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drh6f82e852015-06-06 20:12:09 +00001/*
2** 2015-06-06
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.
14**
15** This file was split off from where.c on 2015-06-06 in order to reduce the
16** size of where.c and make it easier to edit. This file contains the routines
17** that actually generate the bulk of the WHERE loop code. The original where.c
18** file retains the code that does query planning and analysis.
19*/
20#include "sqliteInt.h"
21#include "whereInt.h"
22
23#ifndef SQLITE_OMIT_EXPLAIN
dan1d9bc9b2016-08-08 18:42:08 +000024
25/*
26** Return the name of the i-th column of the pIdx index.
27*/
28static const char *explainIndexColumnName(Index *pIdx, int i){
29 i = pIdx->aiColumn[i];
30 if( i==XN_EXPR ) return "<expr>";
31 if( i==XN_ROWID ) return "rowid";
32 return pIdx->pTable->aCol[i].zName;
33}
34
drh6f82e852015-06-06 20:12:09 +000035/*
36** This routine is a helper for explainIndexRange() below
37**
38** pStr holds the text of an expression that we are building up one term
39** at a time. This routine adds a new term to the end of the expression.
40** Terms are separated by AND so add the "AND" text for second and subsequent
41** terms only.
42*/
43static void explainAppendTerm(
44 StrAccum *pStr, /* The text expression being built */
dan1d9bc9b2016-08-08 18:42:08 +000045 Index *pIdx, /* Index to read column names from */
46 int nTerm, /* Number of terms */
47 int iTerm, /* Zero-based index of first term. */
48 int bAnd, /* Non-zero to append " AND " */
drh6f82e852015-06-06 20:12:09 +000049 const char *zOp /* Name of the operator */
50){
dan1d9bc9b2016-08-08 18:42:08 +000051 int i;
drh6f82e852015-06-06 20:12:09 +000052
dan1d9bc9b2016-08-08 18:42:08 +000053 assert( nTerm>=1 );
drh0cdbe1a2018-05-09 13:46:26 +000054 if( bAnd ) sqlite3_str_append(pStr, " AND ", 5);
dan1d9bc9b2016-08-08 18:42:08 +000055
drh0cdbe1a2018-05-09 13:46:26 +000056 if( nTerm>1 ) sqlite3_str_append(pStr, "(", 1);
dan1d9bc9b2016-08-08 18:42:08 +000057 for(i=0; i<nTerm; i++){
drh0cdbe1a2018-05-09 13:46:26 +000058 if( i ) sqlite3_str_append(pStr, ",", 1);
59 sqlite3_str_appendall(pStr, explainIndexColumnName(pIdx, iTerm+i));
dan1d9bc9b2016-08-08 18:42:08 +000060 }
drh0cdbe1a2018-05-09 13:46:26 +000061 if( nTerm>1 ) sqlite3_str_append(pStr, ")", 1);
dan1d9bc9b2016-08-08 18:42:08 +000062
drh0cdbe1a2018-05-09 13:46:26 +000063 sqlite3_str_append(pStr, zOp, 1);
dan1d9bc9b2016-08-08 18:42:08 +000064
drh0cdbe1a2018-05-09 13:46:26 +000065 if( nTerm>1 ) sqlite3_str_append(pStr, "(", 1);
dan1d9bc9b2016-08-08 18:42:08 +000066 for(i=0; i<nTerm; i++){
drh0cdbe1a2018-05-09 13:46:26 +000067 if( i ) sqlite3_str_append(pStr, ",", 1);
68 sqlite3_str_append(pStr, "?", 1);
dan1d9bc9b2016-08-08 18:42:08 +000069 }
drh0cdbe1a2018-05-09 13:46:26 +000070 if( nTerm>1 ) sqlite3_str_append(pStr, ")", 1);
drhc7c46802015-08-27 20:33:38 +000071}
72
73/*
drh6f82e852015-06-06 20:12:09 +000074** Argument pLevel describes a strategy for scanning table pTab. This
75** function appends text to pStr that describes the subset of table
76** rows scanned by the strategy in the form of an SQL expression.
77**
78** For example, if the query:
79**
80** SELECT * FROM t1 WHERE a=1 AND b>2;
81**
82** is run and there is an index on (a, b), then this function returns a
83** string similar to:
84**
85** "a=? AND b>?"
86*/
drh8faee872015-09-19 18:08:13 +000087static void explainIndexRange(StrAccum *pStr, WhereLoop *pLoop){
drh6f82e852015-06-06 20:12:09 +000088 Index *pIndex = pLoop->u.btree.pIndex;
89 u16 nEq = pLoop->u.btree.nEq;
90 u16 nSkip = pLoop->nSkip;
91 int i, j;
drh6f82e852015-06-06 20:12:09 +000092
93 if( nEq==0 && (pLoop->wsFlags&(WHERE_BTM_LIMIT|WHERE_TOP_LIMIT))==0 ) return;
drh0cdbe1a2018-05-09 13:46:26 +000094 sqlite3_str_append(pStr, " (", 2);
drh6f82e852015-06-06 20:12:09 +000095 for(i=0; i<nEq; i++){
drhc7c46802015-08-27 20:33:38 +000096 const char *z = explainIndexColumnName(pIndex, i);
drh0cdbe1a2018-05-09 13:46:26 +000097 if( i ) sqlite3_str_append(pStr, " AND ", 5);
98 sqlite3_str_appendf(pStr, i>=nSkip ? "%s=?" : "ANY(%s)", z);
drh6f82e852015-06-06 20:12:09 +000099 }
100
101 j = i;
102 if( pLoop->wsFlags&WHERE_BTM_LIMIT ){
dan1d9bc9b2016-08-08 18:42:08 +0000103 explainAppendTerm(pStr, pIndex, pLoop->u.btree.nBtm, j, i, ">");
104 i = 1;
drh6f82e852015-06-06 20:12:09 +0000105 }
106 if( pLoop->wsFlags&WHERE_TOP_LIMIT ){
dan1d9bc9b2016-08-08 18:42:08 +0000107 explainAppendTerm(pStr, pIndex, pLoop->u.btree.nTop, j, i, "<");
drh6f82e852015-06-06 20:12:09 +0000108 }
drh0cdbe1a2018-05-09 13:46:26 +0000109 sqlite3_str_append(pStr, ")", 1);
drh6f82e852015-06-06 20:12:09 +0000110}
111
112/*
113** This function is a no-op unless currently processing an EXPLAIN QUERY PLAN
114** command, or if either SQLITE_DEBUG or SQLITE_ENABLE_STMT_SCANSTATUS was
115** defined at compile-time. If it is not a no-op, a single OP_Explain opcode
116** is added to the output to describe the table scan strategy in pLevel.
117**
118** If an OP_Explain opcode is added to the VM, its address is returned.
119** Otherwise, if no OP_Explain is coded, zero is returned.
120*/
121int sqlite3WhereExplainOneScan(
122 Parse *pParse, /* Parse context */
123 SrcList *pTabList, /* Table list this loop refers to */
124 WhereLevel *pLevel, /* Scan to write OP_Explain opcode for */
drh6f82e852015-06-06 20:12:09 +0000125 u16 wctrlFlags /* Flags passed to sqlite3WhereBegin() */
126){
127 int ret = 0;
128#if !defined(SQLITE_DEBUG) && !defined(SQLITE_ENABLE_STMT_SCANSTATUS)
drhef7231b2017-12-21 21:41:13 +0000129 if( sqlite3ParseToplevel(pParse)->explain==2 )
drh6f82e852015-06-06 20:12:09 +0000130#endif
131 {
132 struct SrcList_item *pItem = &pTabList->a[pLevel->iFrom];
133 Vdbe *v = pParse->pVdbe; /* VM being constructed */
134 sqlite3 *db = pParse->db; /* Database handle */
drh6f82e852015-06-06 20:12:09 +0000135 int isSearch; /* True for a SEARCH. False for SCAN. */
136 WhereLoop *pLoop; /* The controlling WhereLoop object */
137 u32 flags; /* Flags that describe this loop */
138 char *zMsg; /* Text to add to EQP output */
139 StrAccum str; /* EQP output string */
140 char zBuf[100]; /* Initial space for EQP output string */
141
142 pLoop = pLevel->pWLoop;
143 flags = pLoop->wsFlags;
drhce943bc2016-05-19 18:56:33 +0000144 if( (flags&WHERE_MULTI_OR) || (wctrlFlags&WHERE_OR_SUBCLAUSE) ) return 0;
drh6f82e852015-06-06 20:12:09 +0000145
146 isSearch = (flags&(WHERE_BTM_LIMIT|WHERE_TOP_LIMIT))!=0
147 || ((flags&WHERE_VIRTUALTABLE)==0 && (pLoop->u.btree.nEq>0))
148 || (wctrlFlags&(WHERE_ORDERBY_MIN|WHERE_ORDERBY_MAX));
149
150 sqlite3StrAccumInit(&str, db, zBuf, sizeof(zBuf), SQLITE_MAX_LENGTH);
drh0cdbe1a2018-05-09 13:46:26 +0000151 sqlite3_str_appendall(&str, isSearch ? "SEARCH" : "SCAN");
drh6f82e852015-06-06 20:12:09 +0000152 if( pItem->pSelect ){
drh0cdbe1a2018-05-09 13:46:26 +0000153 sqlite3_str_appendf(&str, " SUBQUERY 0x%p", pItem->pSelect);
drh6f82e852015-06-06 20:12:09 +0000154 }else{
drh0cdbe1a2018-05-09 13:46:26 +0000155 sqlite3_str_appendf(&str, " TABLE %s", pItem->zName);
drh6f82e852015-06-06 20:12:09 +0000156 }
157
158 if( pItem->zAlias ){
drh0cdbe1a2018-05-09 13:46:26 +0000159 sqlite3_str_appendf(&str, " AS %s", pItem->zAlias);
drh6f82e852015-06-06 20:12:09 +0000160 }
161 if( (flags & (WHERE_IPK|WHERE_VIRTUALTABLE))==0 ){
162 const char *zFmt = 0;
163 Index *pIdx;
164
165 assert( pLoop->u.btree.pIndex!=0 );
166 pIdx = pLoop->u.btree.pIndex;
167 assert( !(flags&WHERE_AUTO_INDEX) || (flags&WHERE_IDX_ONLY) );
168 if( !HasRowid(pItem->pTab) && IsPrimaryKeyIndex(pIdx) ){
169 if( isSearch ){
170 zFmt = "PRIMARY KEY";
171 }
172 }else if( flags & WHERE_PARTIALIDX ){
173 zFmt = "AUTOMATIC PARTIAL COVERING INDEX";
174 }else if( flags & WHERE_AUTO_INDEX ){
175 zFmt = "AUTOMATIC COVERING INDEX";
176 }else if( flags & WHERE_IDX_ONLY ){
177 zFmt = "COVERING INDEX %s";
178 }else{
179 zFmt = "INDEX %s";
180 }
181 if( zFmt ){
drh0cdbe1a2018-05-09 13:46:26 +0000182 sqlite3_str_append(&str, " USING ", 7);
183 sqlite3_str_appendf(&str, zFmt, pIdx->zName);
drh8faee872015-09-19 18:08:13 +0000184 explainIndexRange(&str, pLoop);
drh6f82e852015-06-06 20:12:09 +0000185 }
186 }else if( (flags & WHERE_IPK)!=0 && (flags & WHERE_CONSTRAINT)!=0 ){
drhd37bea52015-09-02 15:37:50 +0000187 const char *zRangeOp;
drh6f82e852015-06-06 20:12:09 +0000188 if( flags&(WHERE_COLUMN_EQ|WHERE_COLUMN_IN) ){
drhd37bea52015-09-02 15:37:50 +0000189 zRangeOp = "=";
drh6f82e852015-06-06 20:12:09 +0000190 }else if( (flags&WHERE_BOTH_LIMIT)==WHERE_BOTH_LIMIT ){
drhd37bea52015-09-02 15:37:50 +0000191 zRangeOp = ">? AND rowid<";
drh6f82e852015-06-06 20:12:09 +0000192 }else if( flags&WHERE_BTM_LIMIT ){
drhd37bea52015-09-02 15:37:50 +0000193 zRangeOp = ">";
drh6f82e852015-06-06 20:12:09 +0000194 }else{
195 assert( flags&WHERE_TOP_LIMIT);
drhd37bea52015-09-02 15:37:50 +0000196 zRangeOp = "<";
drh6f82e852015-06-06 20:12:09 +0000197 }
drh0cdbe1a2018-05-09 13:46:26 +0000198 sqlite3_str_appendf(&str,
199 " USING INTEGER PRIMARY KEY (rowid%s?)",zRangeOp);
drh6f82e852015-06-06 20:12:09 +0000200 }
201#ifndef SQLITE_OMIT_VIRTUALTABLE
202 else if( (flags & WHERE_VIRTUALTABLE)!=0 ){
drh0cdbe1a2018-05-09 13:46:26 +0000203 sqlite3_str_appendf(&str, " VIRTUAL TABLE INDEX %d:%s",
drh6f82e852015-06-06 20:12:09 +0000204 pLoop->u.vtab.idxNum, pLoop->u.vtab.idxStr);
205 }
206#endif
207#ifdef SQLITE_EXPLAIN_ESTIMATED_ROWS
208 if( pLoop->nOut>=10 ){
drh0cdbe1a2018-05-09 13:46:26 +0000209 sqlite3_str_appendf(&str, " (~%llu rows)",
210 sqlite3LogEstToInt(pLoop->nOut));
drh6f82e852015-06-06 20:12:09 +0000211 }else{
drh0cdbe1a2018-05-09 13:46:26 +0000212 sqlite3_str_append(&str, " (~1 row)", 9);
drh6f82e852015-06-06 20:12:09 +0000213 }
214#endif
215 zMsg = sqlite3StrAccumFinish(&str);
drhe2ca99c2018-05-02 00:33:43 +0000216 ret = sqlite3VdbeAddOp4(v, OP_Explain, sqlite3VdbeCurrentAddr(v),
217 pParse->addrExplain, 0, zMsg,P4_DYNAMIC);
drh6f82e852015-06-06 20:12:09 +0000218 }
219 return ret;
220}
221#endif /* SQLITE_OMIT_EXPLAIN */
222
223#ifdef SQLITE_ENABLE_STMT_SCANSTATUS
224/*
225** Configure the VM passed as the first argument with an
226** sqlite3_stmt_scanstatus() entry corresponding to the scan used to
227** implement level pLvl. Argument pSrclist is a pointer to the FROM
228** clause that the scan reads data from.
229**
230** If argument addrExplain is not 0, it must be the address of an
231** OP_Explain instruction that describes the same loop.
232*/
233void sqlite3WhereAddScanStatus(
234 Vdbe *v, /* Vdbe to add scanstatus entry to */
235 SrcList *pSrclist, /* FROM clause pLvl reads data from */
236 WhereLevel *pLvl, /* Level to add scanstatus() entry for */
237 int addrExplain /* Address of OP_Explain (or 0) */
238){
239 const char *zObj = 0;
240 WhereLoop *pLoop = pLvl->pWLoop;
241 if( (pLoop->wsFlags & WHERE_VIRTUALTABLE)==0 && pLoop->u.btree.pIndex!=0 ){
242 zObj = pLoop->u.btree.pIndex->zName;
243 }else{
244 zObj = pSrclist->a[pLvl->iFrom].zName;
245 }
246 sqlite3VdbeScanStatus(
247 v, addrExplain, pLvl->addrBody, pLvl->addrVisit, pLoop->nOut, zObj
248 );
249}
250#endif
251
252
253/*
254** Disable a term in the WHERE clause. Except, do not disable the term
255** if it controls a LEFT OUTER JOIN and it did not originate in the ON
256** or USING clause of that join.
257**
258** Consider the term t2.z='ok' in the following queries:
259**
260** (1) SELECT * FROM t1 LEFT JOIN t2 ON t1.a=t2.x WHERE t2.z='ok'
261** (2) SELECT * FROM t1 LEFT JOIN t2 ON t1.a=t2.x AND t2.z='ok'
262** (3) SELECT * FROM t1, t2 WHERE t1.a=t2.x AND t2.z='ok'
263**
264** The t2.z='ok' is disabled in the in (2) because it originates
265** in the ON clause. The term is disabled in (3) because it is not part
266** of a LEFT OUTER JOIN. In (1), the term is not disabled.
267**
268** Disabling a term causes that term to not be tested in the inner loop
269** of the join. Disabling is an optimization. When terms are satisfied
270** by indices, we disable them to prevent redundant tests in the inner
271** loop. We would get the correct results if nothing were ever disabled,
272** but joins might run a little slower. The trick is to disable as much
273** as we can without disabling too much. If we disabled in (1), we'd get
274** the wrong answer. See ticket #813.
