nOut<=pTemplate->nOut                      /* (2c) */
1974     ){
1975       return 0;  /* Discard pTemplate */
1976     }
1977 
1978     /* If pTemplate is always better than p, then cause p to be overwritten
1979     ** with pTemplate.  pTemplate is better than p if:
1980     **   (1)  pTemplate has no more dependences than p, and
1981     **   (2)  pTemplate has an equal or lower cost than p.
1982     */
1983     if( (p->prereq & pTemplate->prereq)==pTemplate->prereq   /* (1)  */
1984      && p->rRun>=pTemplate->rRun                             /* (2a) */
1985      && p->nOut>=pTemplate->nOut                             /* (2b) */
1986     ){
1987       assert( p->rSetup>=pTemplate->rSetup ); /* SETUP-INVARIANT above */
1988       break;   /* Cause p to be overwritten by pTemplate */
1989     }
1990   }
1991   return ppPrev;
1992 }
1993 
1994 /*
1995 ** Insert or replace a WhereLoop entry using the template supplied.
1996 **
1997 ** An existing WhereLoop entry might be overwritten if the new template
1998 ** is better and has fewer dependencies.  Or the template will be ignored
1999 ** and no insert will occur if an existing WhereLoop is faster and has
2000 ** fewer dependencies than the template.  Otherwise a new WhereLoop is
2001 ** added based on the template.
2002 **
2003 ** If pBuilder->pOrSet is not NULL then we care about only the
2004 ** prerequisites and rRun and nOut costs of the N best loops.  That
2005 ** information is gathered in the pBuilder->pOrSet object.  This special
2006 ** processing mode is used only for OR clause processing.
2007 **
2008 ** When accumulating multiple loops (when pBuilder->pOrSet is NULL) we
2009 ** still might overwrite similar loops with the new template if the
2010 ** new template is better.  Loops may be overwritten if the following
2011 ** conditions are met:
2012 **
2013 **    (1)  They have the same iTab.
2014 **    (2)  They have the same iSortIdx.
2015 **    (3)  The template has same or fewer dependencies than the current loop
2016 **    (4)  The template has the same or lower cost than the current loop
2017 */
2018 static int whereLoopInsert(WhereLoopBuilder *pBuilder, WhereLoop *pTemplate){
2019   WhereLoop **ppPrev, *p;
2020   WhereInfo *pWInfo = pBuilder->pWInfo;
2021   sqlite3 *db = pWInfo->pParse->db;
2022   int rc;
2023 
2024   /* If pBuilder->pOrSet is defined, then only keep track of the costs
2025   ** and prereqs.
2026   */
2027   if( pBuilder->pOrSet!=0 ){
2028     if( pTemplate->nLTerm ){
2029 #if WHERETRACE_ENABLED
2030       u16 n = pBuilder->pOrSet->n;
2031       int x =
2032 #endif
2033       whereOrInsert(pBuilder->pOrSet, pTemplate->prereq, pTemplate->rRun,
2034                                     pTemplate->nOut);
2035 #if WHERETRACE_ENABLED /* 0x8 */
2036       if( sqlite3WhereTrace & 0x8 ){
2037         sqlite3DebugPrintf(x?"   or-%d:  ":"   or-X:  ", n);
2038         whereLoopPrint(pTemplate, pBuilder->pWC);
2039       }
2040 #endif
2041     }
2042     return SQLITE_OK;
2043   }
2044 
2045   /* Look for an existing WhereLoop to replace with pTemplate
2046   */
2047   whereLoopAdjustCost(pWInfo->pLoops, pTemplate);
2048   ppPrev = whereLoopFindLesser(&pWInfo->pLoops, pTemplate);
2049 
2050   if( ppPrev==0 ){
2051     /* There already exists a WhereLoop on the list that is better
2052     ** than pTemplate, so just ignore pTemplate */
2053 #if WHERETRACE_ENABLED /* 0x8 */
2054     if( sqlite3WhereTrace & 0x8 ){
2055       sqlite3DebugPrintf("   skip: ");
2056       whereLoopPrint(pTemplate, pBuilder->pWC);
2057     }
2058 #endif
2059     return SQLITE_OK;
2060   }else{
2061     p = *ppPrev;
2062   }
2063 
2064   /* If we reach this point it means that either p[] should be overwritten
2065   ** with pTemplate[] if p[] exists, or if p==NULL then allocate a new
2066   ** WhereLoop and insert it.
2067   */
2068 #if WHERETRACE_ENABLED /* 0x8 */
2069   if( sqlite3WhereTrace & 0x8 ){
2070     if( p!=0 ){
2071       sqlite3DebugPrintf("replace: ");
2072       whereLoopPrint(p, pBuilder->pWC);
2073     }
2074     sqlite3DebugPrintf("    add: ");
2075     whereLoopPrint(pTemplate, pBuilder->pWC);
2076   }
2077 #endif
2078   if( p==0 ){
2079     /* Allocate a new WhereLoop to add to the end of the list */
2080     *ppPrev = p = sqlite3DbMallocRawNN(db, sizeof(WhereLoop));
2081     if( p==0 ) return SQLITE_NOMEM_BKPT;
2082     whereLoopInit(p);
2083     p->pNextLoop = 0;
2084   }else{
2085     /* We will be overwriting WhereLoop p[].  But before we do, first
2086     ** go through the rest of the list and delete any other entries besides
2087     ** p[] that are also supplated by pTemplate */
2088     WhereLoop **ppTail = &p->pNextLoop;
2089     WhereLoop *pToDel;
2090     while( *ppTail ){
2091       ppTail = whereLoopFindLesser(ppTail, pTemplate);
2092       if( ppTail==0 ) break;
2093       pToDel = *ppTail;
2094       if( pToDel==0 ) break;
2095       *ppTail = pToDel->pNextLoop;
2096 #if WHERETRACE_ENABLED /* 0x8 */
2097       if( sqlite3WhereTrace & 0x8 ){
2098         sqlite3DebugPrintf(" delete: ");
2099         whereLoopPrint(pToDel, pBuilder->pWC);
2100       }
2101 #endif
2102       whereLoopDelete(db, pToDel);
2103     }
2104   }
2105   rc = whereLoopXfer(db, p, pTemplate);
2106   if( (p->wsFlags & WHERE_VIRTUALTABLE)==0 ){
2107     Index *pIndex = p->u.btree.pIndex;
2108     if( pIndex && pIndex->tnum==0 ){
2109       p->u.btree.pIndex = 0;
2110     }
2111   }
2112   return rc;
2113 }
2114 
2115 /*
2116 ** Adjust the WhereLoop.nOut value downward to account for terms of the
2117 ** WHERE clause that reference the loop but which are not used by an
2118 ** index.
2119 *
2120 ** For every WHERE clause term that is not used by the index
2121 ** and which has a truth probability assigned by one of the likelihood(),
2122 ** likely(), or unlikely() SQL functions, reduce the estimated number
2123 ** of output rows by the probability specified.
2124 **
2125 ** TUNING:  For every WHERE clause term that is not used by the index
2126 ** and which does not have an assigned truth probability, heuristics
2127 ** described below are used to try to estimate the truth probability.
2128 ** TODO --> Perhaps this is something that could be improved by better
2129 ** table statistics.
2130 **
2131 ** Heuristic 1:  Estimate the truth probability as 93.75%.  The 93.75%
2132 ** value corresponds to -1 in LogEst notation, so this means decrement
2133 ** the WhereLoop.nOut field for every such WHERE clause term.
2134 **
2135 ** Heuristic 2:  If there exists one or more WHERE clause terms of the
2136 ** form "x==EXPR" and EXPR is not a constant 0 or 1, then make sure the
2137 ** final output row estimate is no greater than 1/4 of the total number
2138 ** of rows in the table.  In other words, assume that x==EXPR will filter
2139 ** out at least 3 out of 4 rows.  If EXPR is -1 or 0 or 1, then maybe the
2140 ** "x" column is boolean or else -1 or 0 or 1 is a common default value
2141 ** on the "x" column and so in that case only cap the output row estimate
2142 ** at 1/2 instead of 1/4.
2143 */
2144 static void whereLoopOutputAdjust(
2145   WhereClause *pWC,      /* The WHERE clause */
2146   WhereLoop *pLoop,      /* The loop to adjust downward */
2147   LogEst nRow            /* Number of rows in the entire table */
2148 ){
2149   WhereTerm *pTerm, *pX;
2150   Bitmask notAllowed = ~(pLoop->prereq|pLoop->maskSelf);
2151   int i, j, k;
2152   LogEst iReduce = 0;    /* pLoop->nOut should not exceed nRow-iReduce */
2153 
2154   assert( (pLoop->wsFlags & WHERE_AUTO_INDEX)==0 );
2155   for(i=pWC->nTerm, pTerm=pWC->a; i>0; i--, pTerm++){
2156     if( (pTerm->wtFlags & TERM_VIRTUAL)!=0 ) break;
2157     if( (pTerm->prereqAll & pLoop->maskSelf)==0 ) continue;
2158     if( (pTerm->prereqAll & notAllowed)!=0 ) continue;
2159     for(j=pLoop->nLTerm-1; j>=0; j--){
2160       pX = pLoop->aLTerm[j];
2161       if( pX==0 ) continue;
2162       if( pX==pTerm ) break;
2163       if( pX->iParent>=0 && (&pWC->a[pX->iParent])==pTerm ) break;
2164     }
2165     if( j<0 ){
2166       if( pTerm->truthProb<=0 ){
2167         /* If a truth probability is specified using the likelihood() hints,
2168         ** then use the probability provided by the application. */
2169         pLoop->nOut += pTerm->truthProb;
2170       }else{
2171         /* In the absence of explicit truth probabilities, use heuristics to
2172         ** guess a reasonable truth probability. */
2173         pLoop->nOut--;
2174         if( pTerm->eOperator&(WO_EQ|WO_IS) ){
2175           Expr *pRight = pTerm->pExpr->pRight;
2176           testcase( pTerm->pExpr->op==TK_IS );
2177           if( sqlite3ExprIsInteger(pRight, &k) && k>=(-1) && k<=1 ){
2178             k = 10;
2179           }else{
2180             k = 20;
2181           }
2182           if( iReduce<k ) iReduce = k;
2183         }
2184       }
2185     }
2186   }
2187   if( pLoop->nOut > nRow-iReduce )  pLoop->nOut = nRow - iReduce;
2188 }
2189 
2190 /*
2191 ** Adjust the cost C by the costMult facter T.  This only occurs if
2192 ** compiled with -DSQLITE_ENABLE_COSTMULT
2193 */
2194 #ifdef SQLITE_ENABLE_COSTMULT
2195 # define ApplyCostMultiplier(C,T)  C += T
2196 #else
2197 # define ApplyCostMultiplier(C,T)
2198 #endif
2199 
2200 /*
2201 ** We have so far matched pBuilder->pNew->u.btree.nEq terms of the
2202 ** index pIndex. Try to match one more.
2203 **
2204 ** When this function is called, pBuilder->pNew->nOut contains the
2205 ** number of rows expected to be visited by filtering using the nEq
2206 ** terms only. If it is modified, this value is restored before this
2207 ** function returns.
2208 **
2209 ** If pProbe->tnum==0, that means pIndex is a fake index used for the
2210 ** INTEGER PRIMARY KEY.
2211 */
2212 static int whereLoopAddBtreeIndex(
2213   WhereLoopBuilder *pBuilder,     /* The WhereLoop factory */
2214   struct SrcList_item *pSrc,      /* FROM clause term being analyzed */
2215   Index *pProbe,                  /* An index on pSrc */
2216   LogEst nInMul                   /* log(Number of iterations due to IN) */
2217 ){
2218   WhereInfo *pWInfo = pBuilder->pWInfo;  /* WHERE analyse context */
2219   Parse *pParse = pWInfo->pParse;        /* Parsing context */
2220   sqlite3 *db = pParse->db;       /* Database connection malloc context */
2221   WhereLoop *pNew;                /* Template WhereLoop under construction */
2222   WhereTerm *pTerm;               /* A WhereTerm under consideration */
2223   int opMask;                     /* Valid operators for constraints */
2224   WhereScan scan;                 /* Iterator for WHERE terms */
2225   Bitmask saved_prereq;           /* Original value of pNew->prereq */
2226   u16 saved_nLTerm;               /* Original value of pNew->nLTerm */
2227   u16 saved_nEq;                  /* Original value of pNew->u.btree.nEq */
2228   u16 saved_nSkip;                /* Original value of pNew->nSkip */
2229   u32 saved_wsFlags;              /* Original value of pNew->wsFlags */
2230   LogEst saved_nOut;              /* Original value of pNew->nOut */
2231   int rc = SQLITE_OK;             /* Return code */
2232   LogEst rSize;                   /* Number of rows in the table */
2233   LogEst rLogSize;                /* Logarithm of table size */
2234   WhereTerm *pTop = 0, *pBtm = 0; /* Top and bottom range constraints */
2235 
2236   pNew = pBuilder->pNew;
2237   if( db->mallocFailed ) return SQLITE_NOMEM_BKPT;
2238 
2239   assert( (pNew->wsFlags & WHERE_VIRTUALTABLE)==0 );
2240   assert( (pNew->wsFlags & WHERE_TOP_LIMIT)==0 );
2241   if( pNew->wsFlags & WHERE_BTM_LIMIT ){
2242     opMask = WO_LT|WO_LE;
2243   }else{
2244     opMask = WO_EQ|WO_IN|WO_GT|WO_GE|WO_LT|WO_LE|WO_ISNULL|WO_IS;
2245   }
2246   if( pProbe->bUnordered ) opMask &= ~(WO_GT|WO_GE|WO_LT|WO_LE);
2247 
2248   assert( pNew->u.btree.nEq<pProbe->nColumn );
2249 
2250   saved_nEq = pNew->u.btree.nEq;
2251   saved_nSkip = pNew->nSkip;
2252   saved_nLTerm = pNew->nLTerm;
2253   saved_wsFlags = pNew->wsFlags;
2254   saved_prereq = pNew->prereq;
2255   saved_nOut = pNew->nOut;
2256   pTerm = whereScanInit(&scan, pBuilder->pWC, pSrc->iCursor, saved_nEq,
2257                         opMask, pProbe);
2258   pNew->rSetup = 0;
2259   rSize = pProbe->aiRowLogEst[0];
2260   rLogSize = estLog(rSize);
2261   for(; rc==SQLITE_OK && pTerm!=0; pTerm = whereScanNext(&scan)){
2262     u16 eOp = pTerm->eOperator;   /* Shorthand for pTerm->eOperator */
2263     LogEst rCostIdx;
2264     LogEst nOutUnadjusted;        /* nOut before IN() and WHERE adjustments */
2265     int nIn = 0;
2266 #ifdef SQLITE_ENABLE_STAT3_OR_STAT4
2267     int nRecValid = pBuilder->nRecValid;
2268 #endif
2269     if( (eOp==WO_ISNULL || (pTerm->wtFlags&TERM_VNULL)!=0)
2270      && indexColumnNotNull(pProbe, saved_nEq)
2271     ){
2272       continue; /* ignore IS [NOT] NULL constraints on NOT NULL columns */
2273     }
2274     if( pTerm->prereqRight & pNew->maskSelf ) continue;
2275 
2276     /* Do not allow the upper bound of a LIKE optimization range constraint
2277     ** to mix with a lower range bound from some other source */
2278     if( pTerm->wtFlags & TERM_LIKEOPT && pTerm->eOperator==WO_LT ) continue;
2279 
2280     /* Do not allow IS constraints from the WHERE clause to be used by the
2281     ** right table of a LEFT JOIN.  Only constraints in the ON clause are
2282     ** allowed */
2283     if( (pSrc->fg.jointype & JT_LEFT)!=0
2284      && !ExprHasProperty(pTerm->pExpr, EP_FromJoin)
2285      && (eOp & (WO_IS|WO_ISNULL))!=0
2286     ){
2287       testcase( eOp & WO_IS );
2288       testcase( eOp & WO_ISNULL );
2289       continue;
2290     }
2291 
2292     pNew->wsFlags = saved_wsFlags;
2293     pNew->u.btree.nEq = saved_nEq;
2294     pNew->nLTerm = saved_nLTerm;
2295     if( whereLoopResize(db, pNew, pNew->nLTerm+1) ) break; /* OOM */
2296     pNew->aLTerm[pNew->nLTerm++] = pTerm;
2297     pNew->prereq = (saved_prereq | pTerm->prereqRight) & ~pNew->maskSelf;
2298 
2299     assert( nInMul==0
2300         || (pNew->wsFlags & WHERE_COLUMN_NULL)!=0
2301         || (pNew->wsFlags & WHERE_COLUMN_IN)!=0
2302         || (pNew->wsFlags & WHERE_SKIPSCAN)!=0
2303     );
2304 
2305     if( eOp & WO_IN ){
2306       Expr *pExpr = pTerm->pExpr;
2307       pNew->wsFlags |= WHERE_COLUMN_IN;
2308       if( ExprHasProperty(pExpr, EP_xIsSelect) ){
2309         /* "x IN (SELECT ...)":  TUNING: the SELECT returns 25 rows */
2310         nIn = 46;  assert( 46==sqlite3LogEst(25) );
2311       }else if( ALWAYS(pExpr->x.pList && pExpr->x.pList->nExpr) ){
2312         /* "x IN (value, value, ...)" */
2313         nIn = sqlite3LogEst(pExpr->x.pList->nExpr);
2314       }
2315       assert( nIn>0 );  /* RHS always has 2 or more terms...  The parser
2316                         ** changes "x IN (?)" into "x=?". */
2317 
2318     }else if( eOp & (WO_EQ|WO_IS) ){
2319       int iCol = pProbe->aiColumn[saved_nEq];
2320       pNew->wsFlags |= WHERE_COLUMN_EQ;
2321       assert( saved_nEq==pNew->u.btree.nEq );
2322       if( iCol==XN_ROWID
2323        || (iCol>0 && nInMul==0 && saved_nEq==pProbe->nKeyCol-1)
2324       ){
2325         if( iCol>=0 && pProbe->uniqNotNull==0 ){
2326           pNew->wsFlags |= WHERE_UNQ_WANTED;
2327         }else{
2328           pNew->wsFlags |= WHERE_ONEROW;
2329         }
2330       }
2331     }else if( eOp & WO_ISNULL ){
2332       pNew->wsFlags |= WHERE_COLUMN_NULL;
2333     }else if( eOp & (WO_GT|WO_GE) ){
2334       testcase( eOp & WO_GT );
2335       testcase( eOp & WO_GE );
2336       pNew->wsFlags |= WHERE_COLUMN_RANGE|WHERE_BTM_LIMIT;
2337       pBtm = pTerm;
2338       pTop = 0;
2339       if( pTerm->wtFlags & TERM_LIKEOPT ){
2340         /* Range contraints that come from the LIKE optimization are
2341         ** always used in pairs. */
2342         pTop = &pTerm[1];
2343         assert( (pTop-(pTerm->pWC->a))<pTerm->pWC->nTerm );
2344         assert( pTop->wtFlags & TERM_LIKEOPT );
2345         assert( pTop->eOperator==WO_LT );
2346         if( whereLoopResize(db, pNew, pNew->nLTerm+1) ) break; /* OOM */
2347         pNew->aLTerm[pNew->nLTerm++] = pTop;
2348         pNew->wsFlags |= WHERE_TOP_LIMIT;
2349       }
2350     }else{
2351       assert( eOp & (WO_LT|WO_LE) );
2352       testcase( eOp & WO_LT );
2353       testcase( eOp & WO_LE );
2354       pNew->wsFlags |= WHERE_COLUMN_RANGE|WHERE_TOP_LIMIT;
2355       pTop = pTerm;
2356       pBtm = (pNew->wsFlags & WHERE_BTM_LIMIT)!=0 ?
