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drh75897232000-05-29 14:26:00 +00001/*
drhb19a2bc2001-09-16 00:13:26 +00002** 2001 September 15
drh75897232000-05-29 14:26:00 +00003**
drhb19a2bc2001-09-16 00:13:26 +00004** The author disclaims copyright to this source code. In place of
5** a legal notice, here is a blessing:
drh75897232000-05-29 14:26:00 +00006**
drhb19a2bc2001-09-16 00:13:26 +00007** 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.
drh75897232000-05-29 14:26:00 +000010**
11*************************************************************************
12** This module contains C code that generates VDBE code used to process
drh909626d2008-05-30 14:58:37 +000013** the WHERE clause of SQL statements. This module is responsible for
drh51669862004-12-18 18:40:26 +000014** generating the code that loops through a table looking for applicable
15** rows. Indices are selected and used to speed the search when doing
16** so is applicable. Because this module is responsible for selecting
17** indices, you might also think of this module as the "query optimizer".
drh75897232000-05-29 14:26:00 +000018*/
19#include "sqliteInt.h"
20
drh7924f3e2011-02-09 03:04:27 +000021
22/*
drh51147ba2005-07-23 22:59:55 +000023** Trace output macros
24*/
25#if defined(SQLITE_TEST) || defined(SQLITE_DEBUG)
drhcef4fc82012-09-21 22:50:45 +000026/***/ int sqlite3WhereTrace = 0;
drhe8f52c52008-07-12 14:52:20 +000027#endif
drhcef4fc82012-09-21 22:50:45 +000028#if defined(SQLITE_DEBUG) \
29 && (defined(SQLITE_TEST) || defined(SQLITE_ENABLE_WHERETRACE))
mlcreech3a00f902008-03-04 17:45:01 +000030# define WHERETRACE(X) if(sqlite3WhereTrace) sqlite3DebugPrintf X
drh51147ba2005-07-23 22:59:55 +000031#else
drh4f0c5872007-03-26 22:05:01 +000032# define WHERETRACE(X)
drh51147ba2005-07-23 22:59:55 +000033#endif
34
drh0fcef5e2005-07-19 17:38:22 +000035/* Forward reference
36*/
37typedef struct WhereClause WhereClause;
drh111a6a72008-12-21 03:51:16 +000038typedef struct WhereMaskSet WhereMaskSet;
drh700a2262008-12-17 19:22:15 +000039typedef struct WhereOrInfo WhereOrInfo;
40typedef struct WhereAndInfo WhereAndInfo;
drh111a6a72008-12-21 03:51:16 +000041typedef struct WhereCost WhereCost;
drh0aa74ed2005-07-16 13:33:20 +000042
43/*
drh75897232000-05-29 14:26:00 +000044** The query generator uses an array of instances of this structure to
45** help it analyze the subexpressions of the WHERE clause. Each WHERE
drh61495262009-04-22 15:32:59 +000046** clause subexpression is separated from the others by AND operators,
47** usually, or sometimes subexpressions separated by OR.
drh51669862004-12-18 18:40:26 +000048**
drh0fcef5e2005-07-19 17:38:22 +000049** All WhereTerms are collected into a single WhereClause structure.
50** The following identity holds:
drh51669862004-12-18 18:40:26 +000051**
drh0fcef5e2005-07-19 17:38:22 +000052** WhereTerm.pWC->a[WhereTerm.idx] == WhereTerm
drh51669862004-12-18 18:40:26 +000053**
drh0fcef5e2005-07-19 17:38:22 +000054** When a term is of the form:
55**
56** X <op> <expr>
57**
58** where X is a column name and <op> is one of certain operators,
drh700a2262008-12-17 19:22:15 +000059** then WhereTerm.leftCursor and WhereTerm.u.leftColumn record the
60** cursor number and column number for X. WhereTerm.eOperator records
drh51147ba2005-07-23 22:59:55 +000061** the <op> using a bitmask encoding defined by WO_xxx below. The
62** use of a bitmask encoding for the operator allows us to search
63** quickly for terms that match any of several different operators.
drh0fcef5e2005-07-19 17:38:22 +000064**
drh700a2262008-12-17 19:22:15 +000065** A WhereTerm might also be two or more subterms connected by OR:
66**
67** (t1.X <op> <expr>) OR (t1.Y <op> <expr>) OR ....
68**
69** In this second case, wtFlag as the TERM_ORINFO set and eOperator==WO_OR
70** and the WhereTerm.u.pOrInfo field points to auxiliary information that
71** is collected about the
72**
73** If a term in the WHERE clause does not match either of the two previous
74** categories, then eOperator==0. The WhereTerm.pExpr field is still set
75** to the original subexpression content and wtFlags is set up appropriately
76** but no other fields in the WhereTerm object are meaningful.