275**
276** If all the children of a term are disabled, then that term is also
277** automatically disabled. In this way, terms get disabled if derived
278** virtual terms are tested first. For example:
279**
280** x GLOB 'abc*' AND x>='abc' AND x<'acd'
281** \___________/ \______/ \_____/
282** parent child1 child2
283**
284** Only the parent term was in the original WHERE clause. The child1
285** and child2 terms were added by the LIKE optimization. If both of
286** the virtual child terms are valid, then testing of the parent can be
287** skipped.
288**
289** Usually the parent term is marked as TERM_CODED. But if the parent
290** term was originally TERM_LIKE, then the parent gets TERM_LIKECOND instead.
291** The TERM_LIKECOND marking indicates that the term should be coded inside
292** a conditional such that is only evaluated on the second pass of a
293** LIKE-optimization loop, when scanning BLOBs instead of strings.
294*/
295static void disableTerm(WhereLevel *pLevel, WhereTerm *pTerm){
296 int nLoop = 0;
drh9d9c41e2017-10-31 03:40:15 +0000297 assert( pTerm!=0 );
298 while( (pTerm->wtFlags & TERM_CODED)==0
drh6f82e852015-06-06 20:12:09 +0000299 && (pLevel->iLeftJoin==0 || ExprHasProperty(pTerm->pExpr, EP_FromJoin))
300 && (pLevel->notReady & pTerm->prereqAll)==0
301 ){
302 if( nLoop && (pTerm->wtFlags & TERM_LIKE)!=0 ){
303 pTerm->wtFlags |= TERM_LIKECOND;
304 }else{
305 pTerm->wtFlags |= TERM_CODED;
306 }
307 if( pTerm->iParent<0 ) break;
308 pTerm = &pTerm->pWC->a[pTerm->iParent];
drh9d9c41e2017-10-31 03:40:15 +0000309 assert( pTerm!=0 );
drh6f82e852015-06-06 20:12:09 +0000310 pTerm->nChild--;
311 if( pTerm->nChild!=0 ) break;
312 nLoop++;
313 }
314}
315
316/*
317** Code an OP_Affinity opcode to apply the column affinity string zAff
318** to the n registers starting at base.
319**
320** As an optimization, SQLITE_AFF_BLOB entries (which are no-ops) at the
321** beginning and end of zAff are ignored. If all entries in zAff are
322** SQLITE_AFF_BLOB, then no code gets generated.
323**
324** This routine makes its own copy of zAff so that the caller is free
325** to modify zAff after this routine returns.
326*/
327static void codeApplyAffinity(Parse *pParse, int base, int n, char *zAff){
328 Vdbe *v = pParse->pVdbe;
329 if( zAff==0 ){
330 assert( pParse->db->mallocFailed );
331 return;
332 }
333 assert( v!=0 );
334
335 /* Adjust base and n to skip over SQLITE_AFF_BLOB entries at the beginning
336 ** and end of the affinity string.
337 */
338 while( n>0 && zAff[0]==SQLITE_AFF_BLOB ){
339 n--;
340 base++;
341 zAff++;
342 }
343 while( n>1 && zAff[n-1]==SQLITE_AFF_BLOB ){
344 n--;
345 }
346
347 /* Code the OP_Affinity opcode if there is anything left to do. */
348 if( n>0 ){
drh9b34abe2016-01-16 15:12:35 +0000349 sqlite3VdbeAddOp4(v, OP_Affinity, base, n, 0, zAff, n);
drh6f82e852015-06-06 20:12:09 +0000350 sqlite3ExprCacheAffinityChange(pParse, base, n);
351 }
352}
353
danb7ca2172016-08-26 17:54:46 +0000354/*
355** Expression pRight, which is the RHS of a comparison operation, is
356** either a vector of n elements or, if n==1, a scalar expression.
357** Before the comparison operation, affinity zAff is to be applied
358** to the pRight values. This function modifies characters within the
359** affinity string to SQLITE_AFF_BLOB if either:
360**
361** * the comparison will be performed with no affinity, or
362** * the affinity change in zAff is guaranteed not to change the value.
363*/
364static void updateRangeAffinityStr(
danb7ca2172016-08-26 17:54:46 +0000365 Expr *pRight, /* RHS of comparison */
366 int n, /* Number of vector elements in comparison */
367 char *zAff /* Affinity string to modify */
368){
369 int i;
370 for(i=0; i<n; i++){
371 Expr *p = sqlite3VectorFieldSubexpr(pRight, i);
372 if( sqlite3CompareAffinity(p, zAff[i])==SQLITE_AFF_BLOB
373 || sqlite3ExprNeedsNoAffinityChange(p, zAff[i])
374 ){
375 zAff[i] = SQLITE_AFF_BLOB;
376 }
377 }
378}
drh6f82e852015-06-06 20:12:09 +0000379
drh24102432017-11-17 21:01:04 +0000380
381/*
382** pX is an expression of the form: (vector) IN (SELECT ...)
383** In other words, it is a vector IN operator with a SELECT clause on the
384** LHS. But not all terms in the vector are indexable and the terms might
385** not be in the correct order for indexing.
drh9b1ecb62017-11-17 17:32:40 +0000386**
drh24102432017-11-17 21:01:04 +0000387** This routine makes a copy of the input pX expression and then adjusts
388** the vector on the LHS with corresponding changes to the SELECT so that
389** the vector contains only index terms and those terms are in the correct
390** order. The modified IN expression is returned. The caller is responsible
391** for deleting the returned expression.
392**
393** Example:
394**
395** CREATE TABLE t1(a,b,c,d,e,f);
396** CREATE INDEX t1x1 ON t1(e,c);
397** SELECT * FROM t1 WHERE (a,b,c,d,e) IN (SELECT v,w,x,y,z FROM t2)
398** \_______________________________________/
399** The pX expression
400**
401** Since only columns e and c can be used with the index, in that order,
402** the modified IN expression that is returned will be:
403**
404** (e,c) IN (SELECT z,x FROM t2)
405**
406** The reduced pX is different from the original (obviously) and thus is
407** only used for indexing, to improve performance. The original unaltered
408** IN expression must also be run on each output row for correctness.
drh9b1ecb62017-11-17 17:32:40 +0000409*/
drh24102432017-11-17 21:01:04 +0000410static Expr *removeUnindexableInClauseTerms(
411 Parse *pParse, /* The parsing context */
412 int iEq, /* Look at loop terms starting here */
413 WhereLoop *pLoop, /* The current loop */
414 Expr *pX /* The IN expression to be reduced */
415){
416 sqlite3 *db = pParse->db;
417 Expr *pNew = sqlite3ExprDup(db, pX, 0);
418 if( db->mallocFailed==0 ){
419 ExprList *pOrigRhs = pNew->x.pSelect->pEList; /* Original unmodified RHS */
420 ExprList *pOrigLhs = pNew->pLeft->x.pList; /* Original unmodified LHS */
421 ExprList *pRhs = 0; /* New RHS after modifications */
422 ExprList *pLhs = 0; /* New LHS after mods */
423 int i; /* Loop counter */
424 Select *pSelect; /* Pointer to the SELECT on the RHS */
425
426 for(i=iEq; i<pLoop->nLTerm; i++){
427 if( pLoop->aLTerm[i]->pExpr==pX ){
428 int iField = pLoop->aLTerm[i]->iField - 1;
429 assert( pOrigRhs->a[iField].pExpr!=0 );
430 pRhs = sqlite3ExprListAppend(pParse, pRhs, pOrigRhs->a[iField].pExpr);
431 pOrigRhs->a[iField].pExpr = 0;
432 assert( pOrigLhs->a[iField].pExpr!=0 );
433 pLhs = sqlite3ExprListAppend(pParse, pLhs, pOrigLhs->a[iField].pExpr);
434 pOrigLhs->a[iField].pExpr = 0;
435 }
drh9b1ecb62017-11-17 17:32:40 +0000436 }
drh24102432017-11-17 21:01:04 +0000437 sqlite3ExprListDelete(db, pOrigRhs);
438 sqlite3ExprListDelete(db, pOrigLhs);
439 pNew->pLeft->x.pList = pLhs;
440 pNew->x.pSelect->pEList = pRhs;
441 if( pLhs && pLhs->nExpr==1 ){
442 /* Take care here not to generate a TK_VECTOR containing only a
443 ** single value. Since the parser never creates such a vector, some
444 ** of the subroutines do not handle this case. */
445 Expr *p = pLhs->a[0].pExpr;
446 pLhs->a[0].pExpr = 0;
447 sqlite3ExprDelete(db, pNew->pLeft);
448 pNew->pLeft = p;
449 }
450 pSelect = pNew->x.pSelect;
451 if( pSelect->pOrderBy ){
452 /* If the SELECT statement has an ORDER BY clause, zero the
453 ** iOrderByCol variables. These are set to non-zero when an
454 ** ORDER BY term exactly matches one of the terms of the
455 ** result-set. Since the result-set of the SELECT statement may
456 ** have been modified or reordered, these variables are no longer
457 ** set correctly. Since setting them is just an optimization,
458 ** it's easiest just to zero them here. */
459 ExprList *pOrderBy = pSelect->pOrderBy;
460 for(i=0; i<pOrderBy->nExpr; i++){
461 pOrderBy->a[i].u.x.iOrderByCol = 0;
462 }
463 }
464
465#if 0
466 printf("For indexing, change the IN expr:\n");
467 sqlite3TreeViewExpr(0, pX, 0);
468 printf("Into:\n");
469 sqlite3TreeViewExpr(0, pNew, 0);
470#endif
drh9b1ecb62017-11-17 17:32:40 +0000471 }
drh24102432017-11-17 21:01:04 +0000472 return pNew;
drh9b1ecb62017-11-17 17:32:40 +0000473}
drh9b1ecb62017-11-17 17:32:40 +0000474
475
drh6f82e852015-06-06 20:12:09 +0000476/*
477** Generate code for a single equality term of the WHERE clause. An equality
478** term can be either X=expr or X IN (...). pTerm is the term to be
479** coded.
480**
drh099a0f52016-09-06 15:25:53 +0000481** The current value for the constraint is left in a register, the index
482** of which is returned. An attempt is made store the result in iTarget but
483** this is only guaranteed for TK_ISNULL and TK_IN constraints. If the
484** constraint is a TK_EQ or TK_IS, then the current value might be left in
485** some other register and it is the caller's responsibility to compensate.
drh6f82e852015-06-06 20:12:09 +0000486**
drh4602b8e2016-08-19 18:28:00 +0000487** For a constraint of the form X=expr, the expression is evaluated in
488** straight-line code. For constraints of the form X IN (...)
drh6f82e852015-06-06 20:12:09 +0000489** this routine sets up a loop that will iterate over all values of X.
490*/
491static int codeEqualityTerm(
492 Parse *pParse, /* The parsing context */
493 WhereTerm *pTerm, /* The term of the WHERE clause to be coded */
494 WhereLevel *pLevel, /* The level of the FROM clause we are working on */
495 int iEq, /* Index of the equality term within this level */
496 int bRev, /* True for reverse-order IN operations */
497 int iTarget /* Attempt to leave results in this register */
498){
499 Expr *pX = pTerm->pExpr;
500 Vdbe *v = pParse->pVdbe;
501 int iReg; /* Register holding results */
502
dan8da209b2016-07-26 18:06:08 +0000503 assert( pLevel->pWLoop->aLTerm[iEq]==pTerm );
drh6f82e852015-06-06 20:12:09 +0000504 assert( iTarget>0 );
505 if( pX->op==TK_EQ || pX->op==TK_IS ){
drhfc7f27b2016-08-20 00:07:01 +0000506 iReg = sqlite3ExprCodeTarget(pParse, pX->pRight, iTarget);
drh6f82e852015-06-06 20:12:09 +0000507 }else if( pX->op==TK_ISNULL ){
508 iReg = iTarget;
509 sqlite3VdbeAddOp2(v, OP_Null, 0, iReg);
510#ifndef SQLITE_OMIT_SUBQUERY
511 }else{
drhac6b47d2016-08-24 00:51:48 +0000512 int eType = IN_INDEX_NOOP;
drh6f82e852015-06-06 20:12:09 +0000513 int iTab;
514 struct InLoop *pIn;
515 WhereLoop *pLoop = pLevel->pWLoop;
dan8da209b2016-07-26 18:06:08 +0000516 int i;
517 int nEq = 0;
518 int *aiMap = 0;
drh6f82e852015-06-06 20:12:09 +0000519
520 if( (pLoop->wsFlags & WHERE_VIRTUALTABLE)==0
521 && pLoop->u.btree.pIndex!=0
522 && pLoop->u.btree.pIndex->aSortOrder[iEq]
523 ){
524 testcase( iEq==0 );
525 testcase( bRev );
526 bRev = !bRev;
527 }
528 assert( pX->op==TK_IN );
529 iReg = iTarget;
dan8da209b2016-07-26 18:06:08 +0000530
531 for(i=0; i<iEq; i++){
532 if( pLoop->aLTerm[i] && pLoop->aLTerm[i]->pExpr==pX ){
533 disableTerm(pLevel, pTerm);
534 return iTarget;
535 }
536 }
537 for(i=iEq;i<pLoop->nLTerm; i++){
drh24102432017-11-17 21:01:04 +0000538 assert( pLoop->aLTerm[i]!=0 );
539 if( pLoop->aLTerm[i]->pExpr==pX ) nEq++;
dan8da209b2016-07-26 18:06:08 +0000540 }
541
dan8da209b2016-07-26 18:06:08 +0000542 if( (pX->flags & EP_xIsSelect)==0 || pX->x.pSelect->pEList->nExpr==1 ){
543 eType = sqlite3FindInIndex(pParse, pX, IN_INDEX_LOOP, 0, 0);
544 }else{
545 sqlite3 *db = pParse->db;
drh24102432017-11-17 21:01:04 +0000546 pX = removeUnindexableInClauseTerms(pParse, iEq, pLoop, pX);
drh9b1ecb62017-11-17 17:32:40 +0000547
drhac6b47d2016-08-24 00:51:48 +0000548 if( !db->mallocFailed ){
drh24102432017-11-17 21:01:04 +0000549 aiMap = (int*)sqlite3DbMallocZero(pParse->db, sizeof(int)*nEq);
drhac6b47d2016-08-24 00:51:48 +0000550 eType = sqlite3FindInIndex(pParse, pX, IN_INDEX_LOOP, 0, aiMap);
drh24102432017-11-17 21:01:04 +0000551 pTerm->pExpr->iTable = pX->iTable;
drhac6b47d2016-08-24 00:51:48 +0000552 }
drh24102432017-11-17 21:01:04 +0000553 sqlite3ExprDelete(db, pX);
554 pX = pTerm->pExpr;
dan8da209b2016-07-26 18:06:08 +0000555 }
556
drh6f82e852015-06-06 20:12:09 +0000557 if( eType==IN_INDEX_INDEX_DESC ){
558 testcase( bRev );
559 bRev = !bRev;
560 }
561 iTab = pX->iTable;
562 sqlite3VdbeAddOp2(v, bRev ? OP_Last : OP_Rewind, iTab, 0);
563 VdbeCoverageIf(v, bRev);
564 VdbeCoverageIf(v, !bRev);
565 assert( (pLoop->wsFlags & WHERE_MULTI_OR)==0 );
dan8da209b2016-07-26 18:06:08 +0000566
drh6f82e852015-06-06 20:12:09 +0000567 pLoop->wsFlags |= WHERE_IN_ABLE;
568 if( pLevel->u.in.nIn==0 ){
569 pLevel->addrNxt = sqlite3VdbeMakeLabel(v);
570 }
dan8da209b2016-07-26 18:06:08 +0000571
572 i = pLevel->u.in.nIn;
573 pLevel->u.in.nIn += nEq;
drh6f82e852015-06-06 20:12:09 +0000574 pLevel->u.in.aInLoop =
575 sqlite3DbReallocOrFree(pParse->db, pLevel->u.in.aInLoop,
576 sizeof(pLevel->u.in.aInLoop[0])*pLevel->u.in.nIn);
577 pIn = pLevel->u.in.aInLoop;
578 if( pIn ){
dan8da209b2016-07-26 18:06:08 +0000579 int iMap = 0; /* Index in aiMap[] */
580 pIn += i;
dan7887d7f2016-08-24 12:22:17 +0000581 for(i=iEq;i<pLoop->nLTerm; i++){
dan8da209b2016-07-26 18:06:08 +0000582 if( pLoop->aLTerm[i]->pExpr==pX ){
danedc35372016-09-16 16:30:57 +0000583 int iOut = iReg + i - iEq;
dan8da209b2016-07-26 18:06:08 +0000584 if( eType==IN_INDEX_ROWID ){
drh72d50032016-09-16 15:42:17 +0000585 testcase( nEq>1 ); /* Happens with a UNIQUE index on ROWID */
danedc35372016-09-16 16:30:57 +0000586 pIn->addrInTop = sqlite3VdbeAddOp2(v, OP_Rowid, iTab, iOut);
dan8da209b2016-07-26 18:06:08 +0000587 }else{
588 int iCol = aiMap ? aiMap[iMap++] : 0;
dan8da209b2016-07-26 18:06:08 +0000589 pIn->addrInTop = sqlite3VdbeAddOp3(v,OP_Column,iTab, iCol, iOut);
590 }
drh03181c82016-08-18 19:04:57 +0000591 sqlite3VdbeAddOp1(v, OP_IsNull, iOut); VdbeCoverage(v);
dan8da209b2016-07-26 18:06:08 +0000592 if( i==iEq ){
593 pIn->iCur = iTab;
594 pIn->eEndLoopOp = bRev ? OP_PrevIfOpen : OP_NextIfOpen;
595 }else{
596 pIn->eEndLoopOp = OP_Noop;
597 }
dan7887d7f2016-08-24 12:22:17 +0000598 pIn++;
dan8da209b2016-07-26 18:06:08 +0000599 }
drh6f82e852015-06-06 20:12:09 +0000600 }
drh6f82e852015-06-06 20:12:09 +0000601 }else{
602 pLevel->u.in.nIn = 0;
603 }
dan8da209b2016-07-26 18:06:08 +0000604 sqlite3DbFree(pParse->db, aiMap);
drh6f82e852015-06-06 20:12:09 +0000605#endif
606 }
607 disableTerm(pLevel, pTerm);
608 return iReg;
609}
610
611/*
612** Generate code that will evaluate all == and IN constraints for an
613** index scan.