2357                      pNew->aLTerm[pNew->nLTerm-2] : 0;
2358     }
2359 
2360     /* At this point pNew->nOut is set to the number of rows expected to
2361     ** be visited by the index scan before considering term pTerm, or the
2362     ** values of nIn and nInMul. In other words, assuming that all
2363     ** "x IN(...)" terms are replaced with "x = ?". This block updates
2364     ** the value of pNew->nOut to account for pTerm (but not nIn/nInMul).  */
2365     assert( pNew->nOut==saved_nOut );
2366     if( pNew->wsFlags & WHERE_COLUMN_RANGE ){
2367       /* Adjust nOut using stat3/stat4 data. Or, if there is no stat3/stat4
2368       ** data, using some other estimate.  */
2369       whereRangeScanEst(pParse, pBuilder, pBtm, pTop, pNew);
2370     }else{
2371       int nEq = ++pNew->u.btree.nEq;
2372       assert( eOp & (WO_ISNULL|WO_EQ|WO_IN|WO_IS) );
2373 
2374       assert( pNew->nOut==saved_nOut );
2375       if( pTerm->truthProb<=0 && pProbe->aiColumn[saved_nEq]>=0 ){
2376         assert( (eOp & WO_IN) || nIn==0 );
2377         testcase( eOp & WO_IN );
2378         pNew->nOut += pTerm->truthProb;
2379         pNew->nOut -= nIn;
2380       }else{
2381 #ifdef SQLITE_ENABLE_STAT3_OR_STAT4
2382         tRowcnt nOut = 0;
2383         if( nInMul==0
2384          && pProbe->nSample
2385          && pNew->u.btree.nEq<=pProbe->nSampleCol
2386          && ((eOp & WO_IN)==0 || !ExprHasProperty(pTerm->pExpr, EP_xIsSelect))
2387         ){
2388           Expr *pExpr = pTerm->pExpr;
2389           if( (eOp & (WO_EQ|WO_ISNULL|WO_IS))!=0 ){
2390             testcase( eOp & WO_EQ );
2391             testcase( eOp & WO_IS );
2392             testcase( eOp & WO_ISNULL );
2393             rc = whereEqualScanEst(pParse, pBuilder, pExpr->pRight, &nOut);
2394           }else{
2395             rc = whereInScanEst(pParse, pBuilder, pExpr->x.pList, &nOut);
2396           }
2397           if( rc==SQLITE_NOTFOUND ) rc = SQLITE_OK;
2398           if( rc!=SQLITE_OK ) break;          /* Jump out of the pTerm loop */
2399           if( nOut ){
2400             pNew->nOut = sqlite3LogEst(nOut);
2401             if( pNew->nOut>saved_nOut ) pNew->nOut = saved_nOut;
2402             pNew->nOut -= nIn;
2403           }
2404         }
2405         if( nOut==0 )
2406 #endif
2407         {
2408           pNew->nOut += (pProbe->aiRowLogEst[nEq] - pProbe->aiRowLogEst[nEq-1]);
2409           if( eOp & WO_ISNULL ){
2410             /* TUNING: If there is no likelihood() value, assume that a
2411             ** "col IS NULL" expression matches twice as many rows
2412             ** as (col=?). */
2413             pNew->nOut += 10;
2414           }
2415         }
2416       }
2417     }
2418 
2419     /* Set rCostIdx to the cost of visiting selected rows in index. Add
2420     ** it to pNew->rRun, which is currently set to the cost of the index
2421     ** seek only. Then, if this is a non-covering index, add the cost of
2422     ** visiting the rows in the main table.  */
2423     rCostIdx = pNew->nOut + 1 + (15*pProbe->szIdxRow)/pSrc->pTab->szTabRow;
2424     pNew->rRun = sqlite3LogEstAdd(rLogSize, rCostIdx);
2425     if( (pNew->wsFlags & (WHERE_IDX_ONLY|WHERE_IPK))==0 ){
2426       pNew->rRun = sqlite3LogEstAdd(pNew->rRun, pNew->nOut + 16);
2427     }
2428     ApplyCostMultiplier(pNew->rRun, pProbe->pTable->costMult);
2429 
2430     nOutUnadjusted = pNew->nOut;
2431     pNew->rRun += nInMul + nIn;
2432     pNew->nOut += nInMul + nIn;
2433     whereLoopOutputAdjust(pBuilder->pWC, pNew, rSize);
2434     rc = whereLoopInsert(pBuilder, pNew);
2435 
2436     if( pNew->wsFlags & WHERE_COLUMN_RANGE ){
2437       pNew->nOut = saved_nOut;
2438     }else{
2439       pNew->nOut = nOutUnadjusted;
2440     }
2441 
2442     if( (pNew->wsFlags & WHERE_TOP_LIMIT)==0
2443      && pNew->u.btree.nEq<pProbe->nColumn
2444     ){
2445       whereLoopAddBtreeIndex(pBuilder, pSrc, pProbe, nInMul+nIn);
2446     }
2447     pNew->nOut = saved_nOut;
2448 #ifdef SQLITE_ENABLE_STAT3_OR_STAT4
2449     pBuilder->nRecValid = nRecValid;
2450 #endif
2451   }
2452   pNew->prereq = saved_prereq;
2453   pNew->u.btree.nEq = saved_nEq;
2454   pNew->nSkip = saved_nSkip;
2455   pNew->wsFlags = saved_wsFlags;
2456   pNew->nOut = saved_nOut;
2457   pNew->nLTerm = saved_nLTerm;
2458 
2459   /* Consider using a skip-scan if there are no WHERE clause constraints
2460   ** available for the left-most terms of the index, and if the average
2461   ** number of repeats in the left-most terms is at least 18.
2462   **
2463   ** The magic number 18 is selected on the basis that scanning 17 rows
2464   ** is almost always quicker than an index seek (even though if the index
2465   ** contains fewer than 2^17 rows we assume otherwise in other parts of
2466   ** the code). And, even if it is not, it should not be too much slower.
2467   ** On the other hand, the extra seeks could end up being significantly
2468   ** more expensive.  */
2469   assert( 42==sqlite3LogEst(18) );
2470   if( saved_nEq==saved_nSkip
2471    && saved_nEq+1<pProbe->nKeyCol
2472    && pProbe->noSkipScan==0
2473    && pProbe->aiRowLogEst[saved_nEq+1]>=42  /* TUNING: Minimum for skip-scan */
2474    && (rc = whereLoopResize(db, pNew, pNew->nLTerm+1))==SQLITE_OK
2475   ){
2476     LogEst nIter;
2477     pNew->u.btree.nEq++;
2478     pNew->nSkip++;
2479     pNew->aLTerm[pNew->nLTerm++] = 0;
2480     pNew->wsFlags |= WHERE_SKIPSCAN;
2481     nIter = pProbe->aiRowLogEst[saved_nEq]+1 - pProbe->aiRowLogEst[saved_nEq+1];
2482     pNew->nOut -= nIter;
2483     /* TUNING:  Because uncertainties in the estimates for skip-scan queries,
2484     ** add a 1.375 fudge factor to make skip-scan slightly less likely. */
2485     nIter += 4;
2486     whereLoopAddBtreeIndex(pBuilder, pSrc, pProbe, nIter + nInMul);
2487     pNew->nOut = saved_nOut;
2488     pNew->u.btree.nEq = saved_nEq;
2489     pNew->nSkip = saved_nSkip;
2490     pNew->wsFlags = saved_wsFlags;
2491   }
2492 
2493   return rc;
2494 }
2495 
2496 /*
2497 ** Return True if it is possible that pIndex might be useful in
2498 ** implementing the ORDER BY clause in pBuilder.
2499 **
2500 ** Return False if pBuilder does not contain an ORDER BY clause or
2501 ** if there is no way for pIndex to be useful in implementing that
2502 ** ORDER BY clause.
2503 */
2504 static int indexMightHelpWithOrderBy(
2505   WhereLoopBuilder *pBuilder,
2506   Index *pIndex,
2507   int iCursor
2508 ){
2509   ExprList *pOB;
2510   ExprList *aColExpr;
2511   int ii, jj;
2512 
2513   if( pIndex->bUnordered ) return 0;
2514   if( (pOB = pBuilder->pWInfo->pOrderBy)==0 ) return 0;
2515   for(ii=0; ii<pOB->nExpr; ii++){
2516     Expr *pExpr = sqlite3ExprSkipCollate(pOB->a[ii].pExpr);
2517     if( pExpr->op==TK_COLUMN && pExpr->iTable==iCursor ){
2518       if( pExpr->iColumn<0 ) return 1;
2519       for(jj=0; jj<pIndex->nKeyCol; jj++){
2520         if( pExpr->iColumn==pIndex->aiColumn[jj] ) return 1;
2521       }
2522     }else if( (aColExpr = pIndex->aColExpr)!=0 ){
2523       for(jj=0; jj<pIndex->nKeyCol; jj++){
2524         if( pIndex->aiColumn[jj]!=XN_EXPR ) continue;
2525         if( sqlite3ExprCompare(pExpr,aColExpr->a[jj].pExpr,iCursor)==0 ){
2526           return 1;
2527         }
2528       }
2529     }
2530   }
2531   return 0;
2532 }
2533 
2534 /*
2535 ** Return a bitmask where 1s indicate that the corresponding column of
2536 ** the table is used by an index.  Only the first 63 columns are considered.
2537 */
2538 static Bitmask columnsInIndex(Index *pIdx){
2539   Bitmask m = 0;
2540   int j;
2541   for(j=pIdx->nColumn-1; j>=0; j--){
2542     int x = pIdx->aiColumn[j];
2543     if( x>=0 ){
2544       testcase( x==BMS-1 );
2545       testcase( x==BMS-2 );
2546       if( x<BMS-1 ) m |= MASKBIT(x);
2547     }
2548   }
2549   return m;
2550 }
2551 
2552 /* Check to see if a partial index with pPartIndexWhere can be used
2553 ** in the current query.  Return true if it can be and false if not.
2554 */
2555 static int whereUsablePartialIndex(int iTab, WhereClause *pWC, Expr *pWhere){
2556   int i;
2557   WhereTerm *pTerm;
2558   while( pWhere->op==TK_AND ){
2559     if( !whereUsablePartialIndex(iTab,pWC,pWhere->pLeft) ) return 0;
2560     pWhere = pWhere->pRight;
2561   }
2562   for(i=0, pTerm=pWC->a; i<pWC->nTerm; i++, pTerm++){
2563     Expr *pExpr = pTerm->pExpr;
2564     if( sqlite3ExprImpliesExpr(pExpr, pWhere, iTab)
2565      && (!ExprHasProperty(pExpr, EP_FromJoin) || pExpr->iRightJoinTable==iTab)
2566     ){
2567       return 1;
2568     }
2569   }
2570   return 0;
2571 }
2572 
2573 /*
2574 ** Add all WhereLoop objects for a single table of the join where the table
2575 ** is idenfied by pBuilder->pNew->iTab.  That table is guaranteed to be
2576 ** a b-tree table, not a virtual table.
2577 **
2578 ** The costs (WhereLoop.rRun) of the b-tree loops added by this function
2579 ** are calculated as follows:
2580 **
2581 ** For a full scan, assuming the table (or index) contains nRow rows:
2582 **
2583 **     cost = nRow * 3.0                    // full-table scan
2584 **     cost = nRow * K                      // scan of covering index
2585 **     cost = nRow * (K+3.0)                // scan of non-covering index
2586 **
2587 ** where K is a value between 1.1 and 3.0 set based on the relative
2588 ** estimated average size of the index and table records.
2589 **
2590 ** For an index scan, where nVisit is the number of index rows visited
2591 ** by the scan, and nSeek is the number of seek operations required on
2592 ** the index b-tree:
2593 **
2594 **     cost = nSeek * (log(nRow) + K * nVisit)          // covering index
2595 **     cost = nSeek * (log(nRow) + (K+3.0) * nVisit)    // non-covering index
2596 **
2597 ** Normally, nSeek is 1. nSeek values greater than 1 come about if the
2598 ** WHERE clause includes "x IN (....)" terms used in place of "x=?". Or when
2599 ** implicit "x IN (SELECT x FROM tbl)" terms are added for skip-scans.
2600 **
2601 ** The estimated values (nRow, nVisit, nSeek) often contain a large amount
2602 ** of uncertainty.  For this reason, scoring is designed to pick plans that
2603 ** "do the least harm" if the estimates are inaccurate.  For example, a
2604 ** log(nRow) factor is omitted from a non-covering index scan in order to
2605 ** bias the scoring in favor of using an index, since the worst-case
2606 ** performance of using an index is far better than the worst-case performance
2607 ** of a full table scan.