77**
78** When eOperator!=0, prereqRight and prereqAll record sets of cursor numbers,
drh111a6a72008-12-21 03:51:16 +000079** but they do so indirectly. A single WhereMaskSet structure translates
drh51669862004-12-18 18:40:26 +000080** cursor number into bits and the translated bit is stored in the prereq
81** fields. The translation is used in order to maximize the number of
82** bits that will fit in a Bitmask. The VDBE cursor numbers might be
83** spread out over the non-negative integers. For example, the cursor
drh111a6a72008-12-21 03:51:16 +000084** numbers might be 3, 8, 9, 10, 20, 23, 41, and 45. The WhereMaskSet
drh51669862004-12-18 18:40:26 +000085** translates these sparse cursor numbers into consecutive integers
86** beginning with 0 in order to make the best possible use of the available
87** bits in the Bitmask. So, in the example above, the cursor numbers
88** would be mapped into integers 0 through 7.
drh6a1e0712008-12-05 15:24:15 +000089**
90** The number of terms in a join is limited by the number of bits
91** in prereqRight and prereqAll. The default is 64 bits, hence SQLite
92** is only able to process joins with 64 or fewer tables.
drh75897232000-05-29 14:26:00 +000093*/
drh0aa74ed2005-07-16 13:33:20 +000094typedef struct WhereTerm WhereTerm;
95struct WhereTerm {
drh165be382008-12-05 02:36:33 +000096 Expr *pExpr; /* Pointer to the subexpression that is this term */
drhec1724e2008-12-09 01:32:03 +000097 int iParent; /* Disable pWC->a[iParent] when this term disabled */
98 int leftCursor; /* Cursor number of X in "X <op> <expr>" */
drh700a2262008-12-17 19:22:15 +000099 union {
100 int leftColumn; /* Column number of X in "X <op> <expr>" */
drh7a5bcc02013-01-16 17:08:58 +0000101 WhereOrInfo *pOrInfo; /* Extra information if (eOperator & WO_OR)!=0 */
102 WhereAndInfo *pAndInfo; /* Extra information if (eOperator& WO_AND)!=0 */
drh700a2262008-12-17 19:22:15 +0000103 } u;
drhb52076c2006-01-23 13:22:09 +0000104 u16 eOperator; /* A WO_xx value describing <op> */
drh165be382008-12-05 02:36:33 +0000105 u8 wtFlags; /* TERM_xxx bit flags. See below */
drh45b1ee42005-08-02 17:48:22 +0000106 u8 nChild; /* Number of children that must disable us */
drh0fcef5e2005-07-19 17:38:22 +0000107 WhereClause *pWC; /* The clause this term is part of */
drh165be382008-12-05 02:36:33 +0000108 Bitmask prereqRight; /* Bitmask of tables used by pExpr->pRight */
109 Bitmask prereqAll; /* Bitmask of tables referenced by pExpr */
drh75897232000-05-29 14:26:00 +0000110};
111
112/*
drh165be382008-12-05 02:36:33 +0000113** Allowed values of WhereTerm.wtFlags
drh0aa74ed2005-07-16 13:33:20 +0000114*/
drh633e6d52008-07-28 19:34:53 +0000115#define TERM_DYNAMIC 0x01 /* Need to call sqlite3ExprDelete(db, pExpr) */
drh6c30be82005-07-29 15:10:17 +0000116#define TERM_VIRTUAL 0x02 /* Added by the optimizer. Do not code */
117#define TERM_CODED 0x04 /* This term is already coded */
drh45b1ee42005-08-02 17:48:22 +0000118#define TERM_COPIED 0x08 /* Has a child */
drh700a2262008-12-17 19:22:15 +0000119#define TERM_ORINFO 0x10 /* Need to free the WhereTerm.u.pOrInfo object */
120#define TERM_ANDINFO 0x20 /* Need to free the WhereTerm.u.pAndInfo obj */
121#define TERM_OR_OK 0x40 /* Used during OR-clause processing */
drhfaacf172011-08-12 01:51:45 +0000122#ifdef SQLITE_ENABLE_STAT3
drh59b61882011-02-11 02:43:14 +0000123# define TERM_VNULL 0x80 /* Manufactured x>NULL or x<=NULL term */
124#else
drhd3ed7342011-09-21 00:09:41 +0000125# define TERM_VNULL 0x00 /* Disabled if not using stat3 */
drh59b61882011-02-11 02:43:14 +0000126#endif
drh0aa74ed2005-07-16 13:33:20 +0000127
128/*
129** An instance of the following structure holds all information about a
130** WHERE clause. Mostly this is a container for one or more WhereTerms.