614**
615** For example, consider table t1(a,b,c,d,e,f) with index i1(a,b,c).
616** Suppose the WHERE clause is this: a==5 AND b IN (1,2,3) AND c>5 AND c<10
617** The index has as many as three equality constraints, but in this
618** example, the third "c" value is an inequality. So only two
619** constraints are coded. This routine will generate code to evaluate
620** a==5 and b IN (1,2,3). The current values for a and b will be stored
621** in consecutive registers and the index of the first register is returned.
622**
623** In the example above nEq==2. But this subroutine works for any value
624** of nEq including 0. If nEq==0, this routine is nearly a no-op.
625** The only thing it does is allocate the pLevel->iMem memory cell and
626** compute the affinity string.
627**
628** The nExtraReg parameter is 0 or 1. It is 0 if all WHERE clause constraints
629** are == or IN and are covered by the nEq. nExtraReg is 1 if there is
630** an inequality constraint (such as the "c>=5 AND c<10" in the example) that
631** occurs after the nEq quality constraints.
632**
633** This routine allocates a range of nEq+nExtraReg memory cells and returns
634** the index of the first memory cell in that range. The code that
635** calls this routine will use that memory range to store keys for
636** start and termination conditions of the loop.
637** key value of the loop. If one or more IN operators appear, then
638** this routine allocates an additional nEq memory cells for internal
639** use.
640**
641** Before returning, *pzAff is set to point to a buffer containing a
642** copy of the column affinity string of the index allocated using
643** sqlite3DbMalloc(). Except, entries in the copy of the string associated
644** with equality constraints that use BLOB or NONE affinity are set to
645** SQLITE_AFF_BLOB. This is to deal with SQL such as the following:
646**
647** CREATE TABLE t1(a TEXT PRIMARY KEY, b);
648** SELECT ... FROM t1 AS t2, t1 WHERE t1.a = t2.b;
649**
650** In the example above, the index on t1(a) has TEXT affinity. But since
651** the right hand side of the equality constraint (t2.b) has BLOB/NONE affinity,
652** no conversion should be attempted before using a t2.b value as part of
653** a key to search the index. Hence the first byte in the returned affinity
654** string in this example would be set to SQLITE_AFF_BLOB.
655*/
656static int codeAllEqualityTerms(
657 Parse *pParse, /* Parsing context */
658 WhereLevel *pLevel, /* Which nested loop of the FROM we are coding */
659 int bRev, /* Reverse the order of IN operators */
660 int nExtraReg, /* Number of extra registers to allocate */
661 char **pzAff /* OUT: Set to point to affinity string */
662){
663 u16 nEq; /* The number of == or IN constraints to code */
664 u16 nSkip; /* Number of left-most columns to skip */
665 Vdbe *v = pParse->pVdbe; /* The vm under construction */
666 Index *pIdx; /* The index being used for this loop */
667 WhereTerm *pTerm; /* A single constraint term */
668 WhereLoop *pLoop; /* The WhereLoop object */
669 int j; /* Loop counter */
670 int regBase; /* Base register */
671 int nReg; /* Number of registers to allocate */
672 char *zAff; /* Affinity string to return */
673
674 /* This module is only called on query plans that use an index. */
675 pLoop = pLevel->pWLoop;
676 assert( (pLoop->wsFlags & WHERE_VIRTUALTABLE)==0 );
677 nEq = pLoop->u.btree.nEq;
678 nSkip = pLoop->nSkip;
679 pIdx = pLoop->u.btree.pIndex;
680 assert( pIdx!=0 );
681
682 /* Figure out how many memory cells we will need then allocate them.
683 */
684 regBase = pParse->nMem + 1;
685 nReg = pLoop->u.btree.nEq + nExtraReg;
686 pParse->nMem += nReg;
687
drhe9107692015-08-25 19:20:04 +0000688 zAff = sqlite3DbStrDup(pParse->db,sqlite3IndexAffinityStr(pParse->db,pIdx));
drh4df86af2016-02-04 11:48:00 +0000689 assert( zAff!=0 || pParse->db->mallocFailed );
drh6f82e852015-06-06 20:12:09 +0000690
691 if( nSkip ){
692 int iIdxCur = pLevel->iIdxCur;
693 sqlite3VdbeAddOp1(v, (bRev?OP_Last:OP_Rewind), iIdxCur);
694 VdbeCoverageIf(v, bRev==0);
695 VdbeCoverageIf(v, bRev!=0);
696 VdbeComment((v, "begin skip-scan on %s", pIdx->zName));
697 j = sqlite3VdbeAddOp0(v, OP_Goto);
698 pLevel->addrSkip = sqlite3VdbeAddOp4Int(v, (bRev?OP_SeekLT:OP_SeekGT),
699 iIdxCur, 0, regBase, nSkip);
700 VdbeCoverageIf(v, bRev==0);
701 VdbeCoverageIf(v, bRev!=0);
702 sqlite3VdbeJumpHere(v, j);
703 for(j=0; j<nSkip; j++){
704 sqlite3VdbeAddOp3(v, OP_Column, iIdxCur, j, regBase+j);
drh4b92f982015-09-29 17:20:14 +0000705 testcase( pIdx->aiColumn[j]==XN_EXPR );
drhe63e8a62015-09-18 18:09:28 +0000706 VdbeComment((v, "%s", explainIndexColumnName(pIdx, j)));
drh6f82e852015-06-06 20:12:09 +0000707 }
708 }
709
710 /* Evaluate the equality constraints
711 */
712 assert( zAff==0 || (int)strlen(zAff)>=nEq );
713 for(j=nSkip; j<nEq; j++){
714 int r1;
715 pTerm = pLoop->aLTerm[j];
716 assert( pTerm!=0 );
717 /* The following testcase is true for indices with redundant columns.
718 ** Ex: CREATE INDEX i1 ON t1(a,b,a); SELECT * FROM t1 WHERE a=0 AND b=0; */
719 testcase( (pTerm->wtFlags & TERM_CODED)!=0 );
720 testcase( pTerm->wtFlags & TERM_VIRTUAL );
721 r1 = codeEqualityTerm(pParse, pTerm, pLevel, j, bRev, regBase+j);
722 if( r1!=regBase+j ){
723 if( nReg==1 ){
724 sqlite3ReleaseTempReg(pParse, regBase);
725 regBase = r1;
726 }else{
727 sqlite3VdbeAddOp2(v, OP_SCopy, r1, regBase+j);
728 }
729 }
drhc097e122016-09-07 13:30:40 +0000730 if( pTerm->eOperator & WO_IN ){
731 if( pTerm->pExpr->flags & EP_xIsSelect ){
732 /* No affinity ever needs to be (or should be) applied to a value
733 ** from the RHS of an "? IN (SELECT ...)" expression. The
734 ** sqlite3FindInIndex() routine has already ensured that the
735 ** affinity of the comparison has been applied to the value. */
736 if( zAff ) zAff[j] = SQLITE_AFF_BLOB;
737 }
738 }else if( (pTerm->eOperator & WO_ISNULL)==0 ){
739 Expr *pRight = pTerm->pExpr->pRight;
740 if( (pTerm->wtFlags & TERM_IS)==0 && sqlite3ExprCanBeNull(pRight) ){
741 sqlite3VdbeAddOp2(v, OP_IsNull, regBase+j, pLevel->addrBrk);
742 VdbeCoverage(v);
743 }
744 if( zAff ){
745 if( sqlite3CompareAffinity(pRight, zAff[j])==SQLITE_AFF_BLOB ){
746 zAff[j] = SQLITE_AFF_BLOB;
dan27189602016-09-03 15:31:20 +0000747 }
drhc097e122016-09-07 13:30:40 +0000748 if( sqlite3ExprNeedsNoAffinityChange(pRight, zAff[j]) ){
749 zAff[j] = SQLITE_AFF_BLOB;
drh6f82e852015-06-06 20:12:09 +0000750 }
751 }
752 }
753 }
754 *pzAff = zAff;
755 return regBase;
756}
757
drh41d2e662015-12-01 21:23:07 +0000758#ifndef SQLITE_LIKE_DOESNT_MATCH_BLOBS
drh6f82e852015-06-06 20:12:09 +0000759/*
drh44aebff2016-05-02 10:25:42 +0000760** If the most recently coded instruction is a constant range constraint
761** (a string literal) that originated from the LIKE optimization, then
762** set P3 and P5 on the OP_String opcode so that the string will be cast
763** to a BLOB at appropriate times.
drh6f82e852015-06-06 20:12:09 +0000764**
765** The LIKE optimization trys to evaluate "x LIKE 'abc%'" as a range
766** expression: "x>='ABC' AND x<'abd'". But this requires that the range
767** scan loop run twice, once for strings and a second time for BLOBs.
768** The OP_String opcodes on the second pass convert the upper and lower
mistachkine234cfd2016-07-10 19:35:10 +0000769** bound string constants to blobs. This routine makes the necessary changes
drh6f82e852015-06-06 20:12:09 +0000770** to the OP_String opcodes for that to happen.
drh41d2e662015-12-01 21:23:07 +0000771**
772** Except, of course, if SQLITE_LIKE_DOESNT_MATCH_BLOBS is defined, then
773** only the one pass through the string space is required, so this routine
774** becomes a no-op.
drh6f82e852015-06-06 20:12:09 +0000775*/
776static void whereLikeOptimizationStringFixup(
777 Vdbe *v, /* prepared statement under construction */
778 WhereLevel *pLevel, /* The loop that contains the LIKE operator */
779 WhereTerm *pTerm /* The upper or lower bound just coded */
780){
781 if( pTerm->wtFlags & TERM_LIKEOPT ){
782 VdbeOp *pOp;
783 assert( pLevel->iLikeRepCntr>0 );
784 pOp = sqlite3VdbeGetOp(v, -1);
785 assert( pOp!=0 );
786 assert( pOp->opcode==OP_String8
787 || pTerm->pWC->pWInfo->pParse->db->mallocFailed );
drh44aebff2016-05-02 10:25:42 +0000788 pOp->p3 = (int)(pLevel->iLikeRepCntr>>1); /* Register holding counter */
789 pOp->p5 = (u8)(pLevel->iLikeRepCntr&1); /* ASC or DESC */
drh6f82e852015-06-06 20:12:09 +0000790 }
791}
drh41d2e662015-12-01 21:23:07 +0000792#else
793# define whereLikeOptimizationStringFixup(A,B,C)
794#endif
drh6f82e852015-06-06 20:12:09 +0000795
drhbec24762015-08-13 20:07:13 +0000796#ifdef SQLITE_ENABLE_CURSOR_HINTS
drh2f2b0272015-08-14 18:50:04 +0000797/*
798** Information is passed from codeCursorHint() down to individual nodes of
799** the expression tree (by sqlite3WalkExpr()) using an instance of this
800** structure.
801*/
802struct CCurHint {
803 int iTabCur; /* Cursor for the main table */
804 int iIdxCur; /* Cursor for the index, if pIdx!=0. Unused otherwise */
805 Index *pIdx; /* The index used to access the table */
806};
807
808/*
809** This function is called for every node of an expression that is a candidate
810** for a cursor hint on an index cursor. For TK_COLUMN nodes that reference
811** the table CCurHint.iTabCur, verify that the same column can be
812** accessed through the index. If it cannot, then set pWalker->eCode to 1.
813*/
814static int codeCursorHintCheckExpr(Walker *pWalker, Expr *pExpr){
815 struct CCurHint *pHint = pWalker->u.pCCurHint;
816 assert( pHint->pIdx!=0 );
817 if( pExpr->op==TK_COLUMN
818 && pExpr->iTable==pHint->iTabCur
819 && sqlite3ColumnOfIndex(pHint->pIdx, pExpr->iColumn)<0
820 ){
821 pWalker->eCode = 1;
822 }
823 return WRC_Continue;
824}
825
dane6912fd2016-06-17 19:27:13 +0000826/*
827** Test whether or not expression pExpr, which was part of a WHERE clause,
828** should be included in the cursor-hint for a table that is on the rhs
829** of a LEFT JOIN. Set Walker.eCode to non-zero before returning if the
830** expression is not suitable.
831**
832** An expression is unsuitable if it might evaluate to non NULL even if
833** a TK_COLUMN node that does affect the value of the expression is set
834** to NULL. For example:
835**
836** col IS NULL
837** col IS NOT NULL
838** coalesce(col, 1)
839** CASE WHEN col THEN 0 ELSE 1 END
840*/
841static int codeCursorHintIsOrFunction(Walker *pWalker, Expr *pExpr){
dan2b693d62016-06-20 17:22:06 +0000842 if( pExpr->op==TK_IS
dane6912fd2016-06-17 19:27:13 +0000843 || pExpr->op==TK_ISNULL || pExpr->op==TK_ISNOT
844 || pExpr->op==TK_NOTNULL || pExpr->op==TK_CASE
845 ){
846 pWalker->eCode = 1;
dan2b693d62016-06-20 17:22:06 +0000847 }else if( pExpr->op==TK_FUNCTION ){
848 int d1;
drh1d42ea72017-07-27 20:24:29 +0000849 char d2[4];
dan2b693d62016-06-20 17:22:06 +0000850 if( 0==sqlite3IsLikeFunction(pWalker->pParse->db, pExpr, &d1, d2) ){
851 pWalker->eCode = 1;
852 }
dane6912fd2016-06-17 19:27:13 +0000853 }
dan2b693d62016-06-20 17:22:06 +0000854
dane6912fd2016-06-17 19:27:13 +0000855 return WRC_Continue;
856}
857
drhbec24762015-08-13 20:07:13 +0000858
859/*
860** This function is called on every node of an expression tree used as an
861** argument to the OP_CursorHint instruction. If the node is a TK_COLUMN
drh2f2b0272015-08-14 18:50:04 +0000862** that accesses any table other than the one identified by
863** CCurHint.iTabCur, then do the following:
drhbec24762015-08-13 20:07:13 +0000864**
865** 1) allocate a register and code an OP_Column instruction to read
866** the specified column into the new register, and
867**
868** 2) transform the expression node to a TK_REGISTER node that reads
869** from the newly populated register.
drh2f2b0272015-08-14 18:50:04 +0000870**
871** Also, if the node is a TK_COLUMN that does access the table idenified
872** by pCCurHint.iTabCur, and an index is being used (which we will
873** know because CCurHint.pIdx!=0) then transform the TK_COLUMN into
874** an access of the index rather than the original table.
drhbec24762015-08-13 20:07:13 +0000875*/
876static int codeCursorHintFixExpr(Walker *pWalker, Expr *pExpr){
877 int rc = WRC_Continue;
drh2f2b0272015-08-14 18:50:04 +0000878 struct CCurHint *pHint = pWalker->u.pCCurHint;
879 if( pExpr->op==TK_COLUMN ){
880 if( pExpr->iTable!=pHint->iTabCur ){
881 Vdbe *v = pWalker->pParse->pVdbe;
882 int reg = ++pWalker->pParse->nMem; /* Register for column value */
883 sqlite3ExprCodeGetColumnOfTable(
884 v, pExpr->pTab, pExpr->iTable, pExpr->iColumn, reg
885 );
886 pExpr->op = TK_REGISTER;
887 pExpr->iTable = reg;
888 }else if( pHint->pIdx!=0 ){
889 pExpr->iTable = pHint->iIdxCur;
890 pExpr->iColumn = sqlite3ColumnOfIndex(pHint->pIdx, pExpr->iColumn);
891 assert( pExpr->iColumn>=0 );
892 }
drhbec24762015-08-13 20:07:13 +0000893 }else if( pExpr->op==TK_AGG_FUNCTION ){
894 /* An aggregate function in the WHERE clause of a query means this must
895 ** be a correlated sub-query, and expression pExpr is an aggregate from
896 ** the parent context. Do not walk the function arguments in this case.