2608 */
2609 static int whereLoopAddBtree(
2610   WhereLoopBuilder *pBuilder, /* WHERE clause information */
2611   Bitmask mPrereq             /* Extra prerequesites for using this table */
2612 ){
2613   WhereInfo *pWInfo;          /* WHERE analysis context */
2614   Index *pProbe;              /* An index we are evaluating */
2615   Index sPk;                  /* A fake index object for the primary key */
2616   LogEst aiRowEstPk[2];       /* The aiRowLogEst[] value for the sPk index */
2617   i16 aiColumnPk = -1;        /* The aColumn[] value for the sPk index */
2618   SrcList *pTabList;          /* The FROM clause */
2619   struct SrcList_item *pSrc;  /* The FROM clause btree term to add */
2620   WhereLoop *pNew;            /* Template WhereLoop object */
2621   int rc = SQLITE_OK;         /* Return code */
2622   int iSortIdx = 1;           /* Index number */
2623   int b;                      /* A boolean value */
2624   LogEst rSize;               /* number of rows in the table */
2625   LogEst rLogSize;            /* Logarithm of the number of rows in the table */
2626   WhereClause *pWC;           /* The parsed WHERE clause */
2627   Table *pTab;                /* Table being queried */
2628 
2629   pNew = pBuilder->pNew;
2630   pWInfo = pBuilder->pWInfo;
2631   pTabList = pWInfo->pTabList;
2632   pSrc = pTabList->a + pNew->iTab;
2633   pTab = pSrc->pTab;
2634   pWC = pBuilder->pWC;
2635   assert( !IsVirtual(pSrc->pTab) );
2636 
2637   if( pSrc->pIBIndex ){
2638     /* An INDEXED BY clause specifies a particular index to use */
2639     pProbe = pSrc->pIBIndex;
2640   }else if( !HasRowid(pTab) ){
2641     pProbe = pTab->pIndex;
2642   }else{
2643     /* There is no INDEXED BY clause.  Create a fake Index object in local
2644     ** variable sPk to represent the rowid primary key index.  Make this
2645     ** fake index the first in a chain of Index objects with all of the real
2646     ** indices to follow */
2647     Index *pFirst;                  /* First of real indices on the table */
2648     memset(&sPk, 0, sizeof(Index));
2649     sPk.nKeyCol = 1;
2650     sPk.nColumn = 1;
2651     sPk.aiColumn = &aiColumnPk;
2652     sPk.aiRowLogEst = aiRowEstPk;
2653     sPk.onError = OE_Replace;
2654     sPk.pTable = pTab;
2655     sPk.szIdxRow = pTab->szTabRow;
2656     aiRowEstPk[0] = pTab->nRowLogEst;
2657     aiRowEstPk[1] = 0;
2658     pFirst = pSrc->pTab->pIndex;
2659     if( pSrc->fg.notIndexed==0 ){
2660       /* The real indices of the table are only considered if the
2661       ** NOT INDEXED qualifier is omitted from the FROM clause */
2662       sPk.pNext = pFirst;
2663     }
2664     pProbe = &sPk;
2665   }
2666   rSize = pTab->nRowLogEst;
2667   rLogSize = estLog(rSize);
2668 
2669 #ifndef SQLITE_OMIT_AUTOMATIC_INDEX
2670   /* Automatic indexes */
2671   if( !pBuilder->pOrSet      /* Not part of an OR optimization */
2672    && (pWInfo->wctrlFlags & WHERE_OR_SUBCLAUSE)==0
2673    && (pWInfo->pParse->db->flags & SQLITE_AutoIndex)!=0
2674    && pSrc->pIBIndex==0      /* Has no INDEXED BY clause */
2675    && !pSrc->fg.notIndexed   /* Has no NOT INDEXED clause */
2676    && HasRowid(pTab)         /* Not WITHOUT ROWID table. (FIXME: Why not?) */
2677    && !pSrc->fg.isCorrelated /* Not a correlated subquery */
2678    && !pSrc->fg.isRecursive  /* Not a recursive common table expression. */
2679   ){
2680     /* Generate auto-index WhereLoops */
2681     WhereTerm *pTerm;
2682     WhereTerm *pWCEnd = pWC->a + pWC->nTerm;
2683     for(pTerm=pWC->a; rc==SQLITE_OK && pTerm<pWCEnd; pTerm++){
2684       if( pTerm->prereqRight & pNew->maskSelf ) continue;
2685       if( termCanDriveIndex(pTerm, pSrc, 0) ){
2686         pNew->u.btree.nEq = 1;
2687         pNew->nSkip = 0;
2688         pNew->u.btree.pIndex = 0;
2689         pNew->nLTerm = 1;
2690         pNew->aLTerm[0] = pTerm;
2691         /* TUNING: One-time cost for computing the automatic index is
2692         ** estimated to be X*N*log2(N) where N is the number of rows in
2693         ** the table being indexed and where X is 7 (LogEst=28) for normal
2694         ** tables or 1.375 (LogEst=4) for views and subqueries.  The value
2695         ** of X is smaller for views and subqueries so that the query planner
2696         ** will be more aggressive about generating automatic indexes for
2697         ** those objects, since there is no opportunity to add schema
2698         ** indexes on subqueries and views. */
2699         pNew->rSetup = rLogSize + rSize + 4;
2700         if( pTab->pSelect==0 && (pTab->tabFlags & TF_Ephemeral)==0 ){
2701           pNew->rSetup += 24;
2702         }
2703         ApplyCostMultiplier(pNew->rSetup, pTab->costMult);
2704         if( pNew->rSetup<0 ) pNew->rSetup = 0;
2705         /* TUNING: Each index lookup yields 20 rows in the table.  This
2706         ** is more than the usual guess of 10 rows, since we have no way
2707         ** of knowing how selective the index will ultimately be.  It would
2708         ** not be unreasonable to make this value much larger. */
2709         pNew->nOut = 43;  assert( 43==sqlite3LogEst(20) );
2710         pNew->rRun = sqlite3LogEstAdd(rLogSize,pNew->nOut);
2711         pNew->wsFlags = WHERE_AUTO_INDEX;
2712         pNew->prereq = mPrereq | pTerm->prereqRight;
2713         rc = whereLoopInsert(pBuilder, pNew);
2714       }
2715     }
2716   }
2717 #endif /* SQLITE_OMIT_AUTOMATIC_INDEX */
2718 
2719   /* Loop over all indices
2720   */
2721   for(; rc==SQLITE_OK && pProbe; pProbe=pProbe->pNext, iSortIdx++){
2722     if( pProbe->pPartIdxWhere!=0
2723      && !whereUsablePartialIndex(pSrc->iCursor, pWC, pProbe->pPartIdxWhere) ){
2724       testcase( pNew->iTab!=pSrc->iCursor );  /* See ticket [98d973b8f5] */
2725       continue;  /* Partial index inappropriate for this query */
2726     }
2727     rSize = pProbe->aiRowLogEst[0];
2728     pNew->u.btree.nEq = 0;
2729     pNew->nSkip = 0;
2730     pNew->nLTerm = 0;
2731     pNew->iSortIdx = 0;
2732     pNew->rSetup = 0;
2733     pNew->prereq = mPrereq;
2734     pNew->nOut = rSize;
2735     pNew->u.btree.pIndex = pProbe;
2736     b = indexMightHelpWithOrderBy(pBuilder, pProbe, pSrc->iCursor);
2737     /* The ONEPASS_DESIRED flags never occurs together with ORDER BY */
2738     assert( (pWInfo->wctrlFlags & WHERE_ONEPASS_DESIRED)==0 || b==0 );
2739     if( pProbe->tnum<=0 ){
2740       /* Integer primary key index */
2741       pNew->wsFlags = WHERE_IPK;
2742 
2743       /* Full table scan */
2744       pNew->iSortIdx = b ? iSortIdx : 0;
2745       /* TUNING: Cost of full table scan is (N*3.0). */
2746       pNew->rRun = rSize + 16;
2747       ApplyCostMultiplier(pNew->rRun, pTab->costMult);
2748       whereLoopOutputAdjust(pWC, pNew, rSize);
2749       rc = whereLoopInsert(pBuilder, pNew);
2750       pNew->nOut = rSize;
2751       if( rc ) break;
2752     }else{
2753       Bitmask m;
2754       if( pProbe->isCovering ){
2755         pNew->wsFlags = WHERE_IDX_ONLY | WHERE_INDEXED;
2756         m = 0;
2757       }else{
2758         m = pSrc->colUsed & ~columnsInIndex(pProbe);
2759         pNew->wsFlags = (m==0) ? (WHERE_IDX_ONLY|WHERE_INDEXED) : WHERE_INDEXED;
2760       }
2761 
2762       /* Full scan via index */
2763       if( b
2764        || !HasRowid(pTab)
2765        || pProbe->pPartIdxWhere!=0
2766        || ( m==0
2767          && pProbe->bUnordered==0
2768          && (pProbe->szIdxRow<pTab->szTabRow)
2769          && (pWInfo->wctrlFlags & WHERE_ONEPASS_DESIRED)==0
2770          && sqlite3GlobalConfig.bUseCis
2771          && OptimizationEnabled(pWInfo->pParse->db, SQLITE_CoverIdxScan)
2772           )
2773       ){
2774         pNew->iSortIdx = b ? iSortIdx : 0;
2775 
2776         /* The cost of visiting the index rows is N*K, where K is
2777         ** between 1.1 and 3.0, depending on the relative sizes of the
2778         ** index and table rows. */
2779         pNew->rRun = rSize + 1 + (15*pProbe->szIdxRow)/pTab->szTabRow;
2780         if( m!=0 ){
2781           /* If this is a non-covering index scan, add in the cost of
2782           ** doing table lookups.  The cost will be 3x the number of
2783           ** lookups.  Take into account WHERE clause terms that can be
2784           ** satisfied using just the index, and that do not require a
2785           ** table lookup. */
2786           LogEst nLookup = rSize + 16;  /* Base cost:  N*3 */
2787           int ii;
2788           int iCur = pSrc->iCursor;
2789           WhereClause *pWC = &pWInfo->sWC;
2790           for(ii=0; ii<pWC->nTerm; ii++){
2791             WhereTerm *pTerm = &pWC->a[ii];
2792             if( !sqlite3ExprCoveredByIndex(pTerm->pExpr, iCur, pProbe) ){
2793               break;
2794             }
2795             /* pTerm can be evaluated using just the index.  So reduce
2796             ** the expected number of table lookups accordingly */
2797             if( pTerm->truthProb<=0 ){
2798               nLookup += pTerm->truthProb;
2799             }else{
2800               nLookup--;
2801               if( pTerm->eOperator & (WO_EQ|WO_IS) ) nLookup -= 19;
2802             }
2803           }
2804 
2805           pNew->rRun = sqlite3LogEstAdd(pNew->rRun, nLookup);
2806         }
2807         ApplyCostMultiplier(pNew->rRun, pTab->costMult);
2808         whereLoopOutputAdjust(pWC, pNew, rSize);
2809         rc = whereLoopInsert(pBuilder, pNew);
2810         pNew->nOut = rSize;
2811         if( rc ) break;
2812       }
2813     }
2814 
2815     rc = whereLoopAddBtreeIndex(pBuilder, pSrc, pProbe, 0);
2816 #ifdef SQLITE_ENABLE_STAT3_OR_STAT4
2817     sqlite3Stat4ProbeFree(pBuilder->pRec);
2818     pBuilder->nRecValid = 0;
2819     pBuilder->pRec = 0;
2820 #endif
2821 
2822     /* If there was an INDEXED BY clause, then only that one index is
2823     ** considered. */
2824     if( pSrc->pIBIndex ) break;
2825   }
2826   return rc;
2827 }
2828 
2829 #ifndef SQLITE_OMIT_VIRTUALTABLE
2830 
2831 /*
2832 ** Argument pIdxInfo is already populated with all constraints that may
2833 ** be used by the virtual table identified by pBuilder->pNew->iTab. This
2834 ** function marks a subset of those constraints usable, invokes the
2835 ** xBestIndex method and adds the returned plan to pBuilder.
2836 **
2837 ** A constraint is marked usable if:
2838 **
2839 **   * Argument mUsable indicates that its prerequisites are available, and
2840 **
2841 **   * It is not one of the operators specified in the mExclude mask passed
2842 **     as the fourth argument (which in practice is either WO_IN or 0).
2843 **
2844 ** Argument mPrereq is a mask of tables that must be scanned before the
2845 ** virtual table in question. These are added to the plans prerequisites
2846 ** before it is added to pBuilder.
2847 **
2848 ** Output parameter *pbIn is set to true if the plan added to pBuilder
2849 ** uses one or more WO_IN terms, or false otherwise.
2850 */
2851 static int whereLoopAddVirtualOne(
2852   WhereLoopBuilder *pBuilder,
2853   Bitmask mPrereq,                /* Mask of tables that must be used. */
2854   Bitmask mUsable,                /* Mask of usable tables */
2855   u16 mExclude,                   /* Exclude terms using these operators */
2856   sqlite3_index_info *pIdxInfo,   /* Populated object for xBestIndex */
2857   int *pbIn                       /* OUT: True if plan uses an IN(...) op */
2858 ){
2859   WhereClause *pWC = pBuilder->pWC;
2860   struct sqlite3_index_constraint *pIdxCons;
2861   struct sqlite3_index_constraint_usage *pUsage = pIdxInfo->aConstraintUsage;
2862   int i;
2863   int mxTerm;
2864   int rc = SQLITE_OK;
2865   WhereLoop *pNew = pBuilder->pNew;
2866   Parse *pParse = pBuilder->pWInfo->pParse;
2867   struct SrcList_item *pSrc = &pBuilder->pWInfo->pTabList->a[pNew->iTab];
2868   int nConstraint = pIdxInfo->nConstraint;
2869 
2870   assert( (mUsable & mPrereq)==mPrereq );
2871   *pbIn = 0;
2872   pNew->prereq = mPrereq;
2873 
2874   /* Set the usable flag on the subset of constraints identified by
2875   ** arguments mUsable and mExclude. */
2876   pIdxCons = *(struct sqlite3_index_constraint**)&pIdxInfo->aConstraint;
2877   for(i=0; i<nConstraint; i++, pIdxCons++){
2878     WhereTerm *pTerm = &pWC->a[pIdxCons->iTermOffset];
2879     pIdxCons->usable = 0;
2880     if( (pTerm->prereqRight & mUsable)==pTerm->prereqRight
2881      && (pTerm->eOperator & mExclude)==0
2882     ){
2883       pIdxCons->usable = 1;
2884     }
2885   }
2886 
2887   /* Initialize the output fields of the sqlite3_index_info structure */
2888   memset(pUsage, 0, sizeof(pUsage[0])*nConstraint);
2889   assert( pIdxInfo->needToFreeIdxStr==0 );
2890   pIdxInfo->idxStr = 0;
2891   pIdxInfo->idxNum = 0;
2892   pIdxInfo->orderByConsumed = 0;
2893   pIdxInfo->estimatedCost = SQLITE_BIG_DBL / (double)2;
2894   pIdxInfo->estimatedRows = 25;
2895   pIdxInfo->idxFlags = 0;
2896   pIdxInfo->colUsed = (sqlite3_int64)pSrc->colUsed;
2897 
2898   /* Invoke the virtual table xBestIndex() method */
2899   rc = vtabBestIndex(pParse, pSrc->pTab, pIdxInfo);
2900   if( rc ) return rc;
2901 
2902   mxTerm = -1;
2903   assert( pNew->nLSlot>=nConstraint );
2904   for(i=0; i<nConstraint; i++) pNew->aLTerm[i] = 0;
2905   pNew->u.vtab.omitMask = 0;
2906   pIdxCons = *(struct sqlite3_index_constraint**)&pIdxInfo->aConstraint;
2907   for(i=0; i<nConstraint; i++, pIdxCons++){
2908     int iTerm;
2909     if( (iTerm = pUsage[i].argvIndex - 1)>=0 ){
2910       WhereTerm *pTerm;
2911       int j = pIdxCons->iTermOffset;
2912       if( iTerm>=nConstraint
2913        || j<0
2914        || j>=pWC->nTerm
2915        || pNew->aLTerm[iTerm]!=0
2916        || pIdxCons->usable==0
2917       ){
2918         rc = SQLITE_ERROR;
2919         sqlite3ErrorMsg(pParse,"%s.xBestIndex malfunction",pSrc->pTab->zName);
2920         return rc;
2921       }
2922       testcase( iTerm==nConstraint-1 );
2923       testcase( j==0 );
2924       testcase( j==pWC->nTerm-1 );
2925       pTerm = &pWC->a[j];
2926       pNew->prereq |= pTerm->prereqRight;
2927       assert( iTerm<pNew->nLSlot );
2928       pNew->aLTerm[iTerm] = pTerm;
2929       if( iTerm>mxTerm ) mxTerm = iTerm;
2930       testcase( iTerm==15 );
2931       testcase( iTerm==16 );
2932       if( iTerm<16 && pUsage[i].omit ) pNew->u.vtab.omitMask |= 1<<iTerm;
2933       if( (pTerm->eOperator & WO_IN)!=0 ){
2934         /* A virtual table that is constrained by an IN clause may not
2935         ** consume the ORDER BY clause because (1) the order of IN terms
2936         ** is not necessarily related to the order of output terms and
2937         ** (2) Multiple outputs from a single IN value will not merge
2938         ** together.  */
2939         pIdxInfo->orderByConsumed = 0;
2940         pIdxInfo->idxFlags &= ~SQLITE_INDEX_SCAN_UNIQUE;
2941         *pbIn = 1; assert( (mExclude & WO_IN)==0 );
2942       }
2943     }
2944   }
2945 
2946   pNew->nLTerm = mxTerm+1;
2947   assert( pNew->nLTerm<=pNew->nLSlot );
2948   pNew->u.vtab.idxNum = pIdxInfo->idxNum;
2949   pNew->u.vtab.needFree = pIdxInfo->needToFreeIdxStr;
2950   pIdxInfo->needToFreeIdxStr = 0;
2951   pNew->u.vtab.idxStr = pIdxInfo->idxStr;
2952   pNew->u.vtab.isOrdered = (i8)(pIdxInfo->orderByConsumed ?
2953       pIdxInfo->nOrderBy : 0);
2954   pNew->rSetup = 0;
2955   pNew->rRun = sqlite3LogEstFromDouble(pIdxInfo->estimatedCost);
2956   pNew->nOut = sqlite3LogEst(pIdxInfo->estimatedRows);
2957 
2958   /* Set the WHERE_ONEROW flag if the xBestIndex() method indicated
2959   ** that the scan will visit at most one row. Clear it otherwise. */
2960   if( pIdxInfo->idxFlags & SQLITE_INDEX_SCAN_UNIQUE ){
2961     pNew->wsFlags |= WHERE_ONEROW;
2962   }else{
2963     pNew->wsFlags &= ~WHERE_ONEROW;
2964   }
2965   rc = whereLoopInsert(pBuilder, pNew);
2966   if( pNew->u.vtab.needFree ){
2967     sqlite3_free(pNew->u.vtab.idxStr);
2968     pNew->u.vtab.needFree = 0;
2969   }
2970   WHERETRACE(0xffff, ("  bIn=%d prereqIn=%04llx prereqOut=%04llx\n",
2971                       *pbIn, (sqlite3_uint64)mPrereq,
2972                       (sqlite3_uint64)(pNew->prereq & ~mPrereq)));
2973 
2974   return rc;
2975 }
2976 
2977 
2978 /*
2979 ** Add all WhereLoop objects for a table of the join identified by
2980 ** pBuilder->pNew->iTab.  That table is guaranteed to be a virtual table.
2981 **
2982 ** If there are no LEFT or CROSS JOIN joins in the query, both mPrereq and
2983 ** mUnusable are set to 0. Otherwise, mPrereq is a mask of all FROM clause
2984 ** entries that occur before the virtual table in the FROM clause and are
2985 ** separated from it by at least one LEFT or CROSS JOIN. Similarly, the
2986 ** mUnusable mask contains all FROM clause entries that occur after the
2987 ** virtual table and are separated from it by at least one LEFT or
2988 ** CROSS JOIN.
2989 **
2990 ** For example, if the query were:
2991 **
2992 **   ... FROM t1, t2 LEFT JOIN t3, t4, vt CROSS JOIN t5, t6;
2993 **
2994 ** then mPrereq corresponds to (t1, t2) and mUnusable to (t5, t6).
2995 **
2996 ** All the tables in mPrereq must be scanned before the current virtual
2997 ** table. So any terms for which all prerequisites are satisfied by
2998 ** mPrereq may be specified as "usable" in all calls to xBestIndex.
2999 ** Conversely, all tables in mUnusable must be scanned after the current
3000 ** virtual table, so any terms for which the prerequisites overlap with
3001 ** mUnusable should always be configured as "not-usable" for xBestIndex.