drh8871ef52011-10-07 13:33:10 +0000131**
132** Explanation of pOuter: For a WHERE clause of the form
133**
134** a AND ((b AND c) OR (d AND e)) AND f
135**
136** There are separate WhereClause objects for the whole clause and for
137** the subclauses "(b AND c)" and "(d AND e)". The pOuter field of the
138** subclauses points to the WhereClause object for the whole clause.
drh0aa74ed2005-07-16 13:33:20 +0000139*/
drh0aa74ed2005-07-16 13:33:20 +0000140struct WhereClause {
drhfe05af82005-07-21 03:14:59 +0000141 Parse *pParse; /* The parser context */
drh111a6a72008-12-21 03:51:16 +0000142 WhereMaskSet *pMaskSet; /* Mapping of table cursor numbers to bitmasks */
drh8871ef52011-10-07 13:33:10 +0000143 WhereClause *pOuter; /* Outer conjunction */
drh29435252008-12-28 18:35:08 +0000144 u8 op; /* Split operator. TK_AND or TK_OR */
drh9ef61f42011-10-07 14:40:59 +0000145 u16 wctrlFlags; /* Might include WHERE_AND_ONLY */
drh0aa74ed2005-07-16 13:33:20 +0000146 int nTerm; /* Number of terms */
147 int nSlot; /* Number of entries in a[] */
drh51147ba2005-07-23 22:59:55 +0000148 WhereTerm *a; /* Each a[] describes a term of the WHERE cluase */
drh50d654d2009-06-03 01:24:54 +0000149#if defined(SQLITE_SMALL_STACK)
150 WhereTerm aStatic[1]; /* Initial static space for a[] */
151#else
152 WhereTerm aStatic[8]; /* Initial static space for a[] */
153#endif
drhe23399f2005-07-22 00:31:39 +0000154};
155
156/*
drh700a2262008-12-17 19:22:15 +0000157** A WhereTerm with eOperator==WO_OR has its u.pOrInfo pointer set to
158** a dynamically allocated instance of the following structure.
159*/
160struct WhereOrInfo {
drh111a6a72008-12-21 03:51:16 +0000161 WhereClause wc; /* Decomposition into subterms */
drh1a58fe02008-12-20 02:06:13 +0000162 Bitmask indexable; /* Bitmask of all indexable tables in the clause */
drh700a2262008-12-17 19:22:15 +0000163};
164
165/*
166** A WhereTerm with eOperator==WO_AND has its u.pAndInfo pointer set to
167** a dynamically allocated instance of the following structure.
168*/
169struct WhereAndInfo {
drh29435252008-12-28 18:35:08 +0000170 WhereClause wc; /* The subexpression broken out */
drh700a2262008-12-17 19:22:15 +0000171};
172
173/*
drh6a3ea0e2003-05-02 14:32:12 +0000174** An instance of the following structure keeps track of a mapping
drh0aa74ed2005-07-16 13:33:20 +0000175** between VDBE cursor numbers and bits of the bitmasks in WhereTerm.
drh51669862004-12-18 18:40:26 +0000176**
177** The VDBE cursor numbers are small integers contained in
178** SrcList_item.iCursor and Expr.iTable fields. For any given WHERE
179** clause, the cursor numbers might not begin with 0 and they might
180** contain gaps in the numbering sequence. But we want to make maximum
181** use of the bits in our bitmasks. This structure provides a mapping
182** from the sparse cursor numbers into consecutive integers beginning
183** with 0.
184**
drh111a6a72008-12-21 03:51:16 +0000185** If WhereMaskSet.ix[A]==B it means that The A-th bit of a Bitmask
drh51669862004-12-18 18:40:26 +0000186** corresponds VDBE cursor number B. The A-th bit of a bitmask is 1<<A.
187**
188** For example, if the WHERE clause expression used these VDBE
drh111a6a72008-12-21 03:51:16 +0000189** cursors: 4, 5, 8, 29, 57, 73. Then the WhereMaskSet structure
drh51669862004-12-18 18:40:26 +0000190** would map those cursor numbers into bits 0 through 5.