897 **
898 ** todo: It should be possible to replace this node with a TK_REGISTER
899 ** expression, as the result of the expression must be stored in a
900 ** register at this point. The same holds for TK_AGG_COLUMN nodes. */
901 rc = WRC_Prune;
902 }
903 return rc;
904}
905
906/*
907** Insert an OP_CursorHint instruction if it is appropriate to do so.
908*/
909static void codeCursorHint(
danb324cf72016-06-17 14:33:32 +0000910 struct SrcList_item *pTabItem, /* FROM clause item */
drhb413a542015-08-17 17:19:28 +0000911 WhereInfo *pWInfo, /* The where clause */
912 WhereLevel *pLevel, /* Which loop to provide hints for */
913 WhereTerm *pEndRange /* Hint this end-of-scan boundary term if not NULL */
drhbec24762015-08-13 20:07:13 +0000914){
915 Parse *pParse = pWInfo->pParse;
916 sqlite3 *db = pParse->db;
917 Vdbe *v = pParse->pVdbe;
drhbec24762015-08-13 20:07:13 +0000918 Expr *pExpr = 0;
drh2f2b0272015-08-14 18:50:04 +0000919 WhereLoop *pLoop = pLevel->pWLoop;
drhbec24762015-08-13 20:07:13 +0000920 int iCur;
921 WhereClause *pWC;
922 WhereTerm *pTerm;
drhb413a542015-08-17 17:19:28 +0000923 int i, j;
drh2f2b0272015-08-14 18:50:04 +0000924 struct CCurHint sHint;
925 Walker sWalker;
drhbec24762015-08-13 20:07:13 +0000926
927 if( OptimizationDisabled(db, SQLITE_CursorHints) ) return;
drh2f2b0272015-08-14 18:50:04 +0000928 iCur = pLevel->iTabCur;
929 assert( iCur==pWInfo->pTabList->a[pLevel->iFrom].iCursor );
930 sHint.iTabCur = iCur;
931 sHint.iIdxCur = pLevel->iIdxCur;
932 sHint.pIdx = pLoop->u.btree.pIndex;
933 memset(&sWalker, 0, sizeof(sWalker));
934 sWalker.pParse = pParse;
935 sWalker.u.pCCurHint = &sHint;
drhbec24762015-08-13 20:07:13 +0000936 pWC = &pWInfo->sWC;
937 for(i=0; i<pWC->nTerm; i++){
938 pTerm = &pWC->a[i];
939 if( pTerm->wtFlags & (TERM_VIRTUAL|TERM_CODED) ) continue;
940 if( pTerm->prereqAll & pLevel->notReady ) continue;
danb324cf72016-06-17 14:33:32 +0000941
942 /* Any terms specified as part of the ON(...) clause for any LEFT
943 ** JOIN for which the current table is not the rhs are omitted
944 ** from the cursor-hint.
945 **
dane6912fd2016-06-17 19:27:13 +0000946 ** If this table is the rhs of a LEFT JOIN, "IS" or "IS NULL" terms
947 ** that were specified as part of the WHERE clause must be excluded.
948 ** This is to address the following:
danb324cf72016-06-17 14:33:32 +0000949 **
950 ** SELECT ... t1 LEFT JOIN t2 ON (t1.a=t2.b) WHERE t2.c IS NULL;
951 **
dane6912fd2016-06-17 19:27:13 +0000952 ** Say there is a single row in t2 that matches (t1.a=t2.b), but its
953 ** t2.c values is not NULL. If the (t2.c IS NULL) constraint is
954 ** pushed down to the cursor, this row is filtered out, causing
955 ** SQLite to synthesize a row of NULL values. Which does match the
956 ** WHERE clause, and so the query returns a row. Which is incorrect.
957 **
958 ** For the same reason, WHERE terms such as:
959 **
960 ** WHERE 1 = (t2.c IS NULL)
961 **
962 ** are also excluded. See codeCursorHintIsOrFunction() for details.
danb324cf72016-06-17 14:33:32 +0000963 */
964 if( pTabItem->fg.jointype & JT_LEFT ){
dane6912fd2016-06-17 19:27:13 +0000965 Expr *pExpr = pTerm->pExpr;
966 if( !ExprHasProperty(pExpr, EP_FromJoin)
967 || pExpr->iRightJoinTable!=pTabItem->iCursor
danb324cf72016-06-17 14:33:32 +0000968 ){
dane6912fd2016-06-17 19:27:13 +0000969 sWalker.eCode = 0;
970 sWalker.xExprCallback = codeCursorHintIsOrFunction;
971 sqlite3WalkExpr(&sWalker, pTerm->pExpr);
972 if( sWalker.eCode ) continue;
danb324cf72016-06-17 14:33:32 +0000973 }
974 }else{
975 if( ExprHasProperty(pTerm->pExpr, EP_FromJoin) ) continue;
976 }
drhb413a542015-08-17 17:19:28 +0000977
978 /* All terms in pWLoop->aLTerm[] except pEndRange are used to initialize
drhbcf40a72015-08-18 15:58:05 +0000979 ** the cursor. These terms are not needed as hints for a pure range
980 ** scan (that has no == terms) so omit them. */
981 if( pLoop->u.btree.nEq==0 && pTerm!=pEndRange ){
982 for(j=0; j<pLoop->nLTerm && pLoop->aLTerm[j]!=pTerm; j++){}
983 if( j<pLoop->nLTerm ) continue;
drhb413a542015-08-17 17:19:28 +0000984 }
985
986 /* No subqueries or non-deterministic functions allowed */
drhbec24762015-08-13 20:07:13 +0000987 if( sqlite3ExprContainsSubquery(pTerm->pExpr) ) continue;
drhb413a542015-08-17 17:19:28 +0000988
989 /* For an index scan, make sure referenced columns are actually in
990 ** the index. */
drh2f2b0272015-08-14 18:50:04 +0000991 if( sHint.pIdx!=0 ){
992 sWalker.eCode = 0;
993 sWalker.xExprCallback = codeCursorHintCheckExpr;
994 sqlite3WalkExpr(&sWalker, pTerm->pExpr);
995 if( sWalker.eCode ) continue;
996 }
drhb413a542015-08-17 17:19:28 +0000997
998 /* If we survive all prior tests, that means this term is worth hinting */
drhbec24762015-08-13 20:07:13 +0000999 pExpr = sqlite3ExprAnd(db, pExpr, sqlite3ExprDup(db, pTerm->pExpr, 0));
1000 }
1001 if( pExpr!=0 ){
drhbec24762015-08-13 20:07:13 +00001002 sWalker.xExprCallback = codeCursorHintFixExpr;
drhbec24762015-08-13 20:07:13 +00001003 sqlite3WalkExpr(&sWalker, pExpr);
drh2f2b0272015-08-14 18:50:04 +00001004 sqlite3VdbeAddOp4(v, OP_CursorHint,
1005 (sHint.pIdx ? sHint.iIdxCur : sHint.iTabCur), 0, 0,
1006 (const char*)pExpr, P4_EXPR);
drhbec24762015-08-13 20:07:13 +00001007 }
1008}
1009#else
danb324cf72016-06-17 14:33:32 +00001010# define codeCursorHint(A,B,C,D) /* No-op */
drhbec24762015-08-13 20:07:13 +00001011#endif /* SQLITE_ENABLE_CURSOR_HINTS */
drh6f82e852015-06-06 20:12:09 +00001012
1013/*
dande892d92016-01-29 19:29:45 +00001014** Cursor iCur is open on an intkey b-tree (a table). Register iRowid contains
1015** a rowid value just read from cursor iIdxCur, open on index pIdx. This
1016** function generates code to do a deferred seek of cursor iCur to the
1017** rowid stored in register iRowid.
1018**
1019** Normally, this is just:
1020**
drh170ad682017-06-02 15:44:22 +00001021** OP_DeferredSeek $iCur $iRowid
dande892d92016-01-29 19:29:45 +00001022**
1023** However, if the scan currently being coded is a branch of an OR-loop and
drh170ad682017-06-02 15:44:22 +00001024** the statement currently being coded is a SELECT, then P3 of OP_DeferredSeek
dande892d92016-01-29 19:29:45 +00001025** is set to iIdxCur and P4 is set to point to an array of integers
1026** containing one entry for each column of the table cursor iCur is open
1027** on. For each table column, if the column is the i'th column of the
1028** index, then the corresponding array entry is set to (i+1). If the column
1029** does not appear in the index at all, the array entry is set to 0.
1030*/
1031static void codeDeferredSeek(
1032 WhereInfo *pWInfo, /* Where clause context */
1033 Index *pIdx, /* Index scan is using */
1034 int iCur, /* Cursor for IPK b-tree */
dande892d92016-01-29 19:29:45 +00001035 int iIdxCur /* Index cursor */
1036){
1037 Parse *pParse = pWInfo->pParse; /* Parse context */
1038 Vdbe *v = pParse->pVdbe; /* Vdbe to generate code within */
1039
1040 assert( iIdxCur>0 );
1041 assert( pIdx->aiColumn[pIdx->nColumn-1]==-1 );
1042
drh170ad682017-06-02 15:44:22 +00001043 sqlite3VdbeAddOp3(v, OP_DeferredSeek, iIdxCur, 0, iCur);
drhce943bc2016-05-19 18:56:33 +00001044 if( (pWInfo->wctrlFlags & WHERE_OR_SUBCLAUSE)
dancddb6ba2016-02-01 13:58:56 +00001045 && DbMaskAllZero(sqlite3ParseToplevel(pParse)->writeMask)
dande892d92016-01-29 19:29:45 +00001046 ){
1047 int i;
1048 Table *pTab = pIdx->pTable;
drhb1702022016-01-30 00:45:18 +00001049 int *ai = (int*)sqlite3DbMallocZero(pParse->db, sizeof(int)*(pTab->nCol+1));
dande892d92016-01-29 19:29:45 +00001050 if( ai ){
drhb1702022016-01-30 00:45:18 +00001051 ai[0] = pTab->nCol;
dande892d92016-01-29 19:29:45 +00001052 for(i=0; i<pIdx->nColumn-1; i++){
1053 assert( pIdx->aiColumn[i]<pTab->nCol );
drhb1702022016-01-30 00:45:18 +00001054 if( pIdx->aiColumn[i]>=0 ) ai[pIdx->aiColumn[i]+1] = i+1;
dande892d92016-01-29 19:29:45 +00001055 }
1056 sqlite3VdbeChangeP4(v, -1, (char*)ai, P4_INTARRAY);
1057 }
1058 }
1059}
1060
dan553168c2016-08-01 20:14:31 +00001061/*
1062** If the expression passed as the second argument is a vector, generate
1063** code to write the first nReg elements of the vector into an array
1064** of registers starting with iReg.
1065**
1066** If the expression is not a vector, then nReg must be passed 1. In
1067** this case, generate code to evaluate the expression and leave the
1068** result in register iReg.
1069*/
dan71c57db2016-07-09 20:23:55 +00001070static void codeExprOrVector(Parse *pParse, Expr *p, int iReg, int nReg){
1071 assert( nReg>0 );
dand03024d2017-09-09 19:41:12 +00001072 if( p && sqlite3ExprIsVector(p) ){
danf9b2e052016-08-02 17:45:00 +00001073#ifndef SQLITE_OMIT_SUBQUERY
1074 if( (p->flags & EP_xIsSelect) ){
1075 Vdbe *v = pParse->pVdbe;
1076 int iSelect = sqlite3CodeSubselect(pParse, p, 0, 0);
1077 sqlite3VdbeAddOp3(v, OP_Copy, iSelect, iReg, nReg-1);
1078 }else
1079#endif
1080 {
1081 int i;
dan71c57db2016-07-09 20:23:55 +00001082 ExprList *pList = p->x.pList;
1083 assert( nReg<=pList->nExpr );
1084 for(i=0; i<nReg; i++){
1085 sqlite3ExprCode(pParse, pList->a[i].pExpr, iReg+i);
1086 }
dan71c57db2016-07-09 20:23:55 +00001087 }
1088 }else{
1089 assert( nReg==1 );
1090 sqlite3ExprCode(pParse, p, iReg);
1091 }
1092}
1093
drheac5fc02017-04-11 01:01:27 +00001094/* An instance of the IdxExprTrans object carries information about a
1095** mapping from an expression on table columns into a column in an index
1096** down through the Walker.
1097*/
drhaca19e12017-04-07 19:41:31 +00001098typedef struct IdxExprTrans {
1099 Expr *pIdxExpr; /* The index expression */
1100 int iTabCur; /* The cursor of the corresponding table */
1101 int iIdxCur; /* The cursor for the index */
1102 int iIdxCol; /* The column for the index */
1103} IdxExprTrans;
1104
drheac5fc02017-04-11 01:01:27 +00001105/* The walker node callback used to transform matching expressions into
1106** a reference to an index column for an index on an expression.
1107**
1108** If pExpr matches, then transform it into a reference to the index column
1109** that contains the value of pExpr.
1110*/
drhaca19e12017-04-07 19:41:31 +00001111static int whereIndexExprTransNode(Walker *p, Expr *pExpr){
1112 IdxExprTrans *pX = p->u.pIdxTrans;
dan5aa550c2017-06-24 18:10:29 +00001113 if( sqlite3ExprCompare(0, pExpr, pX->pIdxExpr, pX->iTabCur)==0 ){
drhaca19e12017-04-07 19:41:31 +00001114 pExpr->op = TK_COLUMN;
1115 pExpr->iTable = pX->iIdxCur;
1116 pExpr->iColumn = pX->iIdxCol;
1117 pExpr->pTab = 0;
1118 return WRC_Prune;
1119 }else{
1120 return WRC_Continue;
1121 }
1122}
1123
1124/*
drhf49759b2017-08-25 19:51:51 +00001125** For an indexes on expression X, locate every instance of expression X
1126** in pExpr and change that subexpression into a reference to the appropriate
1127** column of the index.
drhaca19e12017-04-07 19:41:31 +00001128*/
1129static void whereIndexExprTrans(
1130 Index *pIdx, /* The Index */
1131 int iTabCur, /* Cursor of the table that is being indexed */
1132 int iIdxCur, /* Cursor of the index itself */
1133 WhereInfo *pWInfo /* Transform expressions in this WHERE clause */
1134){
1135 int iIdxCol; /* Column number of the index */
1136 ExprList *aColExpr; /* Expressions that are indexed */
1137 Walker w;
1138 IdxExprTrans x;
1139 aColExpr = pIdx->aColExpr;
1140 if( aColExpr==0 ) return; /* Not an index on expressions */
1141 memset(&w, 0, sizeof(w));
1142 w.xExprCallback = whereIndexExprTransNode;
1143 w.u.pIdxTrans = &x;
1144 x.iTabCur = iTabCur;
1145 x.iIdxCur = iIdxCur;
1146 for(iIdxCol=0; iIdxCol<aColExpr->nExpr; iIdxCol++){
1147 if( pIdx->aiColumn[iIdxCol]!=XN_EXPR ) continue;
1148 assert( aColExpr->a[iIdxCol].pExpr!=0 );
1149 x.iIdxCol = iIdxCol;
1150 x.pIdxExpr = aColExpr->a[iIdxCol].pExpr;
1151 sqlite3WalkExpr(&w, pWInfo->pWhere);
1152 sqlite3WalkExprList(&w, pWInfo->pOrderBy);
1153 sqlite3WalkExprList(&w, pWInfo->pResultSet);
1154 }
1155}
drhaca19e12017-04-07 19:41:31 +00001156
dande892d92016-01-29 19:29:45 +00001157/*
drh6f82e852015-06-06 20:12:09 +00001158** Generate code for the start of the iLevel-th loop in the WHERE clause
1159** implementation described by pWInfo.