3002 */
3003 static int whereLoopAddVirtual(
3004   WhereLoopBuilder *pBuilder,  /* WHERE clause information */
3005   Bitmask mPrereq,             /* Tables that must be scanned before this one */
3006   Bitmask mUnusable            /* Tables that must be scanned after this one */
3007 ){
3008   int rc = SQLITE_OK;          /* Return code */
3009   WhereInfo *pWInfo;           /* WHERE analysis context */
3010   Parse *pParse;               /* The parsing context */
3011   WhereClause *pWC;            /* The WHERE clause */
3012   struct SrcList_item *pSrc;   /* The FROM clause term to search */
3013   sqlite3_index_info *p;       /* Object to pass to xBestIndex() */
3014   int nConstraint;             /* Number of constraints in p */
3015   int bIn;                     /* True if plan uses IN(...) operator */
3016   WhereLoop *pNew;
3017   Bitmask mBest;               /* Tables used by best possible plan */
3018 
3019   assert( (mPrereq & mUnusable)==0 );
3020   pWInfo = pBuilder->pWInfo;
3021   pParse = pWInfo->pParse;
3022   pWC = pBuilder->pWC;
3023   pNew = pBuilder->pNew;
3024   pSrc = &pWInfo->pTabList->a[pNew->iTab];
3025   assert( IsVirtual(pSrc->pTab) );
3026   p = allocateIndexInfo(pParse, pWC, mUnusable, pSrc, pBuilder->pOrderBy);
3027   if( p==0 ) return SQLITE_NOMEM_BKPT;
3028   pNew->rSetup = 0;
3029   pNew->wsFlags = WHERE_VIRTUALTABLE;
3030   pNew->nLTerm = 0;
3031   pNew->u.vtab.needFree = 0;
3032   nConstraint = p->nConstraint;
3033   if( whereLoopResize(pParse->db, pNew, nConstraint) ){
3034     sqlite3DbFree(pParse->db, p);
3035     return SQLITE_NOMEM_BKPT;
3036   }
3037 
3038   /* First call xBestIndex() with all constraints usable. */
3039   WHERETRACE(0x40, ("  VirtualOne: all usable\n"));
3040   rc = whereLoopAddVirtualOne(pBuilder, mPrereq, ALLBITS, 0, p, &bIn);
3041 
3042   /* If the call to xBestIndex() with all terms enabled produced a plan
3043   ** that does not require any source tables (IOW: a plan with mBest==0),
3044   ** then there is no point in making any further calls to xBestIndex()
3045   ** since they will all return the same result (if the xBestIndex()
3046   ** implementation is sane). */
3047   if( rc==SQLITE_OK && (mBest = (pNew->prereq & ~mPrereq))!=0 ){
3048     int seenZero = 0;             /* True if a plan with no prereqs seen */
3049     int seenZeroNoIN = 0;         /* Plan with no prereqs and no IN(...) seen */
3050     Bitmask mPrev = 0;
3051     Bitmask mBestNoIn = 0;
3052 
3053     /* If the plan produced by the earlier call uses an IN(...) term, call
3054     ** xBestIndex again, this time with IN(...) terms disabled. */
3055     if( bIn ){
3056       WHERETRACE(0x40, ("  VirtualOne: all usable w/o IN\n"));
3057       rc = whereLoopAddVirtualOne(pBuilder, mPrereq, ALLBITS, WO_IN, p, &bIn);
3058       assert( bIn==0 );
3059       mBestNoIn = pNew->prereq & ~mPrereq;
3060       if( mBestNoIn==0 ){
3061         seenZero = 1;
3062         seenZeroNoIN = 1;
3063       }
3064     }
3065 
3066     /* Call xBestIndex once for each distinct value of (prereqRight & ~mPrereq)
3067     ** in the set of terms that apply to the current virtual table.  */
3068     while( rc==SQLITE_OK ){
3069       int i;
3070       Bitmask mNext = ALLBITS;
3071       assert( mNext>0 );
3072       for(i=0; i<nConstraint; i++){
3073         Bitmask mThis = (
3074             pWC->a[p->aConstraint[i].iTermOffset].prereqRight & ~mPrereq
3075         );
3076         if( mThis>mPrev && mThis<mNext ) mNext = mThis;
3077       }
3078       mPrev = mNext;
3079       if( mNext==ALLBITS ) break;
3080       if( mNext==mBest || mNext==mBestNoIn ) continue;
3081       WHERETRACE(0x40, ("  VirtualOne: mPrev=%04llx mNext=%04llx\n",
3082                        (sqlite3_uint64)mPrev, (sqlite3_uint64)mNext));
3083       rc = whereLoopAddVirtualOne(pBuilder, mPrereq, mNext|mPrereq, 0, p, &bIn);
3084       if( pNew->prereq==mPrereq ){
3085         seenZero = 1;
3086         if( bIn==0 ) seenZeroNoIN = 1;
3087       }
3088     }
3089 
3090     /* If the calls to xBestIndex() in the above loop did not find a plan
3091     ** that requires no source tables at all (i.e. one guaranteed to be
3092     ** usable), make a call here with all source tables disabled */
3093     if( rc==SQLITE_OK && seenZero==0 ){
3094       WHERETRACE(0x40, ("  VirtualOne: all disabled\n"));
3095       rc = whereLoopAddVirtualOne(pBuilder, mPrereq, mPrereq, 0, p, &bIn);
3096       if( bIn==0 ) seenZeroNoIN = 1;
3097     }
3098 
3099     /* If the calls to xBestIndex() have so far failed to find a plan
3100     ** that requires no source tables at all and does not use an IN(...)
3101     ** operator, make a final call to obtain one here.  */
3102     if( rc==SQLITE_OK && seenZeroNoIN==0 ){
3103       WHERETRACE(0x40, ("  VirtualOne: all disabled and w/o IN\n"));
3104       rc = whereLoopAddVirtualOne(pBuilder, mPrereq, mPrereq, WO_IN, p, &bIn);
3105     }
3106   }
3107 
3108   if( p->needToFreeIdxStr ) sqlite3_free(p->idxStr);
3109   sqlite3DbFree(pParse->db, p);
3110   return rc;
3111 }
3112 #endif /* SQLITE_OMIT_VIRTUALTABLE */
3113 
3114 /*
3115 ** Add WhereLoop entries to handle OR terms.  This works for either
3116 ** btrees or virtual tables.
3117 */
3118 static int whereLoopAddOr(
3119   WhereLoopBuilder *pBuilder,
3120   Bitmask mPrereq,
3121   Bitmask mUnusable
3122 ){
3123   WhereInfo *pWInfo = pBuilder->pWInfo;
3124   WhereClause *pWC;
3125   WhereLoop *pNew;
3126   WhereTerm *pTerm, *pWCEnd;
3127   int rc = SQLITE_OK;
3128   int iCur;
3129   WhereClause tempWC;
3130   WhereLoopBuilder sSubBuild;
3131   WhereOrSet sSum, sCur;
3132   struct SrcList_item *pItem;
3133 
3134   pWC = pBuilder->pWC;
3135   pWCEnd = pWC->a + pWC->nTerm;
3136   pNew = pBuilder->pNew;
3137   memset(&sSum, 0, sizeof(sSum));
3138   pItem = pWInfo->pTabList->a + pNew->iTab;
3139   iCur = pItem->iCursor;
3140 
3141   for(pTerm=pWC->a; pTerm<pWCEnd && rc==SQLITE_OK; pTerm++){
3142     if( (pTerm->eOperator & WO_OR)!=0
3143      && (pTerm->u.pOrInfo->indexable & pNew->maskSelf)!=0
3144     ){
3145       WhereClause * const pOrWC = &pTerm->u.pOrInfo->wc;
3146       WhereTerm * const pOrWCEnd = &pOrWC->a[pOrWC->nTerm];
3147       WhereTerm *pOrTerm;
3148       int once = 1;
3149       int i, j;
3150 
3151       sSubBuild = *pBuilder;
3152       sSubBuild.pOrderBy = 0;
3153       sSubBuild.pOrSet = &sCur;
3154 
3155       WHERETRACE(0x200, ("Begin processing OR-clause %p\n", pTerm));
3156       for(pOrTerm=pOrWC->a; pOrTerm<pOrWCEnd; pOrTerm++){
3157         if( (pOrTerm->eOperator & WO_AND)!=0 ){
3158           sSubBuild.pWC = &pOrTerm->u.pAndInfo->wc;
3159         }else if( pOrTerm->leftCursor==iCur ){
3160           tempWC.pWInfo = pWC->pWInfo;
3161           tempWC.pOuter = pWC;
3162           tempWC.op = TK_AND;
3163           tempWC.nTerm = 1;
3164           tempWC.a = pOrTerm;
3165           sSubBuild.pWC = &tempWC;
3166         }else{
3167           continue;
3168         }
3169         sCur.n = 0;
3170 #ifdef WHERETRACE_ENABLED
3171         WHERETRACE(0x200, ("OR-term %d of %p has %d subterms:\n",
3172                    (int)(pOrTerm-pOrWC->a), pTerm, sSubBuild.pWC->nTerm));
3173         if( sqlite3WhereTrace & 0x400 ){
3174           sqlite3WhereClausePrint(sSubBuild.pWC);
3175         }
3176 #endif
3177 #ifndef SQLITE_OMIT_VIRTUALTABLE
3178         if( IsVirtual(pItem->pTab) ){
3179           rc = whereLoopAddVirtual(&sSubBuild, mPrereq, mUnusable);
3180         }else
3181 #endif
3182         {
3183           rc = whereLoopAddBtree(&sSubBuild, mPrereq);
3184         }
3185         if( rc==SQLITE_OK ){
3186           rc = whereLoopAddOr(&sSubBuild, mPrereq, mUnusable);
3187         }
3188         assert( rc==SQLITE_OK || sCur.n==0 );
3189         if( sCur.n==0 ){
3190           sSum.n = 0;
3191           break;
3192         }else if( once ){
3193           whereOrMove(&sSum, &sCur);
3194           once = 0;
3195         }else{
3196           WhereOrSet sPrev;
3197           whereOrMove(&sPrev, &sSum);
3198           sSum.n = 0;
3199           for(i=0; i<sPrev.n; i++){
3200             for(j=0; j<sCur.n; j++){
3201               whereOrInsert(&sSum, sPrev.a[i].prereq | sCur.a[j].prereq,
3202                             sqlite3LogEstAdd(sPrev.a[i].rRun, sCur.a[j].rRun),
3203                             sqlite3LogEstAdd(sPrev.a[i].nOut, sCur.a[j].nOut));
3204             }
3205           }
3206         }
3207       }
3208       pNew->nLTerm = 1;
3209       pNew->aLTerm[0] = pTerm;
3210       pNew->wsFlags = WHERE_MULTI_OR;
3211       pNew->rSetup = 0;
3212       pNew->iSortIdx = 0;
3213       memset(&pNew->u, 0, sizeof(pNew->u));
3214       for(i=0; rc==SQLITE_OK && i<sSum.n; i++){
3215         /* TUNING: Currently sSum.a[i].rRun is set to the sum of the costs
3216         ** of all sub-scans required by the OR-scan. However, due to rounding
3217         ** errors, it may be that the cost of the OR-scan is equal to its
3218         ** most expensive sub-scan. Add the smallest possible penalty
3219         ** (equivalent to multiplying the cost by 1.07) to ensure that
3220         ** this does not happen. Otherwise, for WHERE clauses such as the
3221         ** following where there is an index on "y":
3222         **
3223         **     WHERE likelihood(x=?, 0.99) OR y=?
3224         **
3225         ** the planner may elect to "OR" together a full-table scan and an
3226         ** index lookup. And other similarly odd results.  */
3227         pNew->rRun = sSum.a[i].rRun + 1;
3228         pNew->nOut = sSum.a[i].nOut;
3229         pNew->prereq = sSum.a[i].prereq;
3230         rc = whereLoopInsert(pBuilder, pNew);
3231       }
3232       WHERETRACE(0x200, ("End processing OR-clause %p\n", pTerm));
3233     }
3234   }
3235   return rc;
3236 }
3237 
3238 /*
3239 ** Add all WhereLoop objects for all tables
3240 */
3241 static int whereLoopAddAll(WhereLoopBuilder *pBuilder){
3242   WhereInfo *pWInfo = pBuilder->pWInfo;
3243   Bitmask mPrereq = 0;
3244   Bitmask mPrior = 0;
3245   int iTab;
3246   SrcList *pTabList = pWInfo->pTabList;
3247   struct SrcList_item *pItem;
3248   struct SrcList_item *pEnd = &pTabList->a[pWInfo->nLevel];
3249   sqlite3 *db = pWInfo->pParse->db;
3250   int rc = SQLITE_OK;
3251   WhereLoop *pNew;
3252   u8 priorJointype = 0;
3253 
3254   /* Loop over the tables in the join, from left to right */
3255   pNew = pBuilder->pNew;
3256   whereLoopInit(pNew);
3257   for(iTab=0, pItem=pTabList->a; pItem<pEnd; iTab++, pItem++){
3258     Bitmask mUnusable = 0;
3259     pNew->iTab = iTab;
3260     pNew->maskSelf = sqlite3WhereGetMask(&pWInfo->sMaskSet, pItem->iCursor);
3261     if( ((pItem->fg.jointype|priorJointype) & (JT_LEFT|JT_CROSS))!=0 ){
3262       /* This condition is true when pItem is the FROM clause term on the
3263       ** right-hand-side of a LEFT or CROSS JOIN.  */
3264       mPrereq = mPrior;
3265     }
3266     priorJointype = pItem->fg.jointype;
3267 #ifndef SQLITE_OMIT_VIRTUALTABLE
3268     if( IsVirtual(pItem->pTab) ){
3269       struct SrcList_item *p;
3270       for(p=&pItem[1]; p<pEnd; p++){
3271         if( mUnusable || (p->fg.jointype & (JT_LEFT|JT_CROSS)) ){
3272           mUnusable |= sqlite3WhereGetMask(&pWInfo->sMaskSet, p->iCursor);
3273         }
3274       }
3275       rc = whereLoopAddVirtual(pBuilder, mPrereq, mUnusable);
3276     }else
3277 #endif /* SQLITE_OMIT_VIRTUALTABLE */
3278     {
3279       rc = whereLoopAddBtree(pBuilder, mPrereq);
3280     }
3281     if( rc==SQLITE_OK ){
3282       rc = whereLoopAddOr(pBuilder, mPrereq, mUnusable);
3283     }
3284     mPrior |= pNew->maskSelf;
3285     if( rc || db->mallocFailed ) break;
3286   }
3287 
3288   whereLoopClear(db, pNew);
3289   return rc;
3290 }
3291 
3292 /*
3293 ** Examine a WherePath (with the addition of the extra WhereLoop of the 5th
3294 ** parameters) to see if it outputs rows in the requested ORDER BY
3295 ** (or GROUP BY) without requiring a separate sort operation.  Return N:
3296 **
3297 **   N>0:   N terms of the ORDER BY clause are satisfied
3298 **   N==0:  No terms of the ORDER BY clause are satisfied
3299 **   N<0:   Unknown yet how many terms of ORDER BY might be satisfied.
3300 **
3301 ** Note that processing for WHERE_GROUPBY and WHERE_DISTINCTBY is not as
3302 ** strict.  With GROUP BY and DISTINCT the only requirement is that
3303 ** equivalent rows appear immediately adjacent to one another.  GROUP BY
3304 ** and DISTINCT do not require rows to appear in any particular order as long
3305 ** as equivalent rows are grouped together.  Thus for GROUP BY and DISTINCT
3306 ** the pOrderBy terms can be matched in any order.  With ORDER BY, the
3307 ** pOrderBy terms must be matched in strict left-to-right order.
3308 */
3309 static i8 wherePathSatisfiesOrderBy(
3310   WhereInfo *pWInfo,    /* The WHERE clause */
3311   ExprList *pOrderBy,   /* ORDER BY or GROUP BY or DISTINCT clause to check */
3312   WherePath *pPath,     /* The WherePath to check */
3313   u16 wctrlFlags,       /* WHERE_GROUPBY or _DISTINCTBY or _ORDERBY_LIMIT */
3314   u16 nLoop,            /* Number of entries in pPath->aLoop[] */
3315   WhereLoop *pLast,     /* Add this WhereLoop to the end of pPath->aLoop[] */
3316   Bitmask *pRevMask     /* OUT: Mask of WhereLoops to run in reverse order */
3317 ){
3318   u8 revSet;            /* True if rev is known */
3319   u8 rev;               /* Composite sort order */
3320   u8 revIdx;            /* Index sort order */
3321   u8 isOrderDistinct;   /* All prior WhereLoops are order-distinct */
3322   u8 distinctColumns;   /* True if the loop has UNIQUE NOT NULL columns */
3323   u8 isMatch;           /* iColumn matches a term of the ORDER BY clause */
3324   u16 eqOpMask;         /* Allowed equality operators */
3325   u16 nKeyCol;          /* Number of key columns in pIndex */
3326   u16 nColumn;          /* Total number of ordered columns in the index */
3327   u16 nOrderBy;         /* Number terms in the ORDER BY clause */
3328   int iLoop;            /* Index of WhereLoop in pPath being processed */
3329   int i, j;             /* Loop counters */
3330   int iCur;             /* Cursor number for current WhereLoop */
3331   int iColumn;          /* A column number within table iCur */
3332   WhereLoop *pLoop = 0; /* Current WhereLoop being processed. */
3333   WhereTerm *pTerm;     /* A single term of the WHERE clause */
3334   Expr *pOBExpr;        /* An expression from the ORDER BY clause */
3335   CollSeq *pColl;       /* COLLATE function from an ORDER BY clause term */
3336   Index *pIndex;        /* The index associated with pLoop */
3337   sqlite3 *db = pWInfo->pParse->db;  /* Database connection */
3338   Bitmask obSat = 0;    /* Mask of ORDER BY terms satisfied so far */
3339   Bitmask obDone;       /* Mask of all ORDER BY terms */
3340   Bitmask orderDistinctMask;  /* Mask of all well-ordered loops */
3341   Bitmask ready;              /* Mask of inner loops */
3342 
3343   /*
3344   ** We say the WhereLoop is "one-row" if it generates no more than one
3345   ** row of output.  A WhereLoop is one-row if all of the following are true:
3346   **  (a) All index columns match with WHERE_COLUMN_EQ.
3347   **  (b) The index is unique
3348   ** Any WhereLoop with an WHERE_COLUMN_EQ constraint on the rowid is one-row.
3349   ** Every one-row WhereLoop will have the WHERE_ONEROW bit set in wsFlags.
3350   **
3351   ** We say the WhereLoop is "order-distinct" if the set of columns from
3352   ** that WhereLoop that are in the ORDER BY clause are different for every
3353   ** row of the WhereLoop.  Every one-row WhereLoop is automatically
3354   ** order-distinct.   A WhereLoop that has no columns in the ORDER BY clause
3355   ** is not order-distinct. To be order-distinct is not quite the same as being
3356   ** UNIQUE since a UNIQUE column or index can have multiple rows that
3357   ** are NULL and NULL values are equivalent for the purpose of order-distinct.
3358   ** To be order-distinct, the columns must be UNIQUE and NOT NULL.
3359   **
3360   ** The rowid for a table is always UNIQUE and NOT NULL so whenever the
3361   ** rowid appears in the ORDER BY clause, the corresponding WhereLoop is
3362   ** automatically order-distinct.
3363   */
3364 
3365   assert( pOrderBy!=0 );
3366   if( nLoop && OptimizationDisabled(db, SQLITE_OrderByIdxJoin) ) return 0;
3367 
3368   nOrderBy = pOrderBy->nExpr;
3369   testcase( nOrderBy==BMS-1 );
3370   if( nOrderBy>BMS-1 ) return 0;  /* Cannot optimize overly large ORDER BYs */
3371   isOrderDistinct = 1;
3372   obDone = MASKBIT(nOrderBy)-1;
3373   orderDistinctMask = 0;
3374   ready = 0;
3375   eqOpMask = WO_EQ | WO_IS | WO_ISNULL;
3376   if( wctrlFlags & WHERE_ORDERBY_LIMIT ) eqOpMask |= WO_IN;
3377   for(iLoop=0; isOrderDistinct && obSat<obDone && iLoop<=nLoop; iLoop++){
3378     if( iLoop>0 ) ready |= pLoop->maskSelf;
3379     if( iLoop<nLoop ){
3380       pLoop = pPath->aLoop[iLoop];
3381       if( wctrlFlags & WHERE_ORDERBY_LIMIT ) continue;
3382     }else{
3383       pLoop = pLast;
3384     }
3385     if( pLoop->wsFlags & WHERE_VIRTUALTABLE ){
3386       if( pLoop->u.vtab.isOrdered ) obSat = obDone;
3387       break;
3388     }
3389     iCur = pWInfo->pTabList->a[pLoop->iTab].iCursor;
3390 
3391     /* Mark off any ORDER BY term X that is a column in the table of
3392     ** the current loop for which there is term in the WHERE
3393     ** clause of the form X IS NULL or X=? that reference only outer
3394     ** loops.