191**
192** Note that the mapping is not necessarily ordered. In the example
193** above, the mapping might go like this: 4->3, 5->1, 8->2, 29->0,
194** 57->5, 73->4. Or one of 719 other combinations might be used. It
195** does not really matter. What is important is that sparse cursor
196** numbers all get mapped into bit numbers that begin with 0 and contain
197** no gaps.
drh6a3ea0e2003-05-02 14:32:12 +0000198*/
drh111a6a72008-12-21 03:51:16 +0000199struct WhereMaskSet {
drh1398ad32005-01-19 23:24:50 +0000200 int n; /* Number of assigned cursor values */
danielk197723432972008-11-17 16:42:00 +0000201 int ix[BMS]; /* Cursor assigned to each bit */
drh6a3ea0e2003-05-02 14:32:12 +0000202};
203
drh111a6a72008-12-21 03:51:16 +0000204/*
205** A WhereCost object records a lookup strategy and the estimated
206** cost of pursuing that strategy.
207*/
208struct WhereCost {
209 WherePlan plan; /* The lookup strategy */
210 double rCost; /* Overall cost of pursuing this search strategy */
dan5236ac12009-08-13 07:09:33 +0000211 Bitmask used; /* Bitmask of cursors used by this plan */
drh111a6a72008-12-21 03:51:16 +0000212};
drh0aa74ed2005-07-16 13:33:20 +0000213
drh6a3ea0e2003-05-02 14:32:12 +0000214/*
drh51147ba2005-07-23 22:59:55 +0000215** Bitmasks for the operators that indices are able to exploit. An
216** OR-ed combination of these values can be used when searching for
217** terms in the where clause.
218*/
drh165be382008-12-05 02:36:33 +0000219#define WO_IN 0x001
220#define WO_EQ 0x002
drh51147ba2005-07-23 22:59:55 +0000221#define WO_LT (WO_EQ<<(TK_LT-TK_EQ))
222#define WO_LE (WO_EQ<<(TK_LE-TK_EQ))
223#define WO_GT (WO_EQ<<(TK_GT-TK_EQ))
224#define WO_GE (WO_EQ<<(TK_GE-TK_EQ))
drh165be382008-12-05 02:36:33 +0000225#define WO_MATCH 0x040
226#define WO_ISNULL 0x080
drh700a2262008-12-17 19:22:15 +0000227#define WO_OR 0x100 /* Two or more OR-connected terms */
228#define WO_AND 0x200 /* Two or more AND-connected terms */
drh7a5bcc02013-01-16 17:08:58 +0000229#define WO_EQUIV 0x400 /* Of the form A==B, both columns */
drh534230c2011-01-22 00:10:45 +0000230#define WO_NOOP 0x800 /* This term does not restrict search space */
drh51147ba2005-07-23 22:59:55 +0000231
drhec1724e2008-12-09 01:32:03 +0000232#define WO_ALL 0xfff /* Mask of all possible WO_* values */
drh1a58fe02008-12-20 02:06:13 +0000233#define WO_SINGLE 0x0ff /* Mask of all non-compound WO_* values */
drhec1724e2008-12-09 01:32:03 +0000234
drh51147ba2005-07-23 22:59:55 +0000235/*
drh700a2262008-12-17 19:22:15 +0000236** Value for wsFlags returned by bestIndex() and stored in
237** WhereLevel.wsFlags. These flags determine which search
238** strategies are appropriate.
drhf2d315d2007-01-25 16:56:06 +0000239**
drh165be382008-12-05 02:36:33 +0000240** The least significant 12 bits is reserved as a mask for WO_ values above.
drh700a2262008-12-17 19:22:15 +0000241** The WhereLevel.wsFlags field is usually set to WO_IN|WO_EQ|WO_ISNULL.
242** But if the table is the right table of a left join, WhereLevel.wsFlags
243** is set to WO_IN|WO_EQ. The WhereLevel.wsFlags field can then be used as
drhf2d315d2007-01-25 16:56:06 +0000244** the "op" parameter to findTerm when we are resolving equality constraints.
245** ISNULL constraints will then not be used on the right table of a left
246** join. Tickets #2177 and #2189.