1160*/
1161Bitmask sqlite3WhereCodeOneLoopStart(
1162 WhereInfo *pWInfo, /* Complete information about the WHERE clause */
1163 int iLevel, /* Which level of pWInfo->a[] should be coded */
1164 Bitmask notReady /* Which tables are currently available */
1165){
1166 int j, k; /* Loop counters */
1167 int iCur; /* The VDBE cursor for the table */
1168 int addrNxt; /* Where to jump to continue with the next IN case */
1169 int omitTable; /* True if we use the index only */
1170 int bRev; /* True if we need to scan in reverse order */
1171 WhereLevel *pLevel; /* The where level to be coded */
1172 WhereLoop *pLoop; /* The WhereLoop object being coded */
1173 WhereClause *pWC; /* Decomposition of the entire WHERE clause */
1174 WhereTerm *pTerm; /* A WHERE clause term */
1175 Parse *pParse; /* Parsing context */
1176 sqlite3 *db; /* Database connection */
1177 Vdbe *v; /* The prepared stmt under constructions */
1178 struct SrcList_item *pTabItem; /* FROM clause term being coded */
1179 int addrBrk; /* Jump here to break out of the loop */
drh3a3b4202017-02-15 22:36:15 +00001180 int addrHalt; /* addrBrk for the outermost loop */
drh6f82e852015-06-06 20:12:09 +00001181 int addrCont; /* Jump here to continue with next cycle */
1182 int iRowidReg = 0; /* Rowid is stored in this register, if not zero */
1183 int iReleaseReg = 0; /* Temp register to free before returning */
dan6f654a42017-04-28 19:59:55 +00001184 Index *pIdx = 0; /* Index used by loop (if any) */
danebc63012017-07-10 14:33:00 +00001185 int iLoop; /* Iteration of constraint generator loop */
drh6f82e852015-06-06 20:12:09 +00001186
1187 pParse = pWInfo->pParse;
1188 v = pParse->pVdbe;
1189 pWC = &pWInfo->sWC;
1190 db = pParse->db;
1191 pLevel = &pWInfo->a[iLevel];
1192 pLoop = pLevel->pWLoop;
1193 pTabItem = &pWInfo->pTabList->a[pLevel->iFrom];
1194 iCur = pTabItem->iCursor;
1195 pLevel->notReady = notReady & ~sqlite3WhereGetMask(&pWInfo->sMaskSet, iCur);
1196 bRev = (pWInfo->revMask>>iLevel)&1;
1197 omitTable = (pLoop->wsFlags & WHERE_IDX_ONLY)!=0
drhce943bc2016-05-19 18:56:33 +00001198 && (pWInfo->wctrlFlags & WHERE_OR_SUBCLAUSE)==0;
drh6f82e852015-06-06 20:12:09 +00001199 VdbeModuleComment((v, "Begin WHERE-loop%d: %s",iLevel,pTabItem->pTab->zName));
1200
1201 /* Create labels for the "break" and "continue" instructions
1202 ** for the current loop. Jump to addrBrk to break out of a loop.
1203 ** Jump to cont to go immediately to the next iteration of the
1204 ** loop.
1205 **
1206 ** When there is an IN operator, we also have a "addrNxt" label that
1207 ** means to continue with the next IN value combination. When
1208 ** there are no IN operators in the constraints, the "addrNxt" label
1209 ** is the same as "addrBrk".
1210 */
1211 addrBrk = pLevel->addrBrk = pLevel->addrNxt = sqlite3VdbeMakeLabel(v);
1212 addrCont = pLevel->addrCont = sqlite3VdbeMakeLabel(v);
1213
1214 /* If this is the right table of a LEFT OUTER JOIN, allocate and
1215 ** initialize a memory cell that records if this table matches any
1216 ** row of the left table of the join.
1217 */
dan820fcd22018-04-24 18:53:24 +00001218 assert( (pWInfo->wctrlFlags & WHERE_OR_SUBCLAUSE)
1219 || pLevel->iFrom>0 || (pTabItem[0].fg.jointype & JT_LEFT)==0
1220 );
drh8a48b9c2015-08-19 15:20:00 +00001221 if( pLevel->iFrom>0 && (pTabItem[0].fg.jointype & JT_LEFT)!=0 ){
drh6f82e852015-06-06 20:12:09 +00001222 pLevel->iLeftJoin = ++pParse->nMem;
1223 sqlite3VdbeAddOp2(v, OP_Integer, 0, pLevel->iLeftJoin);
1224 VdbeComment((v, "init LEFT JOIN no-match flag"));
1225 }
1226
drh3a3b4202017-02-15 22:36:15 +00001227 /* Compute a safe address to jump to if we discover that the table for
1228 ** this loop is empty and can never contribute content. */
1229 for(j=iLevel; j>0 && pWInfo->a[j].iLeftJoin==0; j--){}
1230 addrHalt = pWInfo->a[j].addrBrk;
1231
drh6f82e852015-06-06 20:12:09 +00001232 /* Special case of a FROM clause subquery implemented as a co-routine */
drh8a48b9c2015-08-19 15:20:00 +00001233 if( pTabItem->fg.viaCoroutine ){
drh6f82e852015-06-06 20:12:09 +00001234 int regYield = pTabItem->regReturn;
1235 sqlite3VdbeAddOp3(v, OP_InitCoroutine, regYield, 0, pTabItem->addrFillSub);
1236 pLevel->p2 = sqlite3VdbeAddOp2(v, OP_Yield, regYield, addrBrk);
1237 VdbeCoverage(v);
1238 VdbeComment((v, "next row of \"%s\"", pTabItem->pTab->zName));
1239 pLevel->op = OP_Goto;
1240 }else
1241
1242#ifndef SQLITE_OMIT_VIRTUALTABLE
1243 if( (pLoop->wsFlags & WHERE_VIRTUALTABLE)!=0 ){
1244 /* Case 1: The table is a virtual-table. Use the VFilter and VNext
1245 ** to access the data.
1246 */
1247 int iReg; /* P3 Value for OP_VFilter */
1248 int addrNotFound;
1249 int nConstraint = pLoop->nLTerm;
drhdbc49162016-03-02 03:28:07 +00001250 int iIn; /* Counter for IN constraints */
drh6f82e852015-06-06 20:12:09 +00001251
1252 sqlite3ExprCachePush(pParse);
1253 iReg = sqlite3GetTempRange(pParse, nConstraint+2);
1254 addrNotFound = pLevel->addrBrk;
1255 for(j=0; j<nConstraint; j++){
1256 int iTarget = iReg+j+2;
1257 pTerm = pLoop->aLTerm[j];
drh599d5762016-03-08 01:11:51 +00001258 if( NEVER(pTerm==0) ) continue;
drh6f82e852015-06-06 20:12:09 +00001259 if( pTerm->eOperator & WO_IN ){
1260 codeEqualityTerm(pParse, pTerm, pLevel, j, bRev, iTarget);
1261 addrNotFound = pLevel->addrNxt;
1262 }else{
dan6256c1c2016-08-08 20:15:41 +00001263 Expr *pRight = pTerm->pExpr->pRight;
drhfc7f27b2016-08-20 00:07:01 +00001264 codeExprOrVector(pParse, pRight, iTarget, 1);
drh6f82e852015-06-06 20:12:09 +00001265 }
1266 }
1267 sqlite3VdbeAddOp2(v, OP_Integer, pLoop->u.vtab.idxNum, iReg);
1268 sqlite3VdbeAddOp2(v, OP_Integer, nConstraint, iReg+1);
1269 sqlite3VdbeAddOp4(v, OP_VFilter, iCur, addrNotFound, iReg,
1270 pLoop->u.vtab.idxStr,
drh861b1302016-12-07 20:22:31 +00001271 pLoop->u.vtab.needFree ? P4_DYNAMIC : P4_STATIC);
drh6f82e852015-06-06 20:12:09 +00001272 VdbeCoverage(v);
1273 pLoop->u.vtab.needFree = 0;
drh6f82e852015-06-06 20:12:09 +00001274 pLevel->p1 = iCur;
dan354474a2015-09-29 10:11:26 +00001275 pLevel->op = pWInfo->eOnePass ? OP_Noop : OP_VNext;
drh6f82e852015-06-06 20:12:09 +00001276 pLevel->p2 = sqlite3VdbeCurrentAddr(v);
drhdbc49162016-03-02 03:28:07 +00001277 iIn = pLevel->u.in.nIn;
1278 for(j=nConstraint-1; j>=0; j--){
1279 pTerm = pLoop->aLTerm[j];
1280 if( j<16 && (pLoop->u.vtab.omitMask>>j)&1 ){
1281 disableTerm(pLevel, pTerm);
1282 }else if( (pTerm->eOperator & WO_IN)!=0 ){
1283 Expr *pCompare; /* The comparison operator */
1284 Expr *pRight; /* RHS of the comparison */
1285 VdbeOp *pOp; /* Opcode to access the value of the IN constraint */
1286
1287 /* Reload the constraint value into reg[iReg+j+2]. The same value
1288 ** was loaded into the same register prior to the OP_VFilter, but
1289 ** the xFilter implementation might have changed the datatype or
1290 ** encoding of the value in the register, so it *must* be reloaded. */
1291 assert( pLevel->u.in.aInLoop!=0 || db->mallocFailed );
drhfb826b82016-03-08 00:39:58 +00001292 if( !db->mallocFailed ){
drhdbc49162016-03-02 03:28:07 +00001293 assert( iIn>0 );
1294 pOp = sqlite3VdbeGetOp(v, pLevel->u.in.aInLoop[--iIn].addrInTop);
1295 assert( pOp->opcode==OP_Column || pOp->opcode==OP_Rowid );
1296 assert( pOp->opcode!=OP_Column || pOp->p3==iReg+j+2 );
1297 assert( pOp->opcode!=OP_Rowid || pOp->p2==iReg+j+2 );
1298 testcase( pOp->opcode==OP_Rowid );
1299 sqlite3VdbeAddOp3(v, pOp->opcode, pOp->p1, pOp->p2, pOp->p3);
1300 }
1301
1302 /* Generate code that will continue to the next row if
1303 ** the IN constraint is not satisfied */
drhabfd35e2016-12-06 22:47:23 +00001304 pCompare = sqlite3PExpr(pParse, TK_EQ, 0, 0);
drhdbc49162016-03-02 03:28:07 +00001305 assert( pCompare!=0 || db->mallocFailed );
1306 if( pCompare ){
1307 pCompare->pLeft = pTerm->pExpr->pLeft;
1308 pCompare->pRight = pRight = sqlite3Expr(db, TK_REGISTER, 0);
drh237b2b72016-03-07 19:08:27 +00001309 if( pRight ){
1310 pRight->iTable = iReg+j+2;
1311 sqlite3ExprIfFalse(pParse, pCompare, pLevel->addrCont, 0);
1312 }
drhdbc49162016-03-02 03:28:07 +00001313 pCompare->pLeft = 0;
1314 sqlite3ExprDelete(db, pCompare);
1315 }
1316 }
1317 }
drhba26faa2016-04-09 18:04:28 +00001318 /* These registers need to be preserved in case there is an IN operator
1319 ** loop. So we could deallocate the registers here (and potentially
1320 ** reuse them later) if (pLoop->wsFlags & WHERE_IN_ABLE)==0. But it seems
1321 ** simpler and safer to simply not reuse the registers.
1322 **
1323 ** sqlite3ReleaseTempRange(pParse, iReg, nConstraint+2);
1324 */
drh6f82e852015-06-06 20:12:09 +00001325 sqlite3ExprCachePop(pParse);
1326 }else
1327#endif /* SQLITE_OMIT_VIRTUALTABLE */
1328
1329 if( (pLoop->wsFlags & WHERE_IPK)!=0
1330 && (pLoop->wsFlags & (WHERE_COLUMN_IN|WHERE_COLUMN_EQ))!=0
1331 ){
1332 /* Case 2: We can directly reference a single row using an
1333 ** equality comparison against the ROWID field. Or
1334 ** we reference multiple rows using a "rowid IN (...)"
1335 ** construct.
1336 */
1337 assert( pLoop->u.btree.nEq==1 );
1338 pTerm = pLoop->aLTerm[0];
1339 assert( pTerm!=0 );
1340 assert( pTerm->pExpr!=0 );
1341 assert( omitTable==0 );
1342 testcase( pTerm->wtFlags & TERM_VIRTUAL );
1343 iReleaseReg = ++pParse->nMem;
1344 iRowidReg = codeEqualityTerm(pParse, pTerm, pLevel, 0, bRev, iReleaseReg);
1345 if( iRowidReg!=iReleaseReg ) sqlite3ReleaseTempReg(pParse, iReleaseReg);
1346 addrNxt = pLevel->addrNxt;
drheeb95652016-05-26 20:56:38 +00001347 sqlite3VdbeAddOp3(v, OP_SeekRowid, iCur, addrNxt, iRowidReg);
drh6f82e852015-06-06 20:12:09 +00001348 VdbeCoverage(v);
1349 sqlite3ExprCacheAffinityChange(pParse, iRowidReg, 1);
1350 sqlite3ExprCacheStore(pParse, iCur, -1, iRowidReg);
1351 VdbeComment((v, "pk"));
1352 pLevel->op = OP_Noop;
1353 }else if( (pLoop->wsFlags & WHERE_IPK)!=0
1354 && (pLoop->wsFlags & WHERE_COLUMN_RANGE)!=0
1355 ){
1356 /* Case 3: We have an inequality comparison against the ROWID field.
1357 */
1358 int testOp = OP_Noop;
1359 int start;
1360 int memEndValue = 0;
1361 WhereTerm *pStart, *pEnd;
1362
1363 assert( omitTable==0 );
1364 j = 0;
1365 pStart = pEnd = 0;
1366 if( pLoop->wsFlags & WHERE_BTM_LIMIT ) pStart = pLoop->aLTerm[j++];
1367 if( pLoop->wsFlags & WHERE_TOP_LIMIT ) pEnd = pLoop->aLTerm[j++];
1368 assert( pStart!=0 || pEnd!=0 );
1369 if( bRev ){
1370 pTerm = pStart;
1371 pStart = pEnd;
1372 pEnd = pTerm;
1373 }
danb324cf72016-06-17 14:33:32 +00001374 codeCursorHint(pTabItem, pWInfo, pLevel, pEnd);
drh6f82e852015-06-06 20:12:09 +00001375 if( pStart ){
1376 Expr *pX; /* The expression that defines the start bound */
1377 int r1, rTemp; /* Registers for holding the start boundary */
dan19ff12d2016-07-29 20:58:19 +00001378 int op; /* Cursor seek operation */
drh6f82e852015-06-06 20:12:09 +00001379
1380 /* The following constant maps TK_xx codes into corresponding
1381 ** seek opcodes. It depends on a particular ordering of TK_xx
1382 */
1383 const u8 aMoveOp[] = {
1384 /* TK_GT */ OP_SeekGT,
1385 /* TK_LE */ OP_SeekLE,
1386 /* TK_LT */ OP_SeekLT,
1387 /* TK_GE */ OP_SeekGE
1388 };
1389 assert( TK_LE==TK_GT+1 ); /* Make sure the ordering.. */
1390 assert( TK_LT==TK_GT+2 ); /* ... of the TK_xx values... */
1391 assert( TK_GE==TK_GT+3 ); /* ... is correcct. */
1392
1393 assert( (pStart->wtFlags & TERM_VNULL)==0 );
1394 testcase( pStart->wtFlags & TERM_VIRTUAL );
1395 pX = pStart->pExpr;
1396 assert( pX!=0 );
1397 testcase( pStart->leftCursor!=iCur ); /* transitive constraints */
dan625015e2016-07-30 16:39:28 +00001398 if( sqlite3ExprIsVector(pX->pRight) ){
dan19ff12d2016-07-29 20:58:19 +00001399 r1 = rTemp = sqlite3GetTempReg(pParse);
1400 codeExprOrVector(pParse, pX->pRight, r1, 1);
drh4d1c6842018-02-13 18:48:08 +00001401 testcase( pX->op==TK_GT );
1402 testcase( pX->op==TK_GE );
1403 testcase( pX->op==TK_LT );
1404 testcase( pX->op==TK_LE );
1405 op = aMoveOp[((pX->op - TK_GT - 1) & 0x3) | 0x1];
1406 assert( pX->op!=TK_GT || op==OP_SeekGE );
1407 assert( pX->op!=TK_GE || op==OP_SeekGE );
1408 assert( pX->op!=TK_LT || op==OP_SeekLE );
1409 assert( pX->op!=TK_LE || op==OP_SeekLE );
dan19ff12d2016-07-29 20:58:19 +00001410 }else{
1411 r1 = sqlite3ExprCodeTemp(pParse, pX->pRight, &rTemp);
1412 disableTerm(pLevel, pStart);
1413 op = aMoveOp[(pX->op - TK_GT)];
1414 }
1415 sqlite3VdbeAddOp3(v, op, iCur, addrBrk, r1);
drh6f82e852015-06-06 20:12:09 +00001416 VdbeComment((v, "pk"));
1417 VdbeCoverageIf(v, pX->op==TK_GT);
1418 VdbeCoverageIf(v, pX->op==TK_LE);
1419 VdbeCoverageIf(v, pX->op==TK_LT);
1420 VdbeCoverageIf(v, pX->op==TK_GE);
1421 sqlite3ExprCacheAffinityChange(pParse, r1, 1);
1422 sqlite3ReleaseTempReg(pParse, rTemp);
drh6f82e852015-06-06 20:12:09 +00001423 }else{
drh3a3b4202017-02-15 22:36:15 +00001424 sqlite3VdbeAddOp2(v, bRev ? OP_Last : OP_Rewind, iCur, addrHalt);
drh6f82e852015-06-06 20:12:09 +00001425 VdbeCoverageIf(v, bRev==0);
1426 VdbeCoverageIf(v, bRev!=0);
1427 }
1428 if( pEnd ){
1429 Expr *pX;
1430 pX = pEnd->pExpr;
1431 assert( pX!=0 );
1432 assert( (pEnd->wtFlags & TERM_VNULL)==0 );
1433 testcase( pEnd->leftCursor!=iCur ); /* Transitive constraints */
1434 testcase( pEnd->wtFlags & TERM_VIRTUAL );
1435 memEndValue = ++pParse->nMem;
dan19ff12d2016-07-29 20:58:19 +00001436 codeExprOrVector(pParse, pX->pRight, memEndValue, 1);
dan625015e2016-07-30 16:39:28 +00001437 if( 0==sqlite3ExprIsVector(pX->pRight)
1438 && (pX->op==TK_LT || pX->op==TK_GT)
1439 ){
drh6f82e852015-06-06 20:12:09 +00001440 testOp = bRev ? OP_Le : OP_Ge;
1441 }else{
1442 testOp = bRev ? OP_Lt : OP_Gt;
1443 }
dan553168c2016-08-01 20:14:31 +00001444 if( 0==sqlite3ExprIsVector(pX->pRight) ){
1445 disableTerm(pLevel, pEnd);
1446 }
drh6f82e852015-06-06 20:12:09 +00001447 }
1448 start = sqlite3VdbeCurrentAddr(v);
1449 pLevel->op = bRev ? OP_Prev : OP_Next;
1450 pLevel->p1 = iCur;
1451 pLevel->p2 = start;
1452 assert( pLevel->p5==0 );
1453 if( testOp!=OP_Noop ){
1454 iRowidReg = ++pParse->nMem;
1455 sqlite3VdbeAddOp2(v, OP_Rowid, iCur, iRowidReg);
1456 sqlite3ExprCacheStore(pParse, iCur, -1, iRowidReg);
1457 sqlite3VdbeAddOp3(v, testOp, memEndValue, addrBrk, iRowidReg);
1458 VdbeCoverageIf(v, testOp==OP_Le);
1459 VdbeCoverageIf(v, testOp==OP_Lt);
1460 VdbeCoverageIf(v, testOp==OP_Ge);
1461 VdbeCoverageIf(v, testOp==OP_Gt);
1462 sqlite3VdbeChangeP5(v, SQLITE_AFF_NUMERIC | SQLITE_JUMPIFNULL);
1463 }
1464 }else if( pLoop->wsFlags & WHERE_INDEXED ){
1465 /* Case 4: A scan using an index.