3395     */
3396     for(i=0; i<nOrderBy; i++){
3397       if( MASKBIT(i) & obSat ) continue;
3398       pOBExpr = sqlite3ExprSkipCollate(pOrderBy->a[i].pExpr);
3399       if( pOBExpr->op!=TK_COLUMN ) continue;
3400       if( pOBExpr->iTable!=iCur ) continue;
3401       pTerm = sqlite3WhereFindTerm(&pWInfo->sWC, iCur, pOBExpr->iColumn,
3402                        ~ready, eqOpMask, 0);
3403       if( pTerm==0 ) continue;
3404       if( (pTerm->eOperator&(WO_EQ|WO_IS))!=0 && pOBExpr->iColumn>=0 ){
3405         const char *z1, *z2;
3406         pColl = sqlite3ExprCollSeq(pWInfo->pParse, pOrderBy->a[i].pExpr);
3407         if( !pColl ) pColl = db->pDfltColl;
3408         z1 = pColl->zName;
3409         pColl = sqlite3ExprCollSeq(pWInfo->pParse, pTerm->pExpr);
3410         if( !pColl ) pColl = db->pDfltColl;
3411         z2 = pColl->zName;
3412         if( sqlite3StrICmp(z1, z2)!=0 ) continue;
3413         testcase( pTerm->pExpr->op==TK_IS );
3414       }
3415       obSat |= MASKBIT(i);
3416     }
3417 
3418     if( (pLoop->wsFlags & WHERE_ONEROW)==0 ){
3419       if( pLoop->wsFlags & WHERE_IPK ){
3420         pIndex = 0;
3421         nKeyCol = 0;
3422         nColumn = 1;
3423       }else if( (pIndex = pLoop->u.btree.pIndex)==0 || pIndex->bUnordered ){
3424         return 0;
3425       }else{
3426         nKeyCol = pIndex->nKeyCol;
3427         nColumn = pIndex->nColumn;
3428         assert( nColumn==nKeyCol+1 || !HasRowid(pIndex->pTable) );
3429         assert( pIndex->aiColumn[nColumn-1]==XN_ROWID
3430                           || !HasRowid(pIndex->pTable));
3431         isOrderDistinct = IsUniqueIndex(pIndex);
3432       }
3433 
3434       /* Loop through all columns of the index and deal with the ones
3435       ** that are not constrained by == or IN.
3436       */
3437       rev = revSet = 0;
3438       distinctColumns = 0;
3439       for(j=0; j<nColumn; j++){
3440         u8 bOnce;   /* True to run the ORDER BY search loop */
3441 
3442         /* Skip over == and IS and ISNULL terms.
3443         ** (Also skip IN terms when doing WHERE_ORDERBY_LIMIT processing)
3444         */
3445         if( j<pLoop->u.btree.nEq
3446          && pLoop->nSkip==0
3447          && ((i = pLoop->aLTerm[j]->eOperator) & eqOpMask)!=0
3448         ){
3449           if( i & WO_ISNULL ){
3450             testcase( isOrderDistinct );
3451             isOrderDistinct = 0;
3452           }
3453           continue;
3454         }
3455 
3456         /* Get the column number in the table (iColumn) and sort order
3457         ** (revIdx) for the j-th column of the index.
3458         */
3459         if( pIndex ){
3460           iColumn = pIndex->aiColumn[j];
3461           revIdx = pIndex->aSortOrder[j];
3462           if( iColumn==pIndex->pTable->iPKey ) iColumn = -1;
3463         }else{
3464           iColumn = XN_ROWID;
3465           revIdx = 0;
3466         }
3467 
3468         /* An unconstrained column that might be NULL means that this
3469         ** WhereLoop is not well-ordered
3470         */
3471         if( isOrderDistinct
3472          && iColumn>=0
3473          && j>=pLoop->u.btree.nEq
3474          && pIndex->pTable->aCol[iColumn].notNull==0
3475         ){
3476           isOrderDistinct = 0;
3477         }
3478 
3479         /* Find the ORDER BY term that corresponds to the j-th column
3480         ** of the index and mark that ORDER BY term off
3481         */
3482         bOnce = 1;
3483         isMatch = 0;
3484         for(i=0; bOnce && i<nOrderBy; i++){
3485           if( MASKBIT(i) & obSat ) continue;
3486           pOBExpr = sqlite3ExprSkipCollate(pOrderBy->a[i].pExpr);
3487           testcase( wctrlFlags & WHERE_GROUPBY );
3488           testcase( wctrlFlags & WHERE_DISTINCTBY );
3489           if( (wctrlFlags & (WHERE_GROUPBY|WHERE_DISTINCTBY))==0 ) bOnce = 0;
3490           if( iColumn>=(-1) ){
3491             if( pOBExpr->op!=TK_COLUMN ) continue;
3492             if( pOBExpr->iTable!=iCur ) continue;
3493             if( pOBExpr->iColumn!=iColumn ) continue;
3494           }else{
3495             if( sqlite3ExprCompare(pOBExpr,pIndex->aColExpr->a[j].pExpr,iCur) ){
3496               continue;
3497             }
3498           }
3499           if( iColumn>=0 ){
3500             pColl = sqlite3ExprCollSeq(pWInfo->pParse, pOrderBy->a[i].pExpr);
3501             if( !pColl ) pColl = db->pDfltColl;
3502             if( sqlite3StrICmp(pColl->zName, pIndex->azColl[j])!=0 ) continue;
3503           }
3504           isMatch = 1;
3505           break;
3506         }
3507         if( isMatch && (wctrlFlags & WHERE_GROUPBY)==0 ){
3508           /* Make sure the sort order is compatible in an ORDER BY clause.
3509           ** Sort order is irrelevant for a GROUP BY clause. */
3510           if( revSet ){
3511             if( (rev ^ revIdx)!=pOrderBy->a[i].sortOrder ) isMatch = 0;
3512           }else{
3513             rev = revIdx ^ pOrderBy->a[i].sortOrder;
3514             if( rev ) *pRevMask |= MASKBIT(iLoop);
3515             revSet = 1;
3516           }
3517         }
3518         if( isMatch ){
3519           if( iColumn<0 ){
3520             testcase( distinctColumns==0 );
3521             distinctColumns = 1;
3522           }
3523           obSat |= MASKBIT(i);
3524         }else{
3525           /* No match found */
3526           if( j==0 || j<nKeyCol ){
3527             testcase( isOrderDistinct!=0 );
3528             isOrderDistinct = 0;
3529           }
3530           break;
3531         }
3532       } /* end Loop over all index columns */
3533       if( distinctColumns ){
3534         testcase( isOrderDistinct==0 );
3535         isOrderDistinct = 1;
3536       }
3537     } /* end-if not one-row */
3538 
3539     /* Mark off any other ORDER BY terms that reference pLoop */
3540     if( isOrderDistinct ){
3541       orderDistinctMask |= pLoop->maskSelf;
3542       for(i=0; i<nOrderBy; i++){
3543         Expr *p;
3544         Bitmask mTerm;
3545         if( MASKBIT(i) & obSat ) continue;
3546         p = pOrderBy->a[i].pExpr;
3547         mTerm = sqlite3WhereExprUsage(&pWInfo->sMaskSet,p);
3548         if( mTerm==0 && !sqlite3ExprIsConstant(p) ) continue;
3549         if( (mTerm&~orderDistinctMask)==0 ){
3550           obSat |= MASKBIT(i);
3551         }
3552       }
3553     }
3554   } /* End the loop over all WhereLoops from outer-most down to inner-most */
3555   if( obSat==obDone ) return (i8)nOrderBy;
3556   if( !isOrderDistinct ){
3557     for(i=nOrderBy-1; i>0; i--){
3558       Bitmask m = MASKBIT(i) - 1;
3559       if( (obSat&m)==m ) return i;
3560     }
3561     return 0;
3562   }
3563   return -1;
3564 }
3565 
3566 
3567 /*
3568 ** If the WHERE_GROUPBY flag is set in the mask passed to sqlite3WhereBegin(),
3569 ** the planner assumes that the specified pOrderBy list is actually a GROUP
3570 ** BY clause - and so any order that groups rows as required satisfies the
3571 ** request.
3572 **
3573 ** Normally, in this case it is not possible for the caller to determine
3574 ** whether or not the rows are really being delivered in sorted order, or
3575 ** just in some other order that provides the required grouping. However,
3576 ** if the WHERE_SORTBYGROUP flag is also passed to sqlite3WhereBegin(), then
3577 ** this function may be called on the returned WhereInfo object. It returns
3578 ** true if the rows really will be sorted in the specified order, or false
3579 ** otherwise.
3580 **
3581 ** For example, assuming:
3582 **
3583 **   CREATE INDEX i1 ON t1(x, Y);
3584 **
3585 ** then
3586 **
3587 **   SELECT * FROM t1 GROUP BY x,y ORDER BY x,y;   -- IsSorted()==1
3588 **   SELECT * FROM t1 GROUP BY y,x ORDER BY y,x;   -- IsSorted()==0
3589 */
3590 int sqlite3WhereIsSorted(WhereInfo *pWInfo){
3591   assert( pWInfo->wctrlFlags & WHERE_GROUPBY );
3592   assert( pWInfo->wctrlFlags & WHERE_SORTBYGROUP );
3593   return pWInfo->sorted;
3594 }
3595 
3596 #ifdef WHERETRACE_ENABLED
3597 /* For debugging use only: */
3598 static const char *wherePathName(WherePath *pPath, int nLoop, WhereLoop *pLast){
3599   static char zName[65];
3600   int i;
3601   for(i=0; i<nLoop; i++){ zName[i] = pPath->aLoop[i]->cId; }
3602   if( pLast ) zName[i++] = pLast->cId;
3603   zName[i] = 0;
3604   return zName;
3605 }
3606 #endif
3607 
3608 /*
3609 ** Return the cost of sorting nRow rows, assuming that the keys have
3610 ** nOrderby columns and that the first nSorted columns are already in
3611 ** order.
3612 */
3613 static LogEst whereSortingCost(
3614   WhereInfo *pWInfo,
3615   LogEst nRow,
3616   int nOrderBy,
3617   int nSorted
3618 ){
3619   /* TUNING: Estimated cost of a full external sort, where N is
3620   ** the number of rows to sort is:
3621   **
3622   **   cost = (3.0 * N * log(N)).
3623   **
3624   ** Or, if the order-by clause has X terms but only the last Y
3625   ** terms are out of order, then block-sorting will reduce the
3626   ** sorting cost to:
3627   **
3628   **   cost = (3.0 * N * log(N)) * (Y/X)
3629   **
3630   ** The (Y/X) term is implemented using stack variable rScale
3631   ** below.  */
3632   LogEst rScale, rSortCost;
3633   assert( nOrderBy>0 && 66==sqlite3LogEst(100) );
3634   rScale = sqlite3LogEst((nOrderBy-nSorted)*100/nOrderBy) - 66;
3635   rSortCost = nRow + rScale + 16;
3636 
3637   /* Multiple by log(M) where M is the number of output rows.
3638   ** Use the LIMIT for M if it is smaller */
3639   if( (pWInfo->wctrlFlags & WHERE_USE_LIMIT)!=0 && pWInfo->iLimit<nRow ){
3640     nRow = pWInfo->iLimit;
3641   }
3642   rSortCost += estLog(nRow);
3643   return rSortCost;
3644 }
3645 
3646 /*
3647 ** Given the list of WhereLoop objects at pWInfo->pLoops, this routine
3648 ** attempts to find the lowest cost path that visits each WhereLoop
3649 ** once.  This path is then loaded into the pWInfo->a[].pWLoop fields.
3650 **
3651 ** Assume that the total number of output rows that will need to be sorted
3652 ** will be nRowEst (in the 10*log2 representation).  Or, ignore sorting
3653 ** costs if nRowEst==0.
3654 **
3655 ** Return SQLITE_OK on success or SQLITE_NOMEM of a memory allocation
3656 ** error occurs.
3657 */
3658 static int wherePathSolver(WhereInfo *pWInfo, LogEst nRowEst){
3659   int mxChoice;             /* Maximum number of simultaneous paths tracked */
3660   int nLoop;                /* Number of terms in the join */
3661   Parse *pParse;            /* Parsing context */
3662   sqlite3 *db;              /* The database connection */
3663   int iLoop;                /* Loop counter over the terms of the join */
3664   int ii, jj;               /* Loop counters */
3665   int mxI = 0;              /* Index of next entry to replace */
3666   int nOrderBy;             /* Number of ORDER BY clause terms */
3667   LogEst mxCost = 0;        /* Maximum cost of a set of paths */
3668   LogEst mxUnsorted = 0;    /* Maximum unsorted cost of a set of path */
3669   int nTo, nFrom;           /* Number of valid entries in aTo[] and aFrom[] */
3670   WherePath *aFrom;         /* All nFrom paths at the previous level */
3671   WherePath *aTo;           /* The nTo best paths at the current level */
3672   WherePath *pFrom;         /* An element of aFrom[] that we are working on */
3673   WherePath *pTo;           /* An element of aTo[] that we are working on */
3674   WhereLoop *pWLoop;        /* One of the WhereLoop objects */
3675   WhereLoop **pX;           /* Used to divy up the pSpace memory */
3676   LogEst *aSortCost = 0;    /* Sorting and partial sorting costs */
3677   char *pSpace;             /* Temporary memory used by this routine */
3678   int nSpace;               /* Bytes of space allocated at pSpace */
3679 
3680   pParse = pWInfo->pParse;
3681   db = pParse->db;
3682   nLoop = pWInfo->nLevel;
3683   /* TUNING: For simple queries, only the best path is tracked.
3684   ** For 2-way joins, the 5 best paths are followed.
3685   ** For joins of 3 or more tables, track the 10 best paths */
3686   mxChoice = (nLoop<=1) ? 1 : (nLoop==2 ? 5 : 10);
3687   assert( nLoop<=pWInfo->pTabList->nSrc );
3688   WHERETRACE(0x002, ("---- begin solver.  (nRowEst=%d)\n", nRowEst));
3689 
3690   /* If nRowEst is zero and there is an ORDER BY clause, ignore it. In this
3691   ** case the purpose of this call is to estimate the number of rows returned
3692   ** by the overall query. Once this estimate has been obtained, the caller
3693   ** will invoke this function a second time, passing the estimate as the
3694   ** nRowEst parameter.  */
3695   if( pWInfo->pOrderBy==0 || nRowEst==0 ){
3696     nOrderBy = 0;
3697   }else{
3698     nOrderBy = pWInfo->pOrderBy->nExpr;
3699   }
3700 
3701   /* Allocate and initialize space for aTo, aFrom and aSortCost[] */
3702   nSpace = (sizeof(WherePath)+sizeof(WhereLoop*)*nLoop)*mxChoice*2;
3703   nSpace += sizeof(LogEst) * nOrderBy;
3704   pSpace = sqlite3DbMallocRawNN(db, nSpace);
3705   if( pSpace==0 ) return SQLITE_NOMEM_BKPT;
3706   aTo = (WherePath*)pSpace;
3707   aFrom = aTo+mxChoice;
3708   memset(aFrom, 0, sizeof(aFrom[0]));
3709   pX = (WhereLoop**)(aFrom+mxChoice);
3710   for(ii=mxChoice*2, pFrom=aTo; ii>0; ii--, pFrom++, pX += nLoop){
3711     pFrom->aLoop = pX;
3712   }
3713   if( nOrderBy ){
3714     /* If there is an ORDER BY clause and it is not being ignored, set up
3715     ** space for the aSortCost[] array. Each element of the aSortCost array
3716     ** is either zero - meaning it has not yet been initialized - or the
3717     ** cost of sorting nRowEst rows of data where the first X terms of
3718     ** the ORDER BY clause are already in order, where X is the array
3719     ** index.  */
3720     aSortCost = (LogEst*)pX;
3721     memset(aSortCost, 0, sizeof(LogEst) * nOrderBy);
3722   }
3723   assert( aSortCost==0 || &pSpace[nSpace]==(char*)&aSortCost[nOrderBy] );
3724   assert( aSortCost!=0 || &pSpace[nSpace]==(char*)pX );
3725 
3726   /* Seed the search with a single WherePath containing zero WhereLoops.
3727   **
3728   ** TUNING: Do not let the number of iterations go above 28.  If the cost
3729   ** of computing an automatic index is not paid back within the first 28
3730   ** rows, then do not use the automatic index. */
3731   aFrom[0].nRow = MIN(pParse->nQueryLoop, 48);  assert( 48==sqlite3LogEst(28) );
3732   nFrom = 1;
3733   assert( aFrom[0].isOrdered==0 );
3734   if( nOrderBy ){
3735     /* If nLoop is zero, then there are no FROM terms in the query. Since
3736     ** in this case the query may return a maximum of one row, the results
3737     ** are already in the requested order. Set isOrdered to nOrderBy to
3738     ** indicate this. Or, if nLoop is greater than zero, set isOrdered to
3739     ** -1, indicating that the result set may or may not be ordered,
3740     ** depending on the loops added to the current plan.  */
3741     aFrom[0].isOrdered = nLoop>0 ? -1 : nOrderBy;
3742   }
3743 
3744   /* Compute successively longer WherePaths using the previous generation
3745   ** of WherePaths as the basis for the next.  Keep track of the mxChoice
3746   ** best paths at each generation */
3747   for(iLoop=0; iLoop<nLoop; iLoop++){
3748     nTo = 0;
3749     for(ii=0, pFrom=aFrom; ii<nFrom; ii++, pFrom++){
3750       for(pWLoop=pWInfo->pLoops; pWLoop; pWLoop=pWLoop->pNextLoop){
3751         LogEst nOut;                      /* Rows visited by (pFrom+pWLoop) */
3752         LogEst rCost;                     /* Cost of path (pFrom+pWLoop) */
3753         LogEst rUnsorted;                 /* Unsorted cost of (pFrom+pWLoop) */
3754         i8 isOrdered = pFrom->isOrdered;  /* isOrdered for (pFrom+pWLoop) */
3755         Bitmask maskNew;                  /* Mask of src visited by (..) */
3756         Bitmask revMask = 0;              /* Mask of rev-order loops for (..) */
3757 
3758         if( (pWLoop->prereq & ~pFrom->maskLoop)!=0 ) continue;
3759         if( (pWLoop->maskSelf & pFrom->maskLoop)!=0 ) continue;
3760         if( (pWLoop->wsFlags & WHERE_AUTO_INDEX)!=0 && pFrom->nRow<10 ){
3761           /* Do not use an automatic index if the this loop is expected
3762           ** to run less than 2 times. */
3763           assert( 10==sqlite3LogEst(2) );
3764           continue;
3765         }
3766         /* At this point, pWLoop is a candidate to be the next loop.