drh51147ba2005-07-23 22:59:55 +0000247*/
drh165be382008-12-05 02:36:33 +0000248#define WHERE_ROWID_EQ 0x00001000 /* rowid=EXPR or rowid IN (...) */
249#define WHERE_ROWID_RANGE 0x00002000 /* rowid<EXPR and/or rowid>EXPR */
drh46619d62009-04-24 14:51:42 +0000250#define WHERE_COLUMN_EQ 0x00010000 /* x=EXPR or x IN (...) or x IS NULL */
drh165be382008-12-05 02:36:33 +0000251#define WHERE_COLUMN_RANGE 0x00020000 /* x<EXPR and/or x>EXPR */
252#define WHERE_COLUMN_IN 0x00040000 /* x IN (...) */
drh46619d62009-04-24 14:51:42 +0000253#define WHERE_COLUMN_NULL 0x00080000 /* x IS NULL */
254#define WHERE_INDEXED 0x000f0000 /* Anything that uses an index */
drh75ad2602010-10-21 02:05:06 +0000255#define WHERE_NOT_FULLSCAN 0x100f3000 /* Does not do a full table scan */
drh281bbe22012-10-16 23:17:14 +0000256#define WHERE_IN_ABLE 0x080f1000 /* Able to support an IN operator */
drh165be382008-12-05 02:36:33 +0000257#define WHERE_TOP_LIMIT 0x00100000 /* x<EXPR or x<=EXPR constraint */
258#define WHERE_BTM_LIMIT 0x00200000 /* x>EXPR or x>=EXPR constraint */
drh04098e62010-11-15 21:50:19 +0000259#define WHERE_BOTH_LIMIT 0x00300000 /* Both x>EXPR and x<EXPR */
drh60441af2012-09-29 19:10:29 +0000260#define WHERE_IDX_ONLY 0x00400000 /* Use index only - omit table */
drhd663b5b2012-10-03 00:25:54 +0000261#define WHERE_ORDERED 0x00800000 /* Output will appear in correct order */
drh60441af2012-09-29 19:10:29 +0000262#define WHERE_REVERSE 0x01000000 /* Scan in reverse order */
263#define WHERE_UNIQUE 0x02000000 /* Selects no more than one row */
264#define WHERE_ALL_UNIQUE 0x04000000 /* This and all prior have one row */
drh8a1b87c2013-03-27 15:04:28 +0000265#define WHERE_OB_UNIQUE 0x00004000 /* Values in ORDER BY columns are
266 ** different for every output row */
drh165be382008-12-05 02:36:33 +0000267#define WHERE_VIRTUALTABLE 0x08000000 /* Use virtual-table processing */
268#define WHERE_MULTI_OR 0x10000000 /* OR using multiple indices */
drh8b307fb2010-04-06 15:57:05 +0000269#define WHERE_TEMP_INDEX 0x20000000 /* Uses an ephemeral index */
dan38cc40c2011-06-30 20:17:15 +0000270#define WHERE_DISTINCT 0x40000000 /* Correct order for DISTINCT */
drh3f4d1d12012-09-15 18:45:54 +0000271#define WHERE_COVER_SCAN 0x80000000 /* Full scan of a covering index */
drh51147ba2005-07-23 22:59:55 +0000272
273/*
drh56f1b992012-09-25 14:29:39 +0000274** This module contains many separate subroutines that work together to
275** find the best indices to use for accessing a particular table in a query.
276** An instance of the following structure holds context information about the
277** index search so that it can be more easily passed between the various
278** routines.
279*/
280typedef struct WhereBestIdx WhereBestIdx;
281struct WhereBestIdx {
282 Parse *pParse; /* Parser context */
283 WhereClause *pWC; /* The WHERE clause */
284 struct SrcList_item *pSrc; /* The FROM clause term to search */
285 Bitmask notReady; /* Mask of cursors not available */
286 Bitmask notValid; /* Cursors not available for any purpose */
287 ExprList *pOrderBy; /* The ORDER BY clause */
288 ExprList *pDistinct; /* The select-list if query is DISTINCT */
289 sqlite3_index_info **ppIdxInfo; /* Index information passed to xBestIndex */
drh9cd1c992012-09-25 20:43:35 +0000290 int i, n; /* Which loop is being coded; # of loops */
drh46c35f92012-09-26 23:17:01 +0000291 WhereLevel *aLevel; /* Info about outer loops */
drh56f1b992012-09-25 14:29:39 +0000292 WhereCost cost; /* Lowest cost query plan */
293};
294
295/*
drhd663b5b2012-10-03 00:25:54 +0000296** Return TRUE if the probe cost is less than the baseline cost
297*/
298static int compareCost(const WhereCost *pProbe, const WhereCost *pBaseline){
299 if( pProbe->rCost<pBaseline->rCost ) return 1;
300 if( pProbe->rCost>pBaseline->rCost ) return 0;
301 if( pProbe->plan.nOBSat>pBaseline->plan.nOBSat ) return 1;
302 if( pProbe->plan.nRow<pBaseline->plan.nRow ) return 1;
303 return 0;
304}
305
306/*
drh0aa74ed2005-07-16 13:33:20 +0000307** Initialize a preallocated WhereClause structure.