1466 **
1467 ** The WHERE clause may contain zero or more equality
1468 ** terms ("==" or "IN" operators) that refer to the N
1469 ** left-most columns of the index. It may also contain
1470 ** inequality constraints (>, <, >= or <=) on the indexed
1471 ** column that immediately follows the N equalities. Only
1472 ** the right-most column can be an inequality - the rest must
1473 ** use the "==" and "IN" operators. For example, if the
1474 ** index is on (x,y,z), then the following clauses are all
1475 ** optimized:
1476 **
1477 ** x=5
1478 ** x=5 AND y=10
1479 ** x=5 AND y<10
1480 ** x=5 AND y>5 AND y<10
1481 ** x=5 AND y=5 AND z<=10
1482 **
1483 ** The z<10 term of the following cannot be used, only
1484 ** the x=5 term:
1485 **
1486 ** x=5 AND z<10
1487 **
1488 ** N may be zero if there are inequality constraints.
1489 ** If there are no inequality constraints, then N is at
1490 ** least one.
1491 **
1492 ** This case is also used when there are no WHERE clause
1493 ** constraints but an index is selected anyway, in order
1494 ** to force the output order to conform to an ORDER BY.
1495 */
1496 static const u8 aStartOp[] = {
1497 0,
1498 0,
1499 OP_Rewind, /* 2: (!start_constraints && startEq && !bRev) */
1500 OP_Last, /* 3: (!start_constraints && startEq && bRev) */
1501 OP_SeekGT, /* 4: (start_constraints && !startEq && !bRev) */
1502 OP_SeekLT, /* 5: (start_constraints && !startEq && bRev) */
1503 OP_SeekGE, /* 6: (start_constraints && startEq && !bRev) */
1504 OP_SeekLE /* 7: (start_constraints && startEq && bRev) */
1505 };
1506 static const u8 aEndOp[] = {
1507 OP_IdxGE, /* 0: (end_constraints && !bRev && !endEq) */
1508 OP_IdxGT, /* 1: (end_constraints && !bRev && endEq) */
1509 OP_IdxLE, /* 2: (end_constraints && bRev && !endEq) */
1510 OP_IdxLT, /* 3: (end_constraints && bRev && endEq) */
1511 };
1512 u16 nEq = pLoop->u.btree.nEq; /* Number of == or IN terms */
dan71c57db2016-07-09 20:23:55 +00001513 u16 nBtm = pLoop->u.btree.nBtm; /* Length of BTM vector */
1514 u16 nTop = pLoop->u.btree.nTop; /* Length of TOP vector */
drh6f82e852015-06-06 20:12:09 +00001515 int regBase; /* Base register holding constraint values */
1516 WhereTerm *pRangeStart = 0; /* Inequality constraint at range start */
1517 WhereTerm *pRangeEnd = 0; /* Inequality constraint at range end */
1518 int startEq; /* True if range start uses ==, >= or <= */
1519 int endEq; /* True if range end uses ==, >= or <= */
1520 int start_constraints; /* Start of range is constrained */
1521 int nConstraint; /* Number of constraint terms */
drh6f82e852015-06-06 20:12:09 +00001522 int iIdxCur; /* The VDBE cursor for the index */
1523 int nExtraReg = 0; /* Number of extra registers needed */
1524 int op; /* Instruction opcode */
1525 char *zStartAff; /* Affinity for start of range constraint */
danb7ca2172016-08-26 17:54:46 +00001526 char *zEndAff = 0; /* Affinity for end of range constraint */
drh6f82e852015-06-06 20:12:09 +00001527 u8 bSeekPastNull = 0; /* True to seek past initial nulls */
1528 u8 bStopAtNull = 0; /* Add condition to terminate at NULLs */
1529
1530 pIdx = pLoop->u.btree.pIndex;
1531 iIdxCur = pLevel->iIdxCur;
1532 assert( nEq>=pLoop->nSkip );
1533
1534 /* If this loop satisfies a sort order (pOrderBy) request that
1535 ** was passed to this function to implement a "SELECT min(x) ..."
1536 ** query, then the caller will only allow the loop to run for
1537 ** a single iteration. This means that the first row returned
1538 ** should not have a NULL value stored in 'x'. If column 'x' is
1539 ** the first one after the nEq equality constraints in the index,
1540 ** this requires some special handling.
1541 */
1542 assert( pWInfo->pOrderBy==0
1543 || pWInfo->pOrderBy->nExpr==1
1544 || (pWInfo->wctrlFlags&WHERE_ORDERBY_MIN)==0 );
1545 if( (pWInfo->wctrlFlags&WHERE_ORDERBY_MIN)!=0
1546 && pWInfo->nOBSat>0
1547 && (pIdx->nKeyCol>nEq)
1548 ){
1549 assert( pLoop->nSkip==0 );
1550 bSeekPastNull = 1;
1551 nExtraReg = 1;
1552 }
1553
1554 /* Find any inequality constraint terms for the start and end
1555 ** of the range.
1556 */
1557 j = nEq;
1558 if( pLoop->wsFlags & WHERE_BTM_LIMIT ){
1559 pRangeStart = pLoop->aLTerm[j++];
dan71c57db2016-07-09 20:23:55 +00001560 nExtraReg = MAX(nExtraReg, pLoop->u.btree.nBtm);
drh6f82e852015-06-06 20:12:09 +00001561 /* Like optimization range constraints always occur in pairs */
1562 assert( (pRangeStart->wtFlags & TERM_LIKEOPT)==0 ||
1563 (pLoop->wsFlags & WHERE_TOP_LIMIT)!=0 );
1564 }
1565 if( pLoop->wsFlags & WHERE_TOP_LIMIT ){
1566 pRangeEnd = pLoop->aLTerm[j++];
dan71c57db2016-07-09 20:23:55 +00001567 nExtraReg = MAX(nExtraReg, pLoop->u.btree.nTop);
drh41d2e662015-12-01 21:23:07 +00001568#ifndef SQLITE_LIKE_DOESNT_MATCH_BLOBS
drh6f82e852015-06-06 20:12:09 +00001569 if( (pRangeEnd->wtFlags & TERM_LIKEOPT)!=0 ){
1570 assert( pRangeStart!=0 ); /* LIKE opt constraints */
1571 assert( pRangeStart->wtFlags & TERM_LIKEOPT ); /* occur in pairs */
drh44aebff2016-05-02 10:25:42 +00001572 pLevel->iLikeRepCntr = (u32)++pParse->nMem;
1573 sqlite3VdbeAddOp2(v, OP_Integer, 1, (int)pLevel->iLikeRepCntr);
drh6f82e852015-06-06 20:12:09 +00001574 VdbeComment((v, "LIKE loop counter"));
1575 pLevel->addrLikeRep = sqlite3VdbeCurrentAddr(v);
drh44aebff2016-05-02 10:25:42 +00001576 /* iLikeRepCntr actually stores 2x the counter register number. The
1577 ** bottom bit indicates whether the search order is ASC or DESC. */
1578 testcase( bRev );
1579 testcase( pIdx->aSortOrder[nEq]==SQLITE_SO_DESC );
1580 assert( (bRev & ~1)==0 );
1581 pLevel->iLikeRepCntr <<=1;
1582 pLevel->iLikeRepCntr |= bRev ^ (pIdx->aSortOrder[nEq]==SQLITE_SO_DESC);
drh6f82e852015-06-06 20:12:09 +00001583 }
drh41d2e662015-12-01 21:23:07 +00001584#endif
drh48590fc2016-10-10 13:29:15 +00001585 if( pRangeStart==0 ){
1586 j = pIdx->aiColumn[nEq];
1587 if( (j>=0 && pIdx->pTable->aCol[j].notNull==0) || j==XN_EXPR ){
1588 bSeekPastNull = 1;
1589 }
drh6f82e852015-06-06 20:12:09 +00001590 }
1591 }
1592 assert( pRangeEnd==0 || (pRangeEnd->wtFlags & TERM_VNULL)==0 );
1593
drh6f82e852015-06-06 20:12:09 +00001594 /* If we are doing a reverse order scan on an ascending index, or
1595 ** a forward order scan on a descending index, interchange the
1596 ** start and end terms (pRangeStart and pRangeEnd).
1597 */
1598 if( (nEq<pIdx->nKeyCol && bRev==(pIdx->aSortOrder[nEq]==SQLITE_SO_ASC))
1599 || (bRev && pIdx->nKeyCol==nEq)
1600 ){
1601 SWAP(WhereTerm *, pRangeEnd, pRangeStart);
1602 SWAP(u8, bSeekPastNull, bStopAtNull);
dan71c57db2016-07-09 20:23:55 +00001603 SWAP(u8, nBtm, nTop);
drh6f82e852015-06-06 20:12:09 +00001604 }
1605
drhbcf40a72015-08-18 15:58:05 +00001606 /* Generate code to evaluate all constraint terms using == or IN
1607 ** and store the values of those terms in an array of registers
1608 ** starting at regBase.
1609 */
danb324cf72016-06-17 14:33:32 +00001610 codeCursorHint(pTabItem, pWInfo, pLevel, pRangeEnd);
drhbcf40a72015-08-18 15:58:05 +00001611 regBase = codeAllEqualityTerms(pParse,pLevel,bRev,nExtraReg,&zStartAff);
1612 assert( zStartAff==0 || sqlite3Strlen30(zStartAff)>=nEq );
danb7ca2172016-08-26 17:54:46 +00001613 if( zStartAff && nTop ){
1614 zEndAff = sqlite3DbStrDup(db, &zStartAff[nEq]);
1615 }
drhbcf40a72015-08-18 15:58:05 +00001616 addrNxt = pLevel->addrNxt;
1617
drh6f82e852015-06-06 20:12:09 +00001618 testcase( pRangeStart && (pRangeStart->eOperator & WO_LE)!=0 );
1619 testcase( pRangeStart && (pRangeStart->eOperator & WO_GE)!=0 );
1620 testcase( pRangeEnd && (pRangeEnd->eOperator & WO_LE)!=0 );
1621 testcase( pRangeEnd && (pRangeEnd->eOperator & WO_GE)!=0 );
1622 startEq = !pRangeStart || pRangeStart->eOperator & (WO_LE|WO_GE);
1623 endEq = !pRangeEnd || pRangeEnd->eOperator & (WO_LE|WO_GE);
1624 start_constraints = pRangeStart || nEq>0;
1625
1626 /* Seek the index cursor to the start of the range. */
1627 nConstraint = nEq;
1628 if( pRangeStart ){
1629 Expr *pRight = pRangeStart->pExpr->pRight;
dan71c57db2016-07-09 20:23:55 +00001630 codeExprOrVector(pParse, pRight, regBase+nEq, nBtm);
drh6f82e852015-06-06 20:12:09 +00001631 whereLikeOptimizationStringFixup(v, pLevel, pRangeStart);
1632 if( (pRangeStart->wtFlags & TERM_VNULL)==0
1633 && sqlite3ExprCanBeNull(pRight)
1634 ){
1635 sqlite3VdbeAddOp2(v, OP_IsNull, regBase+nEq, addrNxt);
1636 VdbeCoverage(v);
1637 }
1638 if( zStartAff ){
drhe3c6b612016-10-05 20:10:32 +00001639 updateRangeAffinityStr(pRight, nBtm, &zStartAff[nEq]);
drh6f82e852015-06-06 20:12:09 +00001640 }
dan71c57db2016-07-09 20:23:55 +00001641 nConstraint += nBtm;
drh6f82e852015-06-06 20:12:09 +00001642 testcase( pRangeStart->wtFlags & TERM_VIRTUAL );
dan625015e2016-07-30 16:39:28 +00001643 if( sqlite3ExprIsVector(pRight)==0 ){
dan71c57db2016-07-09 20:23:55 +00001644 disableTerm(pLevel, pRangeStart);
1645 }else{
1646 startEq = 1;
1647 }
drh426f4ab2016-07-26 04:31:14 +00001648 bSeekPastNull = 0;
drh6f82e852015-06-06 20:12:09 +00001649 }else if( bSeekPastNull ){
1650 sqlite3VdbeAddOp2(v, OP_Null, 0, regBase+nEq);
1651 nConstraint++;
1652 startEq = 0;
1653 start_constraints = 1;
1654 }
1655 codeApplyAffinity(pParse, regBase, nConstraint - bSeekPastNull, zStartAff);
drh0bf2ad62016-02-22 21:19:54 +00001656 if( pLoop->nSkip>0 && nConstraint==pLoop->nSkip ){
1657 /* The skip-scan logic inside the call to codeAllEqualityConstraints()
1658 ** above has already left the cursor sitting on the correct row,
1659 ** so no further seeking is needed */
1660 }else{
drha6d2f8e2016-02-22 20:52:26 +00001661 op = aStartOp[(start_constraints<<2) + (startEq<<1) + bRev];
1662 assert( op!=0 );
1663 sqlite3VdbeAddOp4Int(v, op, iIdxCur, addrNxt, regBase, nConstraint);
1664 VdbeCoverage(v);
1665 VdbeCoverageIf(v, op==OP_Rewind); testcase( op==OP_Rewind );
1666 VdbeCoverageIf(v, op==OP_Last); testcase( op==OP_Last );
1667 VdbeCoverageIf(v, op==OP_SeekGT); testcase( op==OP_SeekGT );
1668 VdbeCoverageIf(v, op==OP_SeekGE); testcase( op==OP_SeekGE );
1669 VdbeCoverageIf(v, op==OP_SeekLE); testcase( op==OP_SeekLE );
1670 VdbeCoverageIf(v, op==OP_SeekLT); testcase( op==OP_SeekLT );
1671 }
drh0bf2ad62016-02-22 21:19:54 +00001672
drh6f82e852015-06-06 20:12:09 +00001673 /* Load the value for the inequality constraint at the end of the
1674 ** range (if any).