3767         ** Compute its cost */
3768         rUnsorted = sqlite3LogEstAdd(pWLoop->rSetup,pWLoop->rRun + pFrom->nRow);
3769         rUnsorted = sqlite3LogEstAdd(rUnsorted, pFrom->rUnsorted);
3770         nOut = pFrom->nRow + pWLoop->nOut;
3771         maskNew = pFrom->maskLoop | pWLoop->maskSelf;
3772         if( isOrdered<0 ){
3773           isOrdered = wherePathSatisfiesOrderBy(pWInfo,
3774                        pWInfo->pOrderBy, pFrom, pWInfo->wctrlFlags,
3775                        iLoop, pWLoop, &revMask);
3776         }else{
3777           revMask = pFrom->revLoop;
3778         }
3779         if( isOrdered>=0 && isOrdered<nOrderBy ){
3780           if( aSortCost[isOrdered]==0 ){
3781             aSortCost[isOrdered] = whereSortingCost(
3782                 pWInfo, nRowEst, nOrderBy, isOrdered
3783             );
3784           }
3785           rCost = sqlite3LogEstAdd(rUnsorted, aSortCost[isOrdered]);
3786 
3787           WHERETRACE(0x002,
3788               ("---- sort cost=%-3d (%d/%d) increases cost %3d to %-3d\n",
3789                aSortCost[isOrdered], (nOrderBy-isOrdered), nOrderBy,
3790                rUnsorted, rCost));
3791         }else{
3792           rCost = rUnsorted;
3793         }
3794 
3795         /* Check to see if pWLoop should be added to the set of
3796         ** mxChoice best-so-far paths.
3797         **
3798         ** First look for an existing path among best-so-far paths
3799         ** that covers the same set of loops and has the same isOrdered
3800         ** setting as the current path candidate.
3801         **
3802         ** The term "((pTo->isOrdered^isOrdered)&0x80)==0" is equivalent
3803         ** to (pTo->isOrdered==(-1))==(isOrdered==(-1))" for the range
3804         ** of legal values for isOrdered, -1..64.
3805         */
3806         for(jj=0, pTo=aTo; jj<nTo; jj++, pTo++){
3807           if( pTo->maskLoop==maskNew
3808            && ((pTo->isOrdered^isOrdered)&0x80)==0
3809           ){
3810             testcase( jj==nTo-1 );
3811             break;
3812           }
3813         }
3814         if( jj>=nTo ){
3815           /* None of the existing best-so-far paths match the candidate. */
3816           if( nTo>=mxChoice
3817            && (rCost>mxCost || (rCost==mxCost && rUnsorted>=mxUnsorted))
3818           ){
3819             /* The current candidate is no better than any of the mxChoice
3820             ** paths currently in the best-so-far buffer.  So discard
3821             ** this candidate as not viable. */
3822 #ifdef WHERETRACE_ENABLED /* 0x4 */
3823             if( sqlite3WhereTrace&0x4 ){
3824               sqlite3DebugPrintf("Skip   %s cost=%-3d,%3d order=%c\n",
3825                   wherePathName(pFrom, iLoop, pWLoop), rCost, nOut,
3826                   isOrdered>=0 ? isOrdered+'0' : '?');
3827             }
3828 #endif
3829             continue;
3830           }
3831           /* If we reach this points it means that the new candidate path
3832           ** needs to be added to the set of best-so-far paths. */
3833           if( nTo<mxChoice ){
3834             /* Increase the size of the aTo set by one */
3835             jj = nTo++;
3836           }else{
3837             /* New path replaces the prior worst to keep count below mxChoice */
3838             jj = mxI;
3839           }
3840           pTo = &aTo[jj];
3841 #ifdef WHERETRACE_ENABLED /* 0x4 */
3842           if( sqlite3WhereTrace&0x4 ){
3843             sqlite3DebugPrintf("New    %s cost=%-3d,%3d order=%c\n",
3844                 wherePathName(pFrom, iLoop, pWLoop), rCost, nOut,
3845                 isOrdered>=0 ? isOrdered+'0' : '?');
3846           }
3847 #endif
3848         }else{
3849           /* Control reaches here if best-so-far path pTo=aTo[jj] covers the
3850           ** same set of loops and has the sam isOrdered setting as the
3851           ** candidate path.  Check to see if the candidate should replace
3852           ** pTo or if the candidate should be skipped */
3853           if( pTo->rCost<rCost || (pTo->rCost==rCost && pTo->nRow<=nOut) ){
3854 #ifdef WHERETRACE_ENABLED /* 0x4 */
3855             if( sqlite3WhereTrace&0x4 ){
3856               sqlite3DebugPrintf(
3857                   "Skip   %s cost=%-3d,%3d order=%c",
3858                   wherePathName(pFrom, iLoop, pWLoop), rCost, nOut,
3859                   isOrdered>=0 ? isOrdered+'0' : '?');
3860               sqlite3DebugPrintf("   vs %s cost=%-3d,%d order=%c\n",
3861                   wherePathName(pTo, iLoop+1, 0), pTo->rCost, pTo->nRow,
3862                   pTo->isOrdered>=0 ? pTo->isOrdered+'0' : '?');
3863             }
3864 #endif
3865             /* Discard the candidate path from further consideration */
3866             testcase( pTo->rCost==rCost );
3867             continue;
3868           }
3869           testcase( pTo->rCost==rCost+1 );
3870           /* Control reaches here if the candidate path is better than the
3871           ** pTo path.  Replace pTo with the candidate. */
3872 #ifdef WHERETRACE_ENABLED /* 0x4 */
3873           if( sqlite3WhereTrace&0x4 ){
3874             sqlite3DebugPrintf(
3875                 "Update %s cost=%-3d,%3d order=%c",
3876                 wherePathName(pFrom, iLoop, pWLoop), rCost, nOut,
3877                 isOrdered>=0 ? isOrdered+'0' : '?');
3878             sqlite3DebugPrintf("  was %s cost=%-3d,%3d order=%c\n",
3879                 wherePathName(pTo, iLoop+1, 0), pTo->rCost, pTo->nRow,
3880                 pTo->isOrdered>=0 ? pTo->isOrdered+'0' : '?');
3881           }
3882 #endif
3883         }
3884         /* pWLoop is a winner.  Add it to the set of best so far */
3885         pTo->maskLoop = pFrom->maskLoop | pWLoop->maskSelf;
3886         pTo->revLoop = revMask;
3887         pTo->nRow = nOut;
3888         pTo->rCost = rCost;
3889         pTo->rUnsorted = rUnsorted;
3890         pTo->isOrdered = isOrdered;
3891         memcpy(pTo->aLoop, pFrom->aLoop, sizeof(WhereLoop*)*iLoop);
3892         pTo->aLoop[iLoop] = pWLoop;
3893         if( nTo>=mxChoice ){
3894           mxI = 0;
3895           mxCost = aTo[0].rCost;
3896           mxUnsorted = aTo[0].nRow;
3897           for(jj=1, pTo=&aTo[1]; jj<mxChoice; jj++, pTo++){
3898             if( pTo->rCost>mxCost
3899              || (pTo->rCost==mxCost && pTo->rUnsorted>mxUnsorted)
3900             ){
3901               mxCost = pTo->rCost;
3902               mxUnsorted = pTo->rUnsorted;
3903               mxI = jj;
3904             }
3905           }
3906         }
3907       }
3908     }
3909 
3910 #ifdef WHERETRACE_ENABLED  /* >=2 */
3911     if( sqlite3WhereTrace & 0x02 ){
3912       sqlite3DebugPrintf("---- after round %d ----\n", iLoop);
3913       for(ii=0, pTo=aTo; ii<nTo; ii++, pTo++){
3914         sqlite3DebugPrintf(" %s cost=%-3d nrow=%-3d order=%c",
3915            wherePathName(pTo, iLoop+1, 0), pTo->rCost, pTo->nRow,
3916            pTo->isOrdered>=0 ? (pTo->isOrdered+'0') : '?');
3917         if( pTo->isOrdered>0 ){
3918           sqlite3DebugPrintf(" rev=0x%llx\n", pTo->revLoop);
3919         }else{
3920           sqlite3DebugPrintf("\n");
3921         }
3922       }
3923     }
3924 #endif
3925 
3926     /* Swap the roles of aFrom and aTo for the next generation */
3927     pFrom = aTo;
3928     aTo = aFrom;
3929     aFrom = pFrom;
3930     nFrom = nTo;
3931   }
3932 
3933   if( nFrom==0 ){
3934     sqlite3ErrorMsg(pParse, "no query solution");
3935     sqlite3DbFree(db, pSpace);
3936     return SQLITE_ERROR;
3937   }
3938 
3939   /* Find the lowest cost path.  pFrom will be left pointing to that path */
3940   pFrom = aFrom;
3941   for(ii=1; ii<nFrom; ii++){
3942     if( pFrom->rCost>aFrom[ii].rCost ) pFrom = &aFrom[ii];
3943   }
3944   assert( pWInfo->nLevel==nLoop );
3945   /* Load the lowest cost path into pWInfo */
3946   for(iLoop=0; iLoop<nLoop; iLoop++){
3947     WhereLevel *pLevel = pWInfo->a + iLoop;
3948     pLevel->pWLoop = pWLoop = pFrom->aLoop[iLoop];
3949     pLevel->iFrom = pWLoop->iTab;
3950     pLevel->iTabCur = pWInfo->pTabList->a[pLevel->iFrom].iCursor;
3951   }
3952   if( (pWInfo->wctrlFlags & WHERE_WANT_DISTINCT)!=0
3953    && (pWInfo->wctrlFlags & WHERE_DISTINCTBY)==0
3954    && pWInfo->eDistinct==WHERE_DISTINCT_NOOP
3955    && nRowEst
3956   ){
3957     Bitmask notUsed;
3958     int rc = wherePathSatisfiesOrderBy(pWInfo, pWInfo->pDistinctSet, pFrom,
3959                  WHERE_DISTINCTBY, nLoop-1, pFrom->aLoop[nLoop-1], &notUsed);
3960     if( rc==pWInfo->pDistinctSet->nExpr ){
3961       pWInfo->eDistinct = WHERE_DISTINCT_ORDERED;
3962     }
3963   }
3964   if( pWInfo->pOrderBy ){
3965     if( pWInfo->wctrlFlags & WHERE_DISTINCTBY ){
3966       if( pFrom->isOrdered==pWInfo->pOrderBy->nExpr ){
3967         pWInfo->eDistinct = WHERE_DISTINCT_ORDERED;
3968       }
3969     }else{
3970       pWInfo->nOBSat = pFrom->isOrdered;
3971       pWInfo->revMask = pFrom->revLoop;
3972       if( pWInfo->nOBSat<=0 ){
3973         pWInfo->nOBSat = 0;
3974         if( nLoop>0 ){
3975           Bitmask m = 0;
3976           int rc = wherePathSatisfiesOrderBy(pWInfo, pWInfo->pOrderBy, pFrom,
3977                       WHERE_ORDERBY_LIMIT, nLoop-1, pFrom->aLoop[nLoop-1], &m);
3978           if( rc==pWInfo->pOrderBy->nExpr ){
3979             pWInfo->bOrderedInnerLoop = 1;
3980             pWInfo->revMask = m;
3981           }
3982         }
3983       }
3984     }
3985     if( (pWInfo->wctrlFlags & WHERE_SORTBYGROUP)
3986         && pWInfo->nOBSat==pWInfo->pOrderBy->nExpr && nLoop>0
3987     ){
3988       Bitmask revMask = 0;
3989       int nOrder = wherePathSatisfiesOrderBy(pWInfo, pWInfo->pOrderBy,
3990           pFrom, 0, nLoop-1, pFrom->aLoop[nLoop-1], &revMask
3991       );
3992       assert( pWInfo->sorted==0 );
3993       if( nOrder==pWInfo->pOrderBy->nExpr ){
3994         pWInfo->sorted = 1;
3995         pWInfo->revMask = revMask;
3996       }
3997     }
3998   }
3999 
4000 
4001   pWInfo->nRowOut = pFrom->nRow;
4002 
4003   /* Free temporary memory and return success */
4004   sqlite3DbFree(db, pSpace);
4005   return SQLITE_OK;
4006 }
4007 
4008 /*
4009 ** Most queries use only a single table (they are not joins) and have
4010 ** simple == constraints against indexed fields.  This routine attempts
4011 ** to plan those simple cases using much less ceremony than the
4012 ** general-purpose query planner, and thereby yield faster sqlite3_prepare()
4013 ** times for the common case.
4014 **
4015 ** Return non-zero on success, if this query can be handled by this
4016 ** no-frills query planner.  Return zero if this query needs the
4017 ** general-purpose query planner.
4018 */
4019 static int whereShortCut(WhereLoopBuilder *pBuilder){
4020   WhereInfo *pWInfo;
4021   struct SrcList_item *pItem;
4022   WhereClause *pWC;
4023   WhereTerm *pTerm;
4024   WhereLoop *pLoop;
4025   int iCur;
4026   int j;
4027   Table *pTab;
4028   Index *pIdx;
4029 
4030   pWInfo = pBuilder->pWInfo;
4031   if( pWInfo->wctrlFlags & WHERE_OR_SUBCLAUSE ) return 0;
4032   assert( pWInfo->pTabList->nSrc>=1 );
4033   pItem = pWInfo->pTabList->a;
4034   pTab = pItem->pTab;
4035   if( IsVirtual(pTab) ) return 0;
4036   if( pItem->fg.isIndexedBy ) return 0;
4037   iCur = pItem->iCursor;
4038   pWC = &pWInfo->sWC;
4039   pLoop = pBuilder->pNew;
4040   pLoop->wsFlags = 0;
4041   pLoop->nSkip = 0;
4042   pTerm = sqlite3WhereFindTerm(pWC, iCur, -1, 0, WO_EQ|WO_IS, 0);
4043   if( pTerm ){
4044     testcase( pTerm->eOperator & WO_IS );
4045     pLoop->wsFlags = WHERE_COLUMN_EQ|WHERE_IPK|WHERE_ONEROW;
4046     pLoop->aLTerm[0] = pTerm;
4047     pLoop->nLTerm = 1;
4048     pLoop->u.btree.nEq = 1;
4049     /* TUNING: Cost of a rowid lookup is 10 */
4050     pLoop->rRun = 33;  /* 33==sqlite3LogEst(10) */
4051   }else{
4052     for(pIdx=pTab->pIndex; pIdx; pIdx=pIdx->pNext){
4053       int opMask;
4054       assert( pLoop->aLTermSpace==pLoop->aLTerm );
4055       if( !IsUniqueIndex(pIdx)
4056        || pIdx->pPartIdxWhere!=0
4057        || pIdx->nKeyCol>ArraySize(pLoop->aLTermSpace)
4058       ) continue;
4059       opMask = pIdx->uniqNotNull ? (WO_EQ|WO_IS) : WO_EQ;
4060       for(j=0; j<pIdx->nKeyCol; j++){
4061         pTerm = sqlite3WhereFindTerm(pWC, iCur, j, 0, opMask, pIdx);
4062         if( pTerm==0 ) break;
4063         testcase( pTerm->eOperator & WO_IS );
4064         pLoop->aLTerm[j] = pTerm;
4065       }
4066       if( j!=pIdx->nKeyCol ) continue;
4067       pLoop->wsFlags = WHERE_COLUMN_EQ|WHERE_ONEROW|WHERE_INDEXED;
4068       if( pIdx->isCovering || (pItem->colUsed & ~columnsInIndex(pIdx))==0 ){
4069         pLoop->wsFlags |= WHERE_IDX_ONLY;
4070       }
4071       pLoop->nLTerm = j;
4072       pLoop->u.btree.nEq = j;
4073       pLoop->u.btree.pIndex = pIdx;
4074       /* TUNING: Cost of a unique index lookup is 15 */
4075       pLoop->rRun = 39;  /* 39==sqlite3LogEst(15) */
4076       break;
4077     }
4078   }
4079   if( pLoop->wsFlags ){
4080     pLoop->nOut = (LogEst)1;
4081     pWInfo->a[0].pWLoop = pLoop;
4082     pLoop->maskSelf = sqlite3WhereGetMask(&pWInfo->sMaskSet, iCur);
4083     pWInfo->a[0].iTabCur = iCur;
4084     pWInfo->nRowOut = 1;
4085     if( pWInfo->pOrderBy ) pWInfo->nOBSat =  pWInfo->pOrderBy->nExpr;
4086     if( pWInfo->wctrlFlags & WHERE_WANT_DISTINCT ){
4087       pWInfo->eDistinct = WHERE_DISTINCT_UNIQUE;
4088     }
4089 #ifdef SQLITE_DEBUG
4090     pLoop->cId = '0';
4091 #endif
4092     return 1;
4093   }
4094   return 0;
4095 }
4096 
4097 /*
4098 ** Generate the beginning of the loop used for WHERE clause processing.
4099 ** The return value is a pointer to an opaque structure that contains
4100 ** information needed to terminate the loop.  Later, the calling routine
4101 ** should invoke sqlite3WhereEnd() with the return value of this function
4102 ** in order to complete the WHERE clause processing.
4103 **
4104 ** If an error occurs, this routine returns NULL.
4105 **
4106 ** The basic idea is to do a nested loop, one loop for each table in
4107 ** the FROM clause of a select.  (INSERT and UPDATE statements are the
4108 ** same as a SELECT with only a single table in the FROM clause.)  For
4109 ** example, if the SQL is this:
4110 **
4111 **       SELECT * FROM t1, t2, t3 WHERE ...;
4112 **
4113 ** Then the code generated is conceptually like the following:
4114 **
4115 **      foreach row1 in t1 do       \    Code generated
4116 **        foreach row2 in t2 do      |-- by sqlite3WhereBegin()
4117 **          foreach row3 in t3 do   /
4118 **            ...
4119 **          end                     \    Code generated
4120 **        end                        |-- by sqlite3WhereEnd()
4121 **      end                         /
4122 **
4123 ** Note that the loops might not be nested in the order in which they
4124 ** appear in the FROM clause if a different order is better able to make
4125 ** use of indices.  Note also that when the IN operator appears in
4126 ** the WHERE clause, it might result in additional nested loops for
4127 ** scanning through all values on the right-hand side of the IN.