drh75897232000-05-29 14:26:00 +0000308*/
drh7b4fc6a2007-02-06 13:26:32 +0000309static void whereClauseInit(
310 WhereClause *pWC, /* The WhereClause to be initialized */
311 Parse *pParse, /* The parsing context */
drh9ef61f42011-10-07 14:40:59 +0000312 WhereMaskSet *pMaskSet, /* Mapping from table cursor numbers to bitmasks */
313 u16 wctrlFlags /* Might include WHERE_AND_ONLY */
drh7b4fc6a2007-02-06 13:26:32 +0000314){
drhfe05af82005-07-21 03:14:59 +0000315 pWC->pParse = pParse;
drh7b4fc6a2007-02-06 13:26:32 +0000316 pWC->pMaskSet = pMaskSet;
drh8871ef52011-10-07 13:33:10 +0000317 pWC->pOuter = 0;
drh0aa74ed2005-07-16 13:33:20 +0000318 pWC->nTerm = 0;
drhcad651e2007-04-20 12:22:01 +0000319 pWC->nSlot = ArraySize(pWC->aStatic);
drh0aa74ed2005-07-16 13:33:20 +0000320 pWC->a = pWC->aStatic;
drh9ef61f42011-10-07 14:40:59 +0000321 pWC->wctrlFlags = wctrlFlags;
drh0aa74ed2005-07-16 13:33:20 +0000322}
323
drh700a2262008-12-17 19:22:15 +0000324/* Forward reference */
325static void whereClauseClear(WhereClause*);
326
327/*
328** Deallocate all memory associated with a WhereOrInfo object.
329*/
330static void whereOrInfoDelete(sqlite3 *db, WhereOrInfo *p){
drh5bd98ae2009-01-07 18:24:03 +0000331 whereClauseClear(&p->wc);
332 sqlite3DbFree(db, p);
drh700a2262008-12-17 19:22:15 +0000333}
334
335/*
336** Deallocate all memory associated with a WhereAndInfo object.
337*/
338static void whereAndInfoDelete(sqlite3 *db, WhereAndInfo *p){
drh5bd98ae2009-01-07 18:24:03 +0000339 whereClauseClear(&p->wc);
340 sqlite3DbFree(db, p);
drh700a2262008-12-17 19:22:15 +0000341}
342
drh0aa74ed2005-07-16 13:33:20 +0000343/*
344** Deallocate a WhereClause structure. The WhereClause structure
345** itself is not freed. This routine is the inverse of whereClauseInit().
346*/
347static void whereClauseClear(WhereClause *pWC){
348 int i;
349 WhereTerm *a;
drh633e6d52008-07-28 19:34:53 +0000350 sqlite3 *db = pWC->pParse->db;
drh0aa74ed2005-07-16 13:33:20 +0000351 for(i=pWC->nTerm-1, a=pWC->a; i>=0; i--, a++){
drh165be382008-12-05 02:36:33 +0000352 if( a->wtFlags & TERM_DYNAMIC ){
drh633e6d52008-07-28 19:34:53 +0000353 sqlite3ExprDelete(db, a->pExpr);
drh0aa74ed2005-07-16 13:33:20 +0000354 }
drh700a2262008-12-17 19:22:15 +0000355 if( a->wtFlags & TERM_ORINFO ){
356 whereOrInfoDelete(db, a->u.pOrInfo);
357 }else if( a->wtFlags & TERM_ANDINFO ){
358 whereAndInfoDelete(db, a->u.pAndInfo);
359 }
drh0aa74ed2005-07-16 13:33:20 +0000360 }
361 if( pWC->a!=pWC->aStatic ){
drh633e6d52008-07-28 19:34:53 +0000362 sqlite3DbFree(db, pWC->a);
drh0aa74ed2005-07-16 13:33:20 +0000363 }
364}
365
366/*
drh6a1e0712008-12-05 15:24:15 +0000367** Add a single new WhereTerm entry to the WhereClause object pWC.
368** The new WhereTerm object is constructed from Expr p and with wtFlags.
369** The index in pWC->a[] of the new WhereTerm is returned on success.
370** 0 is returned if the new WhereTerm could not be added due to a memory
371** allocation error. The memory allocation failure will be recorded in
372** the db->mallocFailed flag so that higher-level functions can detect it.
373**
374** This routine will increase the size of the pWC->a[] array as necessary.
drh9eb20282005-08-24 03:52:18 +0000375**
drh165be382008-12-05 02:36:33 +0000376** If the wtFlags argument includes TERM_DYNAMIC, then responsibility
drh6a1e0712008-12-05 15:24:15 +0000377** for freeing the expression p is assumed by the WhereClause object pWC.