1675 */
1676 nConstraint = nEq;
1677 if( pRangeEnd ){
1678 Expr *pRight = pRangeEnd->pExpr->pRight;
1679 sqlite3ExprCacheRemove(pParse, regBase+nEq, 1);
dan71c57db2016-07-09 20:23:55 +00001680 codeExprOrVector(pParse, pRight, regBase+nEq, nTop);
drh6f82e852015-06-06 20:12:09 +00001681 whereLikeOptimizationStringFixup(v, pLevel, pRangeEnd);
1682 if( (pRangeEnd->wtFlags & TERM_VNULL)==0
1683 && sqlite3ExprCanBeNull(pRight)
1684 ){
1685 sqlite3VdbeAddOp2(v, OP_IsNull, regBase+nEq, addrNxt);
1686 VdbeCoverage(v);
1687 }
drh0c36fca2016-08-26 18:17:08 +00001688 if( zEndAff ){
drhe3c6b612016-10-05 20:10:32 +00001689 updateRangeAffinityStr(pRight, nTop, zEndAff);
drh0c36fca2016-08-26 18:17:08 +00001690 codeApplyAffinity(pParse, regBase+nEq, nTop, zEndAff);
1691 }else{
1692 assert( pParse->db->mallocFailed );
1693 }
dan71c57db2016-07-09 20:23:55 +00001694 nConstraint += nTop;
drh6f82e852015-06-06 20:12:09 +00001695 testcase( pRangeEnd->wtFlags & TERM_VIRTUAL );
dan71c57db2016-07-09 20:23:55 +00001696
dan625015e2016-07-30 16:39:28 +00001697 if( sqlite3ExprIsVector(pRight)==0 ){
dan71c57db2016-07-09 20:23:55 +00001698 disableTerm(pLevel, pRangeEnd);
1699 }else{
1700 endEq = 1;
1701 }
drh6f82e852015-06-06 20:12:09 +00001702 }else if( bStopAtNull ){
1703 sqlite3VdbeAddOp2(v, OP_Null, 0, regBase+nEq);
drh472e41e2017-12-13 18:01:52 +00001704 sqlite3ExprCacheRemove(pParse, regBase+nEq, 1);
drh6f82e852015-06-06 20:12:09 +00001705 endEq = 0;
1706 nConstraint++;
1707 }
1708 sqlite3DbFree(db, zStartAff);
danb7ca2172016-08-26 17:54:46 +00001709 sqlite3DbFree(db, zEndAff);
drh6f82e852015-06-06 20:12:09 +00001710
1711 /* Top of the loop body */
1712 pLevel->p2 = sqlite3VdbeCurrentAddr(v);
1713
1714 /* Check if the index cursor is past the end of the range. */
1715 if( nConstraint ){
1716 op = aEndOp[bRev*2 + endEq];
1717 sqlite3VdbeAddOp4Int(v, op, iIdxCur, addrNxt, regBase, nConstraint);
1718 testcase( op==OP_IdxGT ); VdbeCoverageIf(v, op==OP_IdxGT );
1719 testcase( op==OP_IdxGE ); VdbeCoverageIf(v, op==OP_IdxGE );
1720 testcase( op==OP_IdxLT ); VdbeCoverageIf(v, op==OP_IdxLT );
1721 testcase( op==OP_IdxLE ); VdbeCoverageIf(v, op==OP_IdxLE );
1722 }
1723
1724 /* Seek the table cursor, if required */
drh6f82e852015-06-06 20:12:09 +00001725 if( omitTable ){
1726 /* pIdx is a covering index. No need to access the main table. */
1727 }else if( HasRowid(pIdx->pTable) ){
danf64ece12017-01-28 19:45:34 +00001728 if( (pWInfo->wctrlFlags & WHERE_SEEK_TABLE) || (
1729 (pWInfo->wctrlFlags & WHERE_SEEK_UNIQ_TABLE)
1730 && (pWInfo->eOnePass==ONEPASS_SINGLE)
1731 )){
drh784c1b92016-01-30 16:59:56 +00001732 iRowidReg = ++pParse->nMem;
1733 sqlite3VdbeAddOp2(v, OP_IdxRowid, iIdxCur, iRowidReg);
1734 sqlite3ExprCacheStore(pParse, iCur, -1, iRowidReg);
danc6157e12015-09-14 09:23:47 +00001735 sqlite3VdbeAddOp3(v, OP_NotExists, iCur, 0, iRowidReg);
drh66336f32015-09-14 14:08:25 +00001736 VdbeCoverage(v);
danc6157e12015-09-14 09:23:47 +00001737 }else{
drh784c1b92016-01-30 16:59:56 +00001738 codeDeferredSeek(pWInfo, pIdx, iCur, iIdxCur);
danc6157e12015-09-14 09:23:47 +00001739 }
drh6f82e852015-06-06 20:12:09 +00001740 }else if( iCur!=iIdxCur ){
1741 Index *pPk = sqlite3PrimaryKeyIndex(pIdx->pTable);
1742 iRowidReg = sqlite3GetTempRange(pParse, pPk->nKeyCol);
1743 for(j=0; j<pPk->nKeyCol; j++){
1744 k = sqlite3ColumnOfIndex(pIdx, pPk->aiColumn[j]);
1745 sqlite3VdbeAddOp3(v, OP_Column, iIdxCur, k, iRowidReg+j);
1746 }
1747 sqlite3VdbeAddOp4Int(v, OP_NotFound, iCur, addrCont,
1748 iRowidReg, pPk->nKeyCol); VdbeCoverage(v);
1749 }
1750
drheac5fc02017-04-11 01:01:27 +00001751 /* If pIdx is an index on one or more expressions, then look through
1752 ** all the expressions in pWInfo and try to transform matching expressions
1753 ** into reference to index columns.
dan4da04f72018-04-24 14:05:14 +00001754 **
1755 ** Do not do this for the RHS of a LEFT JOIN. This is because the
1756 ** expression may be evaluated after OP_NullRow has been executed on
1757 ** the cursor. In this case it is important to do the full evaluation,
1758 ** as the result of the expression may not be NULL, even if all table
drh5776c132018-04-24 14:18:49 +00001759 ** column values are. https://www.sqlite.org/src/info/7fa8049685b50b5a
drheac5fc02017-04-11 01:01:27 +00001760 */
dan4da04f72018-04-24 14:05:14 +00001761 if( pLevel->iLeftJoin==0 ){
1762 whereIndexExprTrans(pIdx, iCur, iIdxCur, pWInfo);
1763 }
drhaca19e12017-04-07 19:41:31 +00001764
dan71c57db2016-07-09 20:23:55 +00001765 /* Record the instruction used to terminate the loop. */
drh6f82e852015-06-06 20:12:09 +00001766 if( pLoop->wsFlags & WHERE_ONEROW ){
1767 pLevel->op = OP_Noop;
1768 }else if( bRev ){
1769 pLevel->op = OP_Prev;
1770 }else{
1771 pLevel->op = OP_Next;
1772 }
1773 pLevel->p1 = iIdxCur;
1774 pLevel->p3 = (pLoop->wsFlags&WHERE_UNQ_WANTED)!=0 ? 1:0;
1775 if( (pLoop->wsFlags & WHERE_CONSTRAINT)==0 ){
1776 pLevel->p5 = SQLITE_STMTSTATUS_FULLSCAN_STEP;
1777 }else{
1778 assert( pLevel->p5==0 );
1779 }
dan6f654a42017-04-28 19:59:55 +00001780 if( omitTable ) pIdx = 0;
drh6f82e852015-06-06 20:12:09 +00001781 }else
1782
1783#ifndef SQLITE_OMIT_OR_OPTIMIZATION
1784 if( pLoop->wsFlags & WHERE_MULTI_OR ){
1785 /* Case 5: Two or more separately indexed terms connected by OR
1786 **
1787 ** Example:
1788 **
1789 ** CREATE TABLE t1(a,b,c,d);
1790 ** CREATE INDEX i1 ON t1(a);
1791 ** CREATE INDEX i2 ON t1(b);
1792 ** CREATE INDEX i3 ON t1(c);
1793 **
1794 ** SELECT * FROM t1 WHERE a=5 OR b=7 OR (c=11 AND d=13)
1795 **
1796 ** In the example, there are three indexed terms connected by OR.
1797 ** The top of the loop looks like this:
1798 **
1799 ** Null 1 # Zero the rowset in reg 1
1800 **
1801 ** Then, for each indexed term, the following. The arguments to
1802 ** RowSetTest are such that the rowid of the current row is inserted
1803 ** into the RowSet. If it is already present, control skips the
1804 ** Gosub opcode and jumps straight to the code generated by WhereEnd().
1805 **
1806 ** sqlite3WhereBegin(<term>)
1807 ** RowSetTest # Insert rowid into rowset
1808 ** Gosub 2 A
1809 ** sqlite3WhereEnd()
1810 **
1811 ** Following the above, code to terminate the loop. Label A, the target
1812 ** of the Gosub above, jumps to the instruction right after the Goto.
1813 **
1814 ** Null 1 # Zero the rowset in reg 1
1815 ** Goto B # The loop is finished.
1816 **
1817 ** A: <loop body> # Return data, whatever.
1818 **
1819 ** Return 2 # Jump back to the Gosub
1820 **
1821 ** B: <after the loop>
1822 **
1823 ** Added 2014-05-26: If the table is a WITHOUT ROWID table, then
1824 ** use an ephemeral index instead of a RowSet to record the primary
1825 ** keys of the rows we have already seen.
1826 **
1827 */
1828 WhereClause *pOrWc; /* The OR-clause broken out into subterms */
1829 SrcList *pOrTab; /* Shortened table list or OR-clause generation */
1830 Index *pCov = 0; /* Potential covering index (or NULL) */
1831 int iCovCur = pParse->nTab++; /* Cursor used for index scans (if any) */
1832
1833 int regReturn = ++pParse->nMem; /* Register used with OP_Gosub */
1834 int regRowset = 0; /* Register for RowSet object */
1835 int regRowid = 0; /* Register holding rowid */
1836 int iLoopBody = sqlite3VdbeMakeLabel(v); /* Start of loop body */
1837 int iRetInit; /* Address of regReturn init */
1838 int untestedTerms = 0; /* Some terms not completely tested */
1839 int ii; /* Loop counter */
1840 u16 wctrlFlags; /* Flags for sub-WHERE clause */
1841 Expr *pAndExpr = 0; /* An ".. AND (...)" expression */
1842 Table *pTab = pTabItem->pTab;
dan145b4ea2016-07-29 18:12:12 +00001843
drh6f82e852015-06-06 20:12:09 +00001844 pTerm = pLoop->aLTerm[0];
1845 assert( pTerm!=0 );
1846 assert( pTerm->eOperator & WO_OR );
1847 assert( (pTerm->wtFlags & TERM_ORINFO)!=0 );
1848 pOrWc = &pTerm->u.pOrInfo->wc;
1849 pLevel->op = OP_Return;
1850 pLevel->p1 = regReturn;
1851
1852 /* Set up a new SrcList in pOrTab containing the table being scanned
1853 ** by this loop in the a[0] slot and all notReady tables in a[1..] slots.
1854 ** This becomes the SrcList in the recursive call to sqlite3WhereBegin().
1855 */
1856 if( pWInfo->nLevel>1 ){
1857 int nNotReady; /* The number of notReady tables */
1858 struct SrcList_item *origSrc; /* Original list of tables */
1859 nNotReady = pWInfo->nLevel - iLevel - 1;
1860 pOrTab = sqlite3StackAllocRaw(db,
1861 sizeof(*pOrTab)+ nNotReady*sizeof(pOrTab->a[0]));
1862 if( pOrTab==0 ) return notReady;
1863 pOrTab->nAlloc = (u8)(nNotReady + 1);
1864 pOrTab->nSrc = pOrTab->nAlloc;
1865 memcpy(pOrTab->a, pTabItem, sizeof(*pTabItem));
1866 origSrc = pWInfo->pTabList->a;
1867 for(k=1; k<=nNotReady; k++){
1868 memcpy(&pOrTab->a[k], &origSrc[pLevel[k].iFrom], sizeof(pOrTab->a[k]));
1869 }
1870 }else{
1871 pOrTab = pWInfo->pTabList;
1872 }
1873
1874 /* Initialize the rowset register to contain NULL. An SQL NULL is
1875 ** equivalent to an empty rowset. Or, create an ephemeral index
1876 ** capable of holding primary keys in the case of a WITHOUT ROWID.
1877 **
1878 ** Also initialize regReturn to contain the address of the instruction
1879 ** immediately following the OP_Return at the bottom of the loop. This
1880 ** is required in a few obscure LEFT JOIN cases where control jumps
1881 ** over the top of the loop into the body of it. In this case the
1882 ** correct response for the end-of-loop code (the OP_Return) is to
1883 ** fall through to the next instruction, just as an OP_Next does if
1884 ** called on an uninitialized cursor.
1885 */
1886 if( (pWInfo->wctrlFlags & WHERE_DUPLICATES_OK)==0 ){
1887 if( HasRowid(pTab) ){
1888 regRowset = ++pParse->nMem;
1889 sqlite3VdbeAddOp2(v, OP_Null, 0, regRowset);
1890 }else{
1891 Index *pPk = sqlite3PrimaryKeyIndex(pTab);
1892 regRowset = pParse->nTab++;
1893 sqlite3VdbeAddOp2(v, OP_OpenEphemeral, regRowset, pPk->nKeyCol);
1894 sqlite3VdbeSetP4KeyInfo(pParse, pPk);
1895 }
1896 regRowid = ++pParse->nMem;
1897 }
1898 iRetInit = sqlite3VdbeAddOp2(v, OP_Integer, 0, regReturn);
1899
1900 /* If the original WHERE clause is z of the form: (x1 OR x2 OR ...) AND y
1901 ** Then for every term xN, evaluate as the subexpression: xN AND z
1902 ** That way, terms in y that are factored into the disjunction will
1903 ** be picked up by the recursive calls to sqlite3WhereBegin() below.
1904 **
1905 ** Actually, each subexpression is converted to "xN AND w" where w is
1906 ** the "interesting" terms of z - terms that did not originate in the
1907 ** ON or USING clause of a LEFT JOIN, and terms that are usable as
1908 ** indices.
1909 **
1910 ** This optimization also only applies if the (x1 OR x2 OR ...) term
1911 ** is not contained in the ON clause of a LEFT JOIN.
1912 ** See ticket http://www.sqlite.org/src/info/f2369304e4
1913 */
1914 if( pWC->nTerm>1 ){
1915 int iTerm;
1916 for(iTerm=0; iTerm<pWC->nTerm; iTerm++){
1917 Expr *pExpr = pWC->a[iTerm].pExpr;
1918 if( &pWC->a[iTerm] == pTerm ) continue;
drh3b83f0c2016-01-29 16:57:06 +00001919 testcase( pWC->a[iTerm].wtFlags & TERM_VIRTUAL );
1920 testcase( pWC->a[iTerm].wtFlags & TERM_CODED );
1921 if( (pWC->a[iTerm].wtFlags & (TERM_VIRTUAL|TERM_CODED))!=0 ) continue;
drh6f82e852015-06-06 20:12:09 +00001922 if( (pWC->a[iTerm].eOperator & WO_ALL)==0 ) continue;
1923 testcase( pWC->a[iTerm].wtFlags & TERM_ORINFO );
1924 pExpr = sqlite3ExprDup(db, pExpr, 0);
1925 pAndExpr = sqlite3ExprAnd(db, pAndExpr, pExpr);
1926 }
1927 if( pAndExpr ){
drhabfd35e2016-12-06 22:47:23 +00001928 pAndExpr = sqlite3PExpr(pParse, TK_AND|TKFLG_DONTFOLD, 0, pAndExpr);
drh6f82e852015-06-06 20:12:09 +00001929 }
1930 }
1931
1932 /* Run a separate WHERE clause for each term of the OR clause. After
1933 ** eliminating duplicates from other WHERE clauses, the action for each
1934 ** sub-WHERE clause is to to invoke the main loop body as a subroutine.
1935 */
drhce943bc2016-05-19 18:56:33 +00001936 wctrlFlags = WHERE_OR_SUBCLAUSE | (pWInfo->wctrlFlags & WHERE_SEEK_TABLE);
drh5d72d922018-05-04 00:39:43 +00001937 ExplainQueryPlan((pParse, 1, "MULTI-INDEX OR"));
drh6f82e852015-06-06 20:12:09 +00001938 for(ii=0; ii<pOrWc->nTerm; ii++){
1939 WhereTerm *pOrTerm = &pOrWc->a[ii];
1940 if( pOrTerm->leftCursor==iCur || (pOrTerm->eOperator & WO_AND)!=0 ){
1941 WhereInfo *pSubWInfo; /* Info for single OR-term scan */
1942 Expr *pOrExpr = pOrTerm->pExpr; /* Current OR clause term */
drh728e0f92015-10-10 14:41:28 +00001943 int jmp1 = 0; /* Address of jump operation */
dan820fcd22018-04-24 18:53:24 +00001944 assert( (pTabItem[0].fg.jointype & JT_LEFT)==0
1945 || ExprHasProperty(pOrExpr, EP_FromJoin)
1946 );
1947 if( pAndExpr ){
drh6f82e852015-06-06 20:12:09 +00001948 pAndExpr->pLeft = pOrExpr;
1949 pOrExpr = pAndExpr;
1950 }
1951 /* Loop through table entries that match term pOrTerm. */
1952 WHERETRACE(0xffff, ("Subplan for OR-clause:\n"));
1953 pSubWInfo = sqlite3WhereBegin(pParse, pOrTab, pOrExpr, 0, 0,
1954 wctrlFlags, iCovCur);
1955 assert( pSubWInfo || pParse->nErr || db->mallocFailed );
1956 if( pSubWInfo ){
1957 WhereLoop *pSubLoop;
1958 int addrExplain = sqlite3WhereExplainOneScan(
drhe2188f02018-05-07 11:37:34 +00001959 pParse, pOrTab, &pSubWInfo->a[0], 0
drh6f82e852015-06-06 20:12:09 +00001960 );
1961 sqlite3WhereAddScanStatus(v, pOrTab, &pSubWInfo->a[0], addrExplain);
1962
1963 /* This is the sub-WHERE clause body. First skip over
1964 ** duplicate rows from prior sub-WHERE clauses, and record the
1965 ** rowid (or PRIMARY KEY) for the current row so that the same
1966 ** row will be skipped in subsequent sub-WHERE clauses.