4128 **
4129 ** There are Btree cursors associated with each table.  t1 uses cursor
4130 ** number pTabList->a[0].iCursor.  t2 uses the cursor pTabList->a[1].iCursor.
4131 ** And so forth.  This routine generates code to open those VDBE cursors
4132 ** and sqlite3WhereEnd() generates the code to close them.
4133 **
4134 ** The code that sqlite3WhereBegin() generates leaves the cursors named
4135 ** in pTabList pointing at their appropriate entries.  The [...] code
4136 ** can use OP_Column and OP_Rowid opcodes on these cursors to extract
4137 ** data from the various tables of the loop.
4138 **
4139 ** If the WHERE clause is empty, the foreach loops must each scan their
4140 ** entire tables.  Thus a three-way join is an O(N^3) operation.  But if
4141 ** the tables have indices and there are terms in the WHERE clause that
4142 ** refer to those indices, a complete table scan can be avoided and the
4143 ** code will run much faster.  Most of the work of this routine is checking
4144 ** to see if there are indices that can be used to speed up the loop.
4145 **
4146 ** Terms of the WHERE clause are also used to limit which rows actually
4147 ** make it to the "..." in the middle of the loop.  After each "foreach",
4148 ** terms of the WHERE clause that use only terms in that loop and outer
4149 ** loops are evaluated and if false a jump is made around all subsequent
4150 ** inner loops (or around the "..." if the test occurs within the inner-
4151 ** most loop)
4152 **
4153 ** OUTER JOINS
4154 **
4155 ** An outer join of tables t1 and t2 is conceptally coded as follows:
4156 **
4157 **    foreach row1 in t1 do
4158 **      flag = 0
4159 **      foreach row2 in t2 do
4160 **        start:
4161 **          ...
4162 **          flag = 1
4163 **      end
4164 **      if flag==0 then
4165 **        move the row2 cursor to a null row
4166 **        goto start
4167 **      fi
4168 **    end
4169 **
4170 ** ORDER BY CLAUSE PROCESSING
4171 **
4172 ** pOrderBy is a pointer to the ORDER BY clause (or the GROUP BY clause
4173 ** if the WHERE_GROUPBY flag is set in wctrlFlags) of a SELECT statement
4174 ** if there is one.  If there is no ORDER BY clause or if this routine
4175 ** is called from an UPDATE or DELETE statement, then pOrderBy is NULL.
4176 **
4177 ** The iIdxCur parameter is the cursor number of an index.  If
4178 ** WHERE_OR_SUBCLAUSE is set, iIdxCur is the cursor number of an index
4179 ** to use for OR clause processing.  The WHERE clause should use this
4180 ** specific cursor.  If WHERE_ONEPASS_DESIRED is set, then iIdxCur is
4181 ** the first cursor in an array of cursors for all indices.  iIdxCur should
4182 ** be used to compute the appropriate cursor depending on which index is
4183 ** used.
4184 */
4185 WhereInfo *sqlite3WhereBegin(
4186   Parse *pParse,          /* The parser context */
4187   SrcList *pTabList,      /* FROM clause: A list of all tables to be scanned */
4188   Expr *pWhere,           /* The WHERE clause */
4189   ExprList *pOrderBy,     /* An ORDER BY (or GROUP BY) clause, or NULL */
4190   ExprList *pDistinctSet, /* Try not to output two rows that duplicate these */
4191   u16 wctrlFlags,         /* The WHERE_* flags defined in sqliteInt.h */
4192   int iAuxArg             /* If WHERE_OR_SUBCLAUSE is set, index cursor number
4193                           ** If WHERE_USE_LIMIT, then the limit amount */
4194 ){
4195   int nByteWInfo;            /* Num. bytes allocated for WhereInfo struct */
4196   int nTabList;              /* Number of elements in pTabList */
4197   WhereInfo *pWInfo;         /* Will become the return value of this function */
4198   Vdbe *v = pParse->pVdbe;   /* The virtual database engine */
4199   Bitmask notReady;          /* Cursors that are not yet positioned */
4200   WhereLoopBuilder sWLB;     /* The WhereLoop builder */
4201   WhereMaskSet *pMaskSet;    /* The expression mask set */
4202   WhereLevel *pLevel;        /* A single level in pWInfo->a[] */
4203   WhereLoop *pLoop;          /* Pointer to a single WhereLoop object */
4204   int ii;                    /* Loop counter */
4205   sqlite3 *db;               /* Database connection */
4206   int rc;                    /* Return code */
4207   u8 bFordelete = 0;         /* OPFLAG_FORDELETE or zero, as appropriate */
4208 
4209   assert( (wctrlFlags & WHERE_ONEPASS_MULTIROW)==0 || (
4210         (wctrlFlags & WHERE_ONEPASS_DESIRED)!=0
4211      && (wctrlFlags & WHERE_OR_SUBCLAUSE)==0
4212   ));
4213 
4214   /* Only one of WHERE_OR_SUBCLAUSE or WHERE_USE_LIMIT */
4215   assert( (wctrlFlags & WHERE_OR_SUBCLAUSE)==0
4216             || (wctrlFlags & WHERE_USE_LIMIT)==0 );
4217 
4218   /* Variable initialization */
4219   db = pParse->db;
4220   memset(&sWLB, 0, sizeof(sWLB));
4221 
4222   /* An ORDER/GROUP BY clause of more than 63 terms cannot be optimized */
4223   testcase( pOrderBy && pOrderBy->nExpr==BMS-1 );
4224   if( pOrderBy && pOrderBy->nExpr>=BMS ) pOrderBy = 0;
4225   sWLB.pOrderBy = pOrderBy;
4226 
4227   /* Disable the DISTINCT optimization if SQLITE_DistinctOpt is set via
4228   ** sqlite3_test_ctrl(SQLITE_TESTCTRL_OPTIMIZATIONS,...) */
4229   if( OptimizationDisabled(db, SQLITE_DistinctOpt) ){
4230     wctrlFlags &= ~WHERE_WANT_DISTINCT;
4231   }
4232 
4233   /* The number of tables in the FROM clause is limited by the number of
4234   ** bits in a Bitmask
4235   */
4236   testcase( pTabList->nSrc==BMS );
4237   if( pTabList->nSrc>BMS ){
4238     sqlite3ErrorMsg(pParse, "at most %d tables in a join", BMS);
4239     return 0;
4240   }
4241 
4242   /* This function normally generates a nested loop for all tables in
4243   ** pTabList.  But if the WHERE_OR_SUBCLAUSE flag is set, then we should
4244   ** only generate code for the first table in pTabList and assume that
4245   ** any cursors associated with subsequent tables are uninitialized.
4246   */
4247   nTabList = (wctrlFlags & WHERE_OR_SUBCLAUSE) ? 1 : pTabList->nSrc;
4248 
4249   /* Allocate and initialize the WhereInfo structure that will become the
4250   ** return value. A single allocation is used to store the WhereInfo
4251   ** struct, the contents of WhereInfo.a[], the WhereClause structure
4252   ** and the WhereMaskSet structure. Since WhereClause contains an 8-byte
4253   ** field (type Bitmask) it must be aligned on an 8-byte boundary on
4254   ** some architectures. Hence the ROUND8() below.
4255   */
4256   nByteWInfo = ROUND8(sizeof(WhereInfo)+(nTabList-1)*sizeof(WhereLevel));
4257   pWInfo = sqlite3DbMallocZero(db, nByteWInfo + sizeof(WhereLoop));
4258   if( db->mallocFailed ){
4259     sqlite3DbFree(db, pWInfo);
4260     pWInfo = 0;
4261     goto whereBeginError;
4262   }
4263   pWInfo->aiCurOnePass[0] = pWInfo->aiCurOnePass[1] = -1;
4264   pWInfo->nLevel = nTabList;
4265   pWInfo->pParse = pParse;
4266   pWInfo->pTabList = pTabList;
4267   pWInfo->pOrderBy = pOrderBy;
4268   pWInfo->pDistinctSet = pDistinctSet;
4269   pWInfo->iBreak = pWInfo->iContinue = sqlite3VdbeMakeLabel(v);
4270   pWInfo->wctrlFlags = wctrlFlags;
4271   pWInfo->iLimit = iAuxArg;
4272   pWInfo->savedNQueryLoop = pParse->nQueryLoop;
4273   assert( pWInfo->eOnePass==ONEPASS_OFF );  /* ONEPASS defaults to OFF */
4274   pMaskSet = &pWInfo->sMaskSet;
4275   sWLB.pWInfo = pWInfo;
4276   sWLB.pWC = &pWInfo->sWC;
4277   sWLB.pNew = (WhereLoop*)(((char*)pWInfo)+nByteWInfo);
4278   assert( EIGHT_BYTE_ALIGNMENT(sWLB.pNew) );
4279   whereLoopInit(sWLB.pNew);
4280 #ifdef SQLITE_DEBUG
4281   sWLB.pNew->cId = '*';
4282 #endif
4283 
4284   /* Split the WHERE clause into separate subexpressions where each
4285   ** subexpression is separated by an AND operator.
4286   */
4287   initMaskSet(pMaskSet);
4288   sqlite3WhereClauseInit(&pWInfo->sWC, pWInfo);
4289   sqlite3WhereSplit(&pWInfo->sWC, pWhere, TK_AND);
4290 
4291   /* Special case: a WHERE clause that is constant.  Evaluate the
4292   ** expression and either jump over all of the code or fall thru.
4293   */
4294   for(ii=0; ii<sWLB.pWC->nTerm; ii++){
4295     if( nTabList==0 || sqlite3ExprIsConstantNotJoin(sWLB.pWC->a[ii].pExpr) ){
4296       sqlite3ExprIfFalse(pParse, sWLB.pWC->a[ii].pExpr, pWInfo->iBreak,
4297                          SQLITE_JUMPIFNULL);
4298       sWLB.pWC->a[ii].wtFlags |= TERM_CODED;
4299     }
4300   }
4301 
4302   /* Special case: No FROM clause
4303   */
4304   if( nTabList==0 ){
4305     if( pOrderBy ) pWInfo->nOBSat = pOrderBy->nExpr;
4306     if( wctrlFlags & WHERE_WANT_DISTINCT ){
4307       pWInfo->eDistinct = WHERE_DISTINCT_UNIQUE;
4308     }
4309   }
4310 
4311   /* Assign a bit from the bitmask to every term in the FROM clause.
4312   **
4313   ** The N-th term of the FROM clause is assigned a bitmask of 1<<N.
4314   **
4315   ** The rule of the previous sentence ensures thta if X is the bitmask for
4316   ** a table T, then X-1 is the bitmask for all other tables to the left of T.
4317   ** Knowing the bitmask for all tables to the left of a left join is
4318   ** important.  Ticket #3015.
4319   **
4320   ** Note that bitmasks are created for all pTabList->nSrc tables in
4321   ** pTabList, not just the first nTabList tables.  nTabList is normally
4322   ** equal to pTabList->nSrc but might be shortened to 1 if the
4323   ** WHERE_OR_SUBCLAUSE flag is set.
4324   */
4325   for(ii=0; ii<pTabList->nSrc; ii++){
4326     createMask(pMaskSet, pTabList->a[ii].iCursor);
4327     sqlite3WhereTabFuncArgs(pParse, &pTabList->a[ii], &pWInfo->sWC);
4328   }
4329 #ifdef SQLITE_DEBUG
4330   for(ii=0; ii<pTabList->nSrc; ii++){
4331     Bitmask m = sqlite3WhereGetMask(pMaskSet, pTabList->a[ii].iCursor);
4332     assert( m==MASKBIT(ii) );
4333   }
4334 #endif
4335 
4336   /* Analyze all of the subexpressions. */
4337   sqlite3WhereExprAnalyze(pTabList, &pWInfo->sWC);
4338   if( db->mallocFailed ) goto whereBeginError;
4339 
4340   if( wctrlFlags & WHERE_WANT_DISTINCT ){
4341     if( isDistinctRedundant(pParse, pTabList, &pWInfo->sWC, pDistinctSet) ){
4342       /* The DISTINCT marking is pointless.  Ignore it. */
4343       pWInfo->eDistinct = WHERE_DISTINCT_UNIQUE;
4344     }else if( pOrderBy==0 ){
4345       /* Try to ORDER BY the result set to make distinct processing easier */
4346       pWInfo->wctrlFlags |= WHERE_DISTINCTBY;
4347       pWInfo->pOrderBy = pDistinctSet;
4348     }
4349   }
4350 
4351   /* Construct the WhereLoop objects */
4352 #if defined(WHERETRACE_ENABLED)
4353   if( sqlite3WhereTrace & 0xffff ){
4354     sqlite3DebugPrintf("*** Optimizer Start *** (wctrlFlags: 0x%x",wctrlFlags);
4355     if( wctrlFlags & WHERE_USE_LIMIT ){
4356       sqlite3DebugPrintf(", limit: %d", iAuxArg);
4357     }
4358     sqlite3DebugPrintf(")\n");
4359   }
4360   if( sqlite3WhereTrace & 0x100 ){ /* Display all terms of the WHERE clause */
4361     sqlite3WhereClausePrint(sWLB.pWC);
4362   }
4363 #endif
4364 
4365   if( nTabList!=1 || whereShortCut(&sWLB)==0 ){
4366     rc = whereLoopAddAll(&sWLB);
4367     if( rc ) goto whereBeginError;
4368 
4369 #ifdef WHERETRACE_ENABLED
4370     if( sqlite3WhereTrace ){    /* Display all of the WhereLoop objects */
4371       WhereLoop *p;
4372       int i;
4373       static const char zLabel[] = "0123456789abcdefghijklmnopqrstuvwyxz"
4374                                              "ABCDEFGHIJKLMNOPQRSTUVWYXZ";
4375       for(p=pWInfo->pLoops, i=0; p; p=p->pNextLoop, i++){
4376         p->cId = zLabel[i%sizeof(zLabel)];
4377         whereLoopPrint(p, sWLB.pWC);
4378       }
4379     }
4380 #endif
4381 
4382     wherePathSolver(pWInfo, 0);
4383     if( db->mallocFailed ) goto whereBeginError;
4384     if( pWInfo->pOrderBy ){
4385        wherePathSolver(pWInfo, pWInfo->nRowOut+1);
4386        if( db->mallocFailed ) goto whereBeginError;
4387     }
4388   }
4389   if( pWInfo->pOrderBy==0 && (db->flags & SQLITE_ReverseOrder)!=0 ){
4390      pWInfo->revMask = ALLBITS;
4391   }
4392   if( pParse->nErr || NEVER(db->mallocFailed) ){
4393     goto whereBeginError;
4394   }
4395 #ifdef WHERETRACE_ENABLED
4396   if( sqlite3WhereTrace ){
4397     sqlite3DebugPrintf("---- Solution nRow=%d", pWInfo->nRowOut);
4398     if( pWInfo->nOBSat>0 ){
4399       sqlite3DebugPrintf(" ORDERBY=%d,0x%llx", pWInfo->nOBSat, pWInfo->revMask);
4400     }
4401     switch( pWInfo->eDistinct ){
4402       case WHERE_DISTINCT_UNIQUE: {
4403         sqlite3DebugPrintf("  DISTINCT=unique");
4404         break;
4405       }
4406       case WHERE_DISTINCT_ORDERED: {
4407         sqlite3DebugPrintf("  DISTINCT=ordered");
4408         break;
4409       }
4410       case WHERE_DISTINCT_UNORDERED: {
4411         sqlite3DebugPrintf("  DISTINCT=unordered");
4412         break;
4413       }
4414     }
4415     sqlite3DebugPrintf("\n");
4416     for(ii=0; ii<pWInfo->nLevel; ii++){
4417       whereLoopPrint(pWInfo->a[ii].pWLoop, sWLB.pWC);
4418     }
4419   }
4420 #endif
4421   /* Attempt to omit tables from the join that do not effect the result */
4422   if( pWInfo->nLevel>=2
4423    && pDistinctSet!=0
4424    && OptimizationEnabled(db, SQLITE_OmitNoopJoin)
4425   ){
4426     Bitmask tabUsed = sqlite3WhereExprListUsage(pMaskSet, pDistinctSet);
4427     if( sWLB.pOrderBy ){
4428       tabUsed |= sqlite3WhereExprListUsage(pMaskSet, sWLB.pOrderBy);
4429     }
4430     while( pWInfo->nLevel>=2 ){
4431       WhereTerm *pTerm, *pEnd;
4432       pLoop = pWInfo->a[pWInfo->nLevel-1].pWLoop;
4433       if( (pWInfo->pTabList->a[pLoop->iTab].fg.jointype & JT_LEFT)==0 ) break;
4434       if( (wctrlFlags & WHERE_WANT_DISTINCT)==0
4435        && (pLoop->wsFlags & WHERE_ONEROW)==0
4436       ){
4437         break;
4438       }
4439       if( (tabUsed & pLoop->maskSelf)!=0 ) break;
4440       pEnd = sWLB.pWC->a + sWLB.pWC->nTerm;
4441       for(pTerm=sWLB.pWC->a; pTerm<pEnd; pTerm++){
4442         if( (pTerm->prereqAll & pLoop->maskSelf)!=0
4443          && !ExprHasProperty(pTerm->pExpr, EP_FromJoin)
4444         ){
4445           break;
4446         }
4447       }
4448       if( pTerm<pEnd ) break;
4449       WHERETRACE(0xffff, ("-> drop loop %c not used\n", pLoop->cId));
4450       pWInfo->nLevel--;
4451       nTabList--;
4452     }
4453   }
4454   WHERETRACE(0xffff,("*** Optimizer Finished ***\n"));
4455   pWInfo->pParse->nQueryLoop += pWInfo->nRowOut;
4456 
4457   /* If the caller is an UPDATE or DELETE statement that is requesting
4458   ** to use a one-pass algorithm, determine if this is appropriate.
4459   */
4460   assert( (wctrlFlags & WHERE_ONEPASS_DESIRED)==0 || pWInfo->nLevel==1 );
4461   if( (wctrlFlags & WHERE_ONEPASS_DESIRED)!=0 ){
4462     int wsFlags = pWInfo->a[0].pWLoop->wsFlags;
4463     int bOnerow = (wsFlags & WHERE_ONEROW)!=0;
4464     if( bOnerow
4465      || ((wctrlFlags & WHERE_ONEPASS_MULTIROW)!=0
4466            && 0==(wsFlags & WHERE_VIRTUALTABLE))
4467     ){
4468       pWInfo->eOnePass = bOnerow ? ONEPASS_SINGLE : ONEPASS_MULTI;
4469       if( HasRowid(pTabList->a[0].pTab) && (wsFlags & WHERE_IDX_ONLY) ){
4470         if( wctrlFlags & WHERE_ONEPASS_MULTIROW ){
4471           bFordelete = OPFLAG_FORDELETE;
4472         }
4473         pWInfo->a[0].pWLoop->wsFlags = (wsFlags & ~WHERE_IDX_ONLY);
4474       }
4475     }
4476   }
4477 
4478   /* Open all tables in the pTabList and any indices selected for
4479   ** searching those tables.