378** This is true even if this routine fails to allocate a new WhereTerm.
drhb63a53d2007-03-31 01:34:44 +0000379**
drh9eb20282005-08-24 03:52:18 +0000380** WARNING: This routine might reallocate the space used to store
drh909626d2008-05-30 14:58:37 +0000381** WhereTerms. All pointers to WhereTerms should be invalidated after
drh9eb20282005-08-24 03:52:18 +0000382** calling this routine. Such pointers may be reinitialized by referencing
383** the pWC->a[] array.
drh0aa74ed2005-07-16 13:33:20 +0000384*/
drhec1724e2008-12-09 01:32:03 +0000385static int whereClauseInsert(WhereClause *pWC, Expr *p, u8 wtFlags){
drh0aa74ed2005-07-16 13:33:20 +0000386 WhereTerm *pTerm;
drh9eb20282005-08-24 03:52:18 +0000387 int idx;
drhe9cdcea2010-07-22 22:40:03 +0000388 testcase( wtFlags & TERM_VIRTUAL ); /* EV: R-00211-15100 */
drh0aa74ed2005-07-16 13:33:20 +0000389 if( pWC->nTerm>=pWC->nSlot ){
390 WhereTerm *pOld = pWC->a;
drh633e6d52008-07-28 19:34:53 +0000391 sqlite3 *db = pWC->pParse->db;
392 pWC->a = sqlite3DbMallocRaw(db, sizeof(pWC->a[0])*pWC->nSlot*2 );
drhb63a53d2007-03-31 01:34:44 +0000393 if( pWC->a==0 ){
drh165be382008-12-05 02:36:33 +0000394 if( wtFlags & TERM_DYNAMIC ){
drh633e6d52008-07-28 19:34:53 +0000395 sqlite3ExprDelete(db, p);
drhb63a53d2007-03-31 01:34:44 +0000396 }
drhf998b732007-11-26 13:36:00 +0000397 pWC->a = pOld;
drhb63a53d2007-03-31 01:34:44 +0000398 return 0;
399 }
drh0aa74ed2005-07-16 13:33:20 +0000400 memcpy(pWC->a, pOld, sizeof(pWC->a[0])*pWC->nTerm);
401 if( pOld!=pWC->aStatic ){
drh633e6d52008-07-28 19:34:53 +0000402 sqlite3DbFree(db, pOld);
drh0aa74ed2005-07-16 13:33:20 +0000403 }
drh6a1e0712008-12-05 15:24:15 +0000404 pWC->nSlot = sqlite3DbMallocSize(db, pWC->a)/sizeof(pWC->a[0]);
drh0aa74ed2005-07-16 13:33:20 +0000405 }
drh6a1e0712008-12-05 15:24:15 +0000406 pTerm = &pWC->a[idx = pWC->nTerm++];
drh7ee751d2012-12-19 15:53:51 +0000407 pTerm->pExpr = sqlite3ExprSkipCollate(p);
drh165be382008-12-05 02:36:33 +0000408 pTerm->wtFlags = wtFlags;
drh0fcef5e2005-07-19 17:38:22 +0000409 pTerm->pWC = pWC;
drh45b1ee42005-08-02 17:48:22 +0000410 pTerm->iParent = -1;
drh9eb20282005-08-24 03:52:18 +0000411 return idx;
drh0aa74ed2005-07-16 13:33:20 +0000412}
drh75897232000-05-29 14:26:00 +0000413
414/*
drh51669862004-12-18 18:40:26 +0000415** This routine identifies subexpressions in the WHERE clause where
drhb6fb62d2005-09-20 08:47:20 +0000416** each subexpression is separated by the AND operator or some other
drh6c30be82005-07-29 15:10:17 +0000417** operator specified in the op parameter. The WhereClause structure
418** is filled with pointers to subexpressions. For example:
drh75897232000-05-29 14:26:00 +0000419**
drh51669862004-12-18 18:40:26 +0000420** WHERE a=='hello' AND coalesce(b,11)<10 AND (c+12!=d OR c==22)
421** \________/ \_______________/ \________________/
422** slot[0] slot[1] slot[2]
423**
424** The original WHERE clause in pExpr is unaltered. All this routine
drh51147ba2005-07-23 22:59:55 +0000425** does is make slot[] entries point to substructure within pExpr.
drh51669862004-12-18 18:40:26 +0000426**
drh51147ba2005-07-23 22:59:55 +0000427** In the previous sentence and in the diagram, "slot[]" refers to
drh902b9ee2008-12-05 17:17:07 +0000428** the WhereClause.a[] array. The slot[] array grows as needed to contain
drh51147ba2005-07-23 22:59:55 +0000429** all terms of the WHERE clause.
drh75897232000-05-29 14:26:00 +0000430*/
drh6c30be82005-07-29 15:10:17 +0000431static void whereSplit(WhereClause *pWC, Expr *pExpr, int op){
drh29435252008-12-28 18:35:08 +0000432 pWC->op = (u8)op;
drh0aa74ed2005-07-16 13:33:20 +0000433 if( pExpr==0 ) return;
drh6c30be82005-07-29 15:10:17 +0000434 if( pExpr->op!=op ){
drh0aa74ed2005-07-16 13:33:20 +0000435 whereClauseInsert(pWC, pExpr, 0);
drh75897232000-05-29 14:26:00 +0000436 }else{
drh6c30be82005-07-29 15:10:17 +0000437 whereSplit(pWC, pExpr->pLeft, op);
438 whereSplit(pWC, pExpr->pRight, op);
drh75897232000-05-29 14:26:00 +0000439 }
drh75897232000-05-29 14:26:00 +0000440}
441
442/*
drh61495262009-04-22 15:32:59 +0000443** Initialize an expression mask set (a WhereMaskSet object)
drh6a3ea0e2003-05-02 14:32:12 +0000444*/
445#define initMaskSet(P) memset(P, 0, sizeof(*P))
446
447/*
drh1398ad32005-01-19 23:24:50 +0000448** Return the bitmask for the given cursor number. Return 0 if
449** iCursor is not in the set.
drh6a3ea0e2003-05-02 14:32:12 +0000450*/
drh111a6a72008-12-21 03:51:16 +0000451static Bitmask getMask(WhereMaskSet *pMaskSet, int iCursor){
drh6a3ea0e2003-05-02 14:32:12 +0000452 int i;
drhfcd71b62011-04-05 22:08:24 +0000453 assert( pMaskSet->n<=(int)sizeof(Bitmask)*8 );
drh6a3ea0e2003-05-02 14:32:12 +0000454 for(i=0; i<pMaskSet->n; i++){
drh51669862004-12-18 18:40:26 +0000455 if( pMaskSet->ix[i]==iCursor ){
456 return ((Bitmask)1)<<i;
457 }
drh6a3ea0e2003-05-02 14:32:12 +0000458 }
drh6a3ea0e2003-05-02 14:32:12 +0000459 return 0;
460}
461
462/*
drh1398ad32005-01-19 23:24:50 +0000463** Create a new mask for cursor iCursor.
drh0fcef5e2005-07-19 17:38:22 +0000464**
465** There is one cursor per table in the FROM clause. The number of
466** tables in the FROM clause is limited by a test early in the
drhb6fb62d2005-09-20 08:47:20 +0000467** sqlite3WhereBegin() routine. So we know that the pMaskSet->ix[]
drh0fcef5e2005-07-19 17:38:22 +0000468** array will never overflow.
drh1398ad32005-01-19 23:24:50 +0000469*/
drh111a6a72008-12-21 03:51:16 +0000470static void createMask(WhereMaskSet *pMaskSet, int iCursor){
drhcad651e2007-04-20 12:22:01 +0000471 assert( pMaskSet->n < ArraySize(pMaskSet->ix) );
drh0fcef5e2005-07-19 17:38:22 +0000472 pMaskSet->ix[pMaskSet->n++] = iCursor;
drh1398ad32005-01-19 23:24:50 +0000473}
474
475/*
drh75897232000-05-29 14:26:00 +0000476** This routine walks (recursively) an expression tree and generates
477** a bitmask indicating which tables are used in that expression
drh6a3ea0e2003-05-02 14:32:12 +0000478** tree.
drh75897232000-05-29 14:26:00 +0000479**
480** In order for this routine to work, the calling function must have
drh7d10d5a2008-08-20 16:35:10 +0000481** previously invoked sqlite3ResolveExprNames() on the expression. See
drh75897232000-05-29 14:26:00 +0000482** the header comment on that routine for additional information.
drh7d10d5a2008-08-20 16:35:10 +0000483** The sqlite3ResolveExprNames() routines looks for column names and
drh6a3ea0e2003-05-02 14:32:12 +0000484** sets their opcodes to TK_COLUMN and their Expr.iTable fields to
drh51147ba2005-07-23 22:59:55 +0000485** the VDBE cursor number of the table. This routine just has to
486** translate the cursor numbers into bitmask values and OR all
487** the bitmasks together.
drh75897232000-05-29 14:26:00 +0000488*/
drh111a6a72008-12-21 03:51:16 +0000489static Bitmask exprListTableUsage(WhereMaskSet*, ExprList*);
490static Bitmask exprSelectTableUsage(WhereMaskSet*, Select*);
491static Bitmask exprTableUsage(WhereMaskSet *pMaskSet, Expr *p){
drh51669862004-12-18 18:40:26 +0000492 Bitmask mask = 0;
drh75897232000-05-29 14:26:00 +0000493 if( p==0 ) return 0;
drh967e8b72000-06-21 13:59:