1967 */
1968 if( (pWInfo->wctrlFlags & WHERE_DUPLICATES_OK)==0 ){
1969 int r;
1970 int iSet = ((ii==pOrWc->nTerm-1)?-1:ii);
1971 if( HasRowid(pTab) ){
1972 r = sqlite3ExprCodeGetColumn(pParse, pTab, -1, iCur, regRowid, 0);
drh728e0f92015-10-10 14:41:28 +00001973 jmp1 = sqlite3VdbeAddOp4Int(v, OP_RowSetTest, regRowset, 0,
1974 r,iSet);
drh6f82e852015-06-06 20:12:09 +00001975 VdbeCoverage(v);
1976 }else{
1977 Index *pPk = sqlite3PrimaryKeyIndex(pTab);
1978 int nPk = pPk->nKeyCol;
1979 int iPk;
1980
1981 /* Read the PK into an array of temp registers. */
1982 r = sqlite3GetTempRange(pParse, nPk);
1983 for(iPk=0; iPk<nPk; iPk++){
1984 int iCol = pPk->aiColumn[iPk];
drhce78bc62015-10-15 19:21:51 +00001985 sqlite3ExprCodeGetColumnToReg(pParse, pTab, iCol, iCur, r+iPk);
drh6f82e852015-06-06 20:12:09 +00001986 }
1987
1988 /* Check if the temp table already contains this key. If so,
1989 ** the row has already been included in the result set and
1990 ** can be ignored (by jumping past the Gosub below). Otherwise,
1991 ** insert the key into the temp table and proceed with processing
1992 ** the row.
1993 **
1994 ** Use some of the same optimizations as OP_RowSetTest: If iSet
1995 ** is zero, assume that the key cannot already be present in
1996 ** the temp table. And if iSet is -1, assume that there is no
1997 ** need to insert the key into the temp table, as it will never
1998 ** be tested for. */
1999 if( iSet ){
drh728e0f92015-10-10 14:41:28 +00002000 jmp1 = sqlite3VdbeAddOp4Int(v, OP_Found, regRowset, 0, r, nPk);
drh6f82e852015-06-06 20:12:09 +00002001 VdbeCoverage(v);
2002 }
2003 if( iSet>=0 ){
2004 sqlite3VdbeAddOp3(v, OP_MakeRecord, r, nPk, regRowid);
drh9b4eaeb2016-11-09 00:10:33 +00002005 sqlite3VdbeAddOp4Int(v, OP_IdxInsert, regRowset, regRowid,
2006 r, nPk);
drh6f82e852015-06-06 20:12:09 +00002007 if( iSet ) sqlite3VdbeChangeP5(v, OPFLAG_USESEEKRESULT);
2008 }
2009
2010 /* Release the array of temp registers */
2011 sqlite3ReleaseTempRange(pParse, r, nPk);
2012 }
2013 }
2014
2015 /* Invoke the main loop body as a subroutine */
2016 sqlite3VdbeAddOp2(v, OP_Gosub, regReturn, iLoopBody);
2017
2018 /* Jump here (skipping the main loop body subroutine) if the
2019 ** current sub-WHERE row is a duplicate from prior sub-WHEREs. */
drh728e0f92015-10-10 14:41:28 +00002020 if( jmp1 ) sqlite3VdbeJumpHere(v, jmp1);
drh6f82e852015-06-06 20:12:09 +00002021
2022 /* The pSubWInfo->untestedTerms flag means that this OR term
2023 ** contained one or more AND term from a notReady table. The
2024 ** terms from the notReady table could not be tested and will
2025 ** need to be tested later.
2026 */
2027 if( pSubWInfo->untestedTerms ) untestedTerms = 1;
2028
2029 /* If all of the OR-connected terms are optimized using the same
2030 ** index, and the index is opened using the same cursor number
2031 ** by each call to sqlite3WhereBegin() made by this loop, it may
2032 ** be possible to use that index as a covering index.
2033 **
2034 ** If the call to sqlite3WhereBegin() above resulted in a scan that
2035 ** uses an index, and this is either the first OR-connected term
2036 ** processed or the index is the same as that used by all previous
2037 ** terms, set pCov to the candidate covering index. Otherwise, set
2038 ** pCov to NULL to indicate that no candidate covering index will
2039 ** be available.
2040 */
2041 pSubLoop = pSubWInfo->a[0].pWLoop;
2042 assert( (pSubLoop->wsFlags & WHERE_AUTO_INDEX)==0 );
2043 if( (pSubLoop->wsFlags & WHERE_INDEXED)!=0
2044 && (ii==0 || pSubLoop->u.btree.pIndex==pCov)
2045 && (HasRowid(pTab) || !IsPrimaryKeyIndex(pSubLoop->u.btree.pIndex))
2046 ){
2047 assert( pSubWInfo->a[0].iIdxCur==iCovCur );
2048 pCov = pSubLoop->u.btree.pIndex;
drh6f82e852015-06-06 20:12:09 +00002049 }else{
2050 pCov = 0;
2051 }
2052
2053 /* Finish the loop through table entries that match term pOrTerm. */
2054 sqlite3WhereEnd(pSubWInfo);
2055 }
2056 }
2057 }
drh5d72d922018-05-04 00:39:43 +00002058 ExplainQueryPlanPop(pParse);
drh6f82e852015-06-06 20:12:09 +00002059 pLevel->u.pCovidx = pCov;
2060 if( pCov ) pLevel->iIdxCur = iCovCur;
2061 if( pAndExpr ){
2062 pAndExpr->pLeft = 0;
2063 sqlite3ExprDelete(db, pAndExpr);
2064 }
2065 sqlite3VdbeChangeP1(v, iRetInit, sqlite3VdbeCurrentAddr(v));
drh076e85f2015-09-03 13:46:12 +00002066 sqlite3VdbeGoto(v, pLevel->addrBrk);
drh6f82e852015-06-06 20:12:09 +00002067 sqlite3VdbeResolveLabel(v, iLoopBody);
2068
2069 if( pWInfo->nLevel>1 ) sqlite3StackFree(db, pOrTab);
2070 if( !untestedTerms ) disableTerm(pLevel, pTerm);
2071 }else
2072#endif /* SQLITE_OMIT_OR_OPTIMIZATION */
2073
2074 {
2075 /* Case 6: There is no usable index. We must do a complete
2076 ** scan of the entire table.
2077 */
2078 static const u8 aStep[] = { OP_Next, OP_Prev };
2079 static const u8 aStart[] = { OP_Rewind, OP_Last };
2080 assert( bRev==0 || bRev==1 );
drh8a48b9c2015-08-19 15:20:00 +00002081 if( pTabItem->fg.isRecursive ){
drh6f82e852015-06-06 20:12:09 +00002082 /* Tables marked isRecursive have only a single row that is stored in
2083 ** a pseudo-cursor. No need to Rewind or Next such cursors. */
2084 pLevel->op = OP_Noop;
2085 }else{
danb324cf72016-06-17 14:33:32 +00002086 codeCursorHint(pTabItem, pWInfo, pLevel, 0);
drh6f82e852015-06-06 20:12:09 +00002087 pLevel->op = aStep[bRev];
2088 pLevel->p1 = iCur;
drh3a3b4202017-02-15 22:36:15 +00002089 pLevel->p2 = 1 + sqlite3VdbeAddOp2(v, aStart[bRev], iCur, addrHalt);
drh6f82e852015-06-06 20:12:09 +00002090 VdbeCoverageIf(v, bRev==0);
2091 VdbeCoverageIf(v, bRev!=0);
2092 pLevel->p5 = SQLITE_STMTSTATUS_FULLSCAN_STEP;
2093 }
2094 }
2095
2096#ifdef SQLITE_ENABLE_STMT_SCANSTATUS
2097 pLevel->addrVisit = sqlite3VdbeCurrentAddr(v);
2098#endif
2099
2100 /* Insert code to test every subexpression that can be completely
2101 ** computed using the current set of tables.
dan6f654a42017-04-28 19:59:55 +00002102 **
danebc63012017-07-10 14:33:00 +00002103 ** This loop may run between one and three times, depending on the
2104 ** constraints to be generated. The value of stack variable iLoop
2105 ** determines the constraints coded by each iteration, as follows:
2106 **
2107 ** iLoop==1: Code only expressions that are entirely covered by pIdx.
2108 ** iLoop==2: Code remaining expressions that do not contain correlated
2109 ** sub-queries.
2110 ** iLoop==3: Code all remaining expressions.
2111 **
2112 ** An effort is made to skip unnecessary iterations of the loop.
drh6ab3eb52017-04-29 14:56:55 +00002113 */
danebc63012017-07-10 14:33:00 +00002114 iLoop = (pIdx ? 1 : 2);
drh6ab3eb52017-04-29 14:56:55 +00002115 do{
danebc63012017-07-10 14:33:00 +00002116 int iNext = 0; /* Next value for iLoop */
dan6f654a42017-04-28 19:59:55 +00002117 for(pTerm=pWC->a, j=pWC->nTerm; j>0; j--, pTerm++){
2118 Expr *pE;
2119 int skipLikeAddr = 0;
2120 testcase( pTerm->wtFlags & TERM_VIRTUAL );
2121 testcase( pTerm->wtFlags & TERM_CODED );
2122 if( pTerm->wtFlags & (TERM_VIRTUAL|TERM_CODED) ) continue;
2123 if( (pTerm->prereqAll & pLevel->notReady)!=0 ){
2124 testcase( pWInfo->untestedTerms==0
2125 && (pWInfo->wctrlFlags & WHERE_OR_SUBCLAUSE)!=0 );
2126 pWInfo->untestedTerms = 1;
2127 continue;
2128 }
2129 pE = pTerm->pExpr;
2130 assert( pE!=0 );
dan820fcd22018-04-24 18:53:24 +00002131 if( (pTabItem->fg.jointype&JT_LEFT) && !ExprHasProperty(pE,EP_FromJoin) ){
dan6f654a42017-04-28 19:59:55 +00002132 continue;
2133 }
danebc63012017-07-10 14:33:00 +00002134
dan8674ec52017-07-10 14:39:42 +00002135 if( iLoop==1 && !sqlite3ExprCoveredByIndex(pE, pLevel->iTabCur, pIdx) ){
danebc63012017-07-10 14:33:00 +00002136 iNext = 2;
dan6f654a42017-04-28 19:59:55 +00002137 continue;
2138 }
dand3930b12017-07-10 15:17:30 +00002139 if( iLoop<3 && (pTerm->wtFlags & TERM_VARSELECT) ){
danebc63012017-07-10 14:33:00 +00002140 if( iNext==0 ) iNext = 3;
2141 continue;
2142 }
2143
drh4de33532018-04-02 00:16:36 +00002144 if( (pTerm->wtFlags & TERM_LIKECOND)!=0 ){
dan6f654a42017-04-28 19:59:55 +00002145 /* If the TERM_LIKECOND flag is set, that means that the range search
2146 ** is sufficient to guarantee that the LIKE operator is true, so we
2147 ** can skip the call to the like(A,B) function. But this only works
2148 ** for strings. So do not skip the call to the function on the pass
2149 ** that compares BLOBs. */
drh41d2e662015-12-01 21:23:07 +00002150#ifdef SQLITE_LIKE_DOESNT_MATCH_BLOBS
dan6f654a42017-04-28 19:59:55 +00002151 continue;
drh41d2e662015-12-01 21:23:07 +00002152#else
dan6f654a42017-04-28 19:59:55 +00002153 u32 x = pLevel->iLikeRepCntr;
drh4de33532018-04-02 00:16:36 +00002154 if( x>0 ){
2155 skipLikeAddr = sqlite3VdbeAddOp1(v, (x&1)?OP_IfNot:OP_If,(int)(x>>1));
2156 }
dan6f654a42017-04-28 19:59:55 +00002157 VdbeCoverage(v);
drh41d2e662015-12-01 21:23:07 +00002158#endif
dan6f654a42017-04-28 19:59:55 +00002159 }
drh66a0bf32017-07-10 16:38:14 +00002160#ifdef WHERETRACE_ENABLED /* 0xffff */
2161 if( sqlite3WhereTrace ){
2162 VdbeNoopComment((v, "WhereTerm[%d] (%p) priority=%d",
2163 pWC->nTerm-j, pTerm, iLoop));
2164 }
2165#endif
dan6f654a42017-04-28 19:59:55 +00002166 sqlite3ExprIfFalse(pParse, pE, addrCont, SQLITE_JUMPIFNULL);
2167 if( skipLikeAddr ) sqlite3VdbeJumpHere(v, skipLikeAddr);
2168 pTerm->wtFlags |= TERM_CODED;
drh6f82e852015-06-06 20:12:09 +00002169 }
danebc63012017-07-10 14:33:00 +00002170 iLoop = iNext;
2171 }while( iLoop>0 );
drh6f82e852015-06-06 20:12:09 +00002172
2173 /* Insert code to test for implied constraints based on transitivity
2174 ** of the "==" operator.
2175 **
2176 ** Example: If the WHERE clause contains "t1.a=t2.b" and "t2.b=123"
2177 ** and we are coding the t1 loop and the t2 loop has not yet coded,
2178 ** then we cannot use the "t1.a=t2.b" constraint, but we can code
2179 ** the implied "t1.a=123" constraint.
2180 */
2181 for(pTerm=pWC->a, j=pWC->nTerm; j>0; j--, pTerm++){
drhcb43a932016-10-03 01:21:51 +00002182 Expr *pE, sEAlt;
drh6f82e852015-06-06 20:12:09 +00002183 WhereTerm *pAlt;
2184 if( pTerm->wtFlags & (TERM_VIRTUAL|TERM_CODED) ) continue;
2185 if( (pTerm->eOperator & (WO_EQ|WO_IS))==0 ) continue;
2186 if( (pTerm->eOperator & WO_EQUIV)==0 ) continue;
2187 if( pTerm->leftCursor!=iCur ) continue;
2188 if( pLevel->iLeftJoin ) continue;
2189 pE = pTerm->pExpr;
2190 assert( !ExprHasProperty(pE, EP_FromJoin) );
2191 assert( (pTerm->prereqRight & pLevel->notReady)!=0 );
2192 pAlt = sqlite3WhereFindTerm(pWC, iCur, pTerm->u.leftColumn, notReady,
2193 WO_EQ|WO_IN|WO_IS, 0);
2194 if( pAlt==0 ) continue;
2195 if( pAlt->wtFlags & (TERM_CODED) ) continue;
dana916b572018-01-23 16:38:57 +00002196 if( (pAlt->eOperator & WO_IN)
2197 && (pAlt->pExpr->flags & EP_xIsSelect)
2198 && (pAlt->pExpr->x.pSelect->pEList->nExpr>1)
2199 ){
2200 continue;
2201 }
drh6f82e852015-06-06 20:12:09 +00002202 testcase( pAlt->eOperator & WO_EQ );
2203 testcase( pAlt->eOperator & WO_IS );
2204 testcase( pAlt->eOperator & WO_IN );
2205 VdbeModuleComment((v, "begin transitive constraint"));
drhcb43a932016-10-03 01:21:51 +00002206 sEAlt = *pAlt->pExpr;
2207 sEAlt.pLeft = pE->pLeft;
2208 sqlite3ExprIfFalse(pParse, &sEAlt, addrCont, SQLITE_JUMPIFNULL);
drh6f82e852015-06-06 20:12:09 +00002209 }
2210
2211 /* For a LEFT OUTER JOIN, generate code that will record the fact that
2212 ** at least one row of the right table has matched the left table.
2213 */
2214 if( pLevel->iLeftJoin ){
2215 pLevel->addrFirst = sqlite3VdbeCurrentAddr(v);
2216 sqlite3VdbeAddOp2(v, OP_Integer, 1, pLevel->iLeftJoin);
2217 VdbeComment((v, "record LEFT JOIN hit"));
2218 sqlite3ExprCacheClear(pParse);
2219 for(pTerm=pWC->a, j=0; j<pWC->nTerm; j++, pTerm++){
2220 testcase( pTerm->wtFlags & TERM_VIRTUAL );
2221 testcase( pTerm->wtFlags & TERM_CODED );
2222 if( pTerm->wtFlags & (TERM_VIRTUAL|TERM_CODED) ) continue;
2223 if( (pTerm->prereqAll & pLevel->notReady)!=0 ){
2224 assert( pWInfo->untestedTerms );
2225 continue;
2226 }
2227 assert( pTerm->pExpr );
2228 sqlite3ExprIfFalse(pParse, pTerm->pExpr, addrCont, SQLITE_JUMPIFNULL);
2229 pTerm->wtFlags |= TERM_CODED;
2230 }
2231 }
2232
2233 return pLevel->notReady;
2234}