4480   */
4481   for(ii=0, pLevel=pWInfo->a; ii<nTabList; ii++, pLevel++){
4482     Table *pTab;     /* Table to open */
4483     int iDb;         /* Index of database containing table/index */
4484     struct SrcList_item *pTabItem;
4485 
4486     pTabItem = &pTabList->a[pLevel->iFrom];
4487     pTab = pTabItem->pTab;
4488     iDb = sqlite3SchemaToIndex(db, pTab->pSchema);
4489     pLoop = pLevel->pWLoop;
4490     if( (pTab->tabFlags & TF_Ephemeral)!=0 || pTab->pSelect ){
4491       /* Do nothing */
4492     }else
4493 #ifndef SQLITE_OMIT_VIRTUALTABLE
4494     if( (pLoop->wsFlags & WHERE_VIRTUALTABLE)!=0 ){
4495       const char *pVTab = (const char *)sqlite3GetVTable(db, pTab);
4496       int iCur = pTabItem->iCursor;
4497       sqlite3VdbeAddOp4(v, OP_VOpen, iCur, 0, 0, pVTab, P4_VTAB);
4498     }else if( IsVirtual(pTab) ){
4499       /* noop */
4500     }else
4501 #endif
4502     if( (pLoop->wsFlags & WHERE_IDX_ONLY)==0
4503          && (wctrlFlags & WHERE_OR_SUBCLAUSE)==0 ){
4504       int op = OP_OpenRead;
4505       if( pWInfo->eOnePass!=ONEPASS_OFF ){
4506         op = OP_OpenWrite;
4507         pWInfo->aiCurOnePass[0] = pTabItem->iCursor;
4508       };
4509       sqlite3OpenTable(pParse, pTabItem->iCursor, iDb, pTab, op);
4510       assert( pTabItem->iCursor==pLevel->iTabCur );
4511       testcase( pWInfo->eOnePass==ONEPASS_OFF && pTab->nCol==BMS-1 );
4512       testcase( pWInfo->eOnePass==ONEPASS_OFF && pTab->nCol==BMS );
4513       if( pWInfo->eOnePass==ONEPASS_OFF && pTab->nCol<BMS && HasRowid(pTab) ){
4514         Bitmask b = pTabItem->colUsed;
4515         int n = 0;
4516         for(; b; b=b>>1, n++){}
4517         sqlite3VdbeChangeP4(v, -1, SQLITE_INT_TO_PTR(n), P4_INT32);
4518         assert( n<=pTab->nCol );
4519       }
4520 #ifdef SQLITE_ENABLE_CURSOR_HINTS
4521       if( pLoop->u.btree.pIndex!=0 ){
4522         sqlite3VdbeChangeP5(v, OPFLAG_SEEKEQ|bFordelete);
4523       }else
4524 #endif
4525       {
4526         sqlite3VdbeChangeP5(v, bFordelete);
4527       }
4528 #ifdef SQLITE_ENABLE_COLUMN_USED_MASK
4529       sqlite3VdbeAddOp4Dup8(v, OP_ColumnsUsed, pTabItem->iCursor, 0, 0,
4530                             (const u8*)&pTabItem->colUsed, P4_INT64);
4531 #endif
4532     }else{
4533       sqlite3TableLock(pParse, iDb, pTab->tnum, 0, pTab->zName);
4534     }
4535     if( pLoop->wsFlags & WHERE_INDEXED ){
4536       Index *pIx = pLoop->u.btree.pIndex;
4537       int iIndexCur;
4538       int op = OP_OpenRead;
4539       /* iAuxArg is always set if to a positive value if ONEPASS is possible */
4540       assert( iAuxArg!=0 || (pWInfo->wctrlFlags & WHERE_ONEPASS_DESIRED)==0 );
4541       if( !HasRowid(pTab) && IsPrimaryKeyIndex(pIx)
4542        && (wctrlFlags & WHERE_OR_SUBCLAUSE)!=0
4543       ){
4544         /* This is one term of an OR-optimization using the PRIMARY KEY of a
4545         ** WITHOUT ROWID table.  No need for a separate index */
4546         iIndexCur = pLevel->iTabCur;
4547         op = 0;
4548       }else if( pWInfo->eOnePass!=ONEPASS_OFF ){
4549         Index *pJ = pTabItem->pTab->pIndex;
4550         iIndexCur = iAuxArg;
4551         assert( wctrlFlags & WHERE_ONEPASS_DESIRED );
4552         while( ALWAYS(pJ) && pJ!=pIx ){
4553           iIndexCur++;
4554           pJ = pJ->pNext;
4555         }
4556         op = OP_OpenWrite;
4557         pWInfo->aiCurOnePass[1] = iIndexCur;
4558       }else if( iAuxArg && (wctrlFlags & WHERE_OR_SUBCLAUSE)!=0 ){
4559         iIndexCur = iAuxArg;
4560         op = OP_ReopenIdx;
4561       }else{
4562         iIndexCur = pParse->nTab++;
4563       }
4564       pLevel->iIdxCur = iIndexCur;
4565       assert( pIx->pSchema==pTab->pSchema );
4566       assert( iIndexCur>=0 );
4567       if( op ){
4568         sqlite3VdbeAddOp3(v, op, iIndexCur, pIx->tnum, iDb);
4569         sqlite3VdbeSetP4KeyInfo(pParse, pIx);
4570         if( (pLoop->wsFlags & WHERE_CONSTRAINT)!=0
4571          && (pLoop->wsFlags & (WHERE_COLUMN_RANGE|WHERE_SKIPSCAN))==0
4572          && (pWInfo->wctrlFlags&WHERE_ORDERBY_MIN)==0
4573         ){
4574           sqlite3VdbeChangeP5(v, OPFLAG_SEEKEQ); /* Hint to COMDB2 */
4575         }
4576         VdbeComment((v, "%s", pIx->zName));
4577 #ifdef SQLITE_ENABLE_COLUMN_USED_MASK
4578         {
4579           u64 colUsed = 0;
4580           int ii, jj;
4581           for(ii=0; ii<pIx->nColumn; ii++){
4582             jj = pIx->aiColumn[ii];
4583             if( jj<0 ) continue;
4584             if( jj>63 ) jj = 63;
4585             if( (pTabItem->colUsed & MASKBIT(jj))==0 ) continue;
4586             colUsed |= ((u64)1)<<(ii<63 ? ii : 63);
4587           }
4588           sqlite3VdbeAddOp4Dup8(v, OP_ColumnsUsed, iIndexCur, 0, 0,
4589                                 (u8*)&colUsed, P4_INT64);
4590         }
4591 #endif /* SQLITE_ENABLE_COLUMN_USED_MASK */
4592       }
4593     }
4594     if( iDb>=0 ) sqlite3CodeVerifySchema(pParse, iDb);
4595   }
4596   pWInfo->iTop = sqlite3VdbeCurrentAddr(v);
4597   if( db->mallocFailed ) goto whereBeginError;
4598 
4599   /* Generate the code to do the search.  Each iteration of the for
4600   ** loop below generates code for a single nested loop of the VM
4601   ** program.
4602   */
4603   notReady = ~(Bitmask)0;
4604   for(ii=0; ii<nTabList; ii++){
4605     int addrExplain;
4606     int wsFlags;
4607     pLevel = &pWInfo->a[ii];
4608     wsFlags = pLevel->pWLoop->wsFlags;
4609 #ifndef SQLITE_OMIT_AUTOMATIC_INDEX
4610     if( (pLevel->pWLoop->wsFlags & WHERE_AUTO_INDEX)!=0 ){
4611       constructAutomaticIndex(pParse, &pWInfo->sWC,
4612                 &pTabList->a[pLevel->iFrom], notReady, pLevel);
4613       if( db->mallocFailed ) goto whereBeginError;
4614     }
4615 #endif
4616     addrExplain = sqlite3WhereExplainOneScan(
4617         pParse, pTabList, pLevel, ii, pLevel->iFrom, wctrlFlags
4618     );
4619     pLevel->addrBody = sqlite3VdbeCurrentAddr(v);
4620     notReady = sqlite3WhereCodeOneLoopStart(pWInfo, ii, notReady);
4621     pWInfo->iContinue = pLevel->addrCont;
4622     if( (wsFlags&WHERE_MULTI_OR)==0 && (wctrlFlags&WHERE_OR_SUBCLAUSE)==0 ){
4623       sqlite3WhereAddScanStatus(v, pTabList, pLevel, addrExplain);
4624     }
4625   }
4626 
4627   /* Done. */
4628   VdbeModuleComment((v, "Begin WHERE-core"));
4629   return pWInfo;
4630 
4631   /* Jump here if malloc fails */
4632 whereBeginError:
4633   if( pWInfo ){
4634     pParse->nQueryLoop = pWInfo->savedNQueryLoop;
4635     whereInfoFree(db, pWInfo);
4636   }
4637   return 0;
4638 }
4639 
4640 /*
4641 ** Generate the end of the WHERE loop.  See comments on
4642 ** sqlite3WhereBegin() for additional information.
4643 */
4644 void sqlite3WhereEnd(WhereInfo *pWInfo){
4645   Parse *pParse = pWInfo->pParse;
4646   Vdbe *v = pParse->pVdbe;
4647   int i;
4648   WhereLevel *pLevel;
4649   WhereLoop *pLoop;
4650   SrcList *pTabList = pWInfo->pTabList;
4651   sqlite3 *db = pParse->db;
4652 
4653   /* Generate loop termination code.
4654   */
4655   VdbeModuleComment((v, "End WHERE-core"));
4656   sqlite3ExprCacheClear(pParse);
4657   for(i=pWInfo->nLevel-1; i>=0; i--){
4658     int addr;
4659     pLevel = &pWInfo->a[i];
4660     pLoop = pLevel->pWLoop;
4661     sqlite3VdbeResolveLabel(v, pLevel->addrCont);
4662     if( pLevel->op!=OP_Noop ){
4663       sqlite3VdbeAddOp3(v, pLevel->op, pLevel->p1, pLevel->p2, pLevel->p3);
4664       sqlite3VdbeChangeP5(v, pLevel->p5);
4665       VdbeCoverage(v);
4666       VdbeCoverageIf(v, pLevel->op==OP_Next);
4667       VdbeCoverageIf(v, pLevel->op==OP_Prev);
4668       VdbeCoverageIf(v, pLevel->op==OP_VNext);
4669     }
4670     if( pLoop->wsFlags & WHERE_IN_ABLE && pLevel->u.in.nIn>0 ){
4671       struct InLoop *pIn;
4672       int j;
4673       sqlite3VdbeResolveLabel(v, pLevel->addrNxt);
4674       for(j=pLevel->u.in.nIn, pIn=&pLevel->u.in.aInLoop[j-1]; j>0; j--, pIn--){
4675         sqlite3VdbeJumpHere(v, pIn->addrInTop+1);
4676         sqlite3VdbeAddOp2(v, pIn->eEndLoopOp, pIn->iCur, pIn->addrInTop);
4677         VdbeCoverage(v);
4678         VdbeCoverageIf(v, pIn->eEndLoopOp==OP_PrevIfOpen);
4679         VdbeCoverageIf(v, pIn->eEndLoopOp==OP_NextIfOpen);
4680         sqlite3VdbeJumpHere(v, pIn->addrInTop-1);
4681       }
4682     }
4683     sqlite3VdbeResolveLabel(v, pLevel->addrBrk);
4684     if( pLevel->addrSkip ){
4685       sqlite3VdbeGoto(v, pLevel->addrSkip);
4686       VdbeComment((v, "next skip-scan on %s", pLoop->u.btree.pIndex->zName));
4687       sqlite3VdbeJumpHere(v, pLevel->addrSkip);
4688       sqlite3VdbeJumpHere(v, pLevel->addrSkip-2);
4689     }
4690 #ifndef SQLITE_LIKE_DOESNT_MATCH_BLOBS
4691     if( pLevel->addrLikeRep ){
4692       sqlite3VdbeAddOp2(v, OP_DecrJumpZero, (int)(pLevel->iLikeRepCntr>>1),
4693                         pLevel->addrLikeRep);
4694       VdbeCoverage(v);
4695     }
4696 #endif
4697     if( pLevel->iLeftJoin ){
4698       addr = sqlite3VdbeAddOp1(v, OP_IfPos, pLevel->iLeftJoin); VdbeCoverage(v);
4699       assert( (pLoop->wsFlags & WHERE_IDX_ONLY)==0
4700            || (pLoop->wsFlags & WHERE_INDEXED)!=0 );
4701       if( (pLoop->wsFlags & WHERE_IDX_ONLY)==0 ){
4702         sqlite3VdbeAddOp1(v, OP_NullRow, pTabList->a[i].iCursor);
4703       }
4704       if( pLoop->wsFlags & WHERE_INDEXED ){
4705         sqlite3VdbeAddOp1(v, OP_NullRow, pLevel->iIdxCur);
4706       }
4707       if( pLevel->op==OP_Return ){
4708         sqlite3VdbeAddOp2(v, OP_Gosub, pLevel->p1, pLevel->addrFirst);
4709       }else{
4710         sqlite3VdbeGoto(v, pLevel->addrFirst);
4711       }
4712       sqlite3VdbeJumpHere(v, addr);
4713     }
4714     VdbeModuleComment((v, "End WHERE-loop%d: %s", i,
4715                      pWInfo->pTabList->a[pLevel->iFrom].pTab->zName));
4716   }
4717 
4718   /* The "break" point is here, just past the end of the outer loop.
4719   ** Set it.
4720   */
4721   sqlite3VdbeResolveLabel(v, pWInfo->iBreak);
4722 
4723   assert( pWInfo->nLevel<=pTabList->nSrc );
4724   for(i=0, pLevel=pWInfo->a; i<pWInfo->nLevel; i++, pLevel++){
4725     int k, last;
4726     VdbeOp *pOp;
4727     Index *pIdx = 0;
4728     struct SrcList_item *pTabItem = &pTabList->a[pLevel->iFrom];
4729     Table *pTab = pTabItem->pTab;
4730     assert( pTab!=0 );
4731     pLoop = pLevel->pWLoop;
4732 
4733     /* For a co-routine, change all OP_Column references to the table of
4734     ** the co-routine into OP_Copy of result contained in a register.
4735     ** OP_Rowid becomes OP_Null.
4736     */
4737     if( pTabItem->fg.viaCoroutine && !db->mallocFailed ){
4738       translateColumnToCopy(v, pLevel->addrBody, pLevel->iTabCur,
4739                             pTabItem->regResult, 0);
4740       continue;
4741     }
4742 
4743     /* Close all of the cursors that were opened by sqlite3WhereBegin.
4744     ** Except, do not close cursors that will be reused by the OR optimization
4745     ** (WHERE_OR_SUBCLAUSE).  And do not close the OP_OpenWrite cursors
4746     ** created for the ONEPASS optimization.
4747     */
4748     if( (pTab->tabFlags & TF_Ephemeral)==0
4749      && pTab->pSelect==0
4750      && (pWInfo->wctrlFlags & WHERE_OR_SUBCLAUSE)==0
4751     ){
4752       int ws = pLoop->wsFlags;
4753       if( pWInfo->eOnePass==ONEPASS_OFF && (ws & WHERE_IDX_ONLY)==0 ){
4754         sqlite3VdbeAddOp1(v, OP_Close, pTabItem->iCursor);
4755       }
4756       if( (ws & WHERE_INDEXED)!=0
4757        && (ws & (WHERE_IPK|WHERE_AUTO_INDEX))==0
4758        && pLevel->iIdxCur!=pWInfo->aiCurOnePass[1]
4759       ){
4760         sqlite3VdbeAddOp1(v, OP_Close, pLevel->iIdxCur);
4761       }
4762     }
4763 
4764     /* If this scan uses an index, make VDBE code substitutions to read data
4765     ** from the index instead of from the table where possible.  In some cases
4766     ** this optimization prevents the table from ever being read, which can
4767     ** yield a significant performance boost.
4768     **
4769     ** Calls to the code generator in between sqlite3WhereBegin and
4770     ** sqlite3WhereEnd will have created code that references the table
4771     ** directly.  This loop scans all that code looking for opcodes
4772     ** that reference the table and converts them into opcodes that
4773     ** reference the index.
4774     */
4775     if( pLoop->wsFlags & (WHERE_INDEXED|WHERE_IDX_ONLY) ){
4776       pIdx = pLoop->u.btree.pIndex;
4777     }else if( pLoop->wsFlags & WHERE_MULTI_OR ){
4778       pIdx = pLevel->u.pCovidx;
4779     }
4780     if( pIdx
4781      && (pWInfo->eOnePass==ONEPASS_OFF || !HasRowid(pIdx->pTable))
4782      && !db->mallocFailed
4783     ){
4784       last = sqlite3VdbeCurrentAddr(v);
4785       k = pLevel->addrBody;
4786       pOp = sqlite3VdbeGetOp(v, k);
4787       for(; k<last; k++, pOp++){
4788         if( pOp->p1!=pLevel->iTabCur ) continue;
4789         if( pOp->opcode==OP_Column ){
4790           int x = pOp->p2;
4791           assert( pIdx->pTable==pTab );
4792           if( !HasRowid(pTab) ){
4793             Index *pPk = sqlite3PrimaryKeyIndex(pTab);
4794             x = pPk->aiColumn[x];
4795             assert( x>=0 );
4796           }
4797           x = sqlite3ColumnOfIndex(pIdx, x);
4798           if( x>=0 ){
4799             pOp->p2 = x;
4800             pOp->p1 = pLevel->iIdxCur;
4801           }
4802           assert( (pLoop->wsFlags & WHERE_IDX_ONLY)==0 || x>=0 );
4803         }else if( pOp->opcode==OP_Rowid ){
4804           pOp->p1 = pLevel->iIdxCur;
4805           pOp->opcode = OP_IdxRowid;
4806         }
4807       }
4808     }
4809   }
4810 
4811   /* Final cleanup
4812   */
4813   pParse->nQueryLoop = pWInfo->savedNQueryLoop;
4814   whereInfoFree(db, pWInfo);
4815   return;
4816 }
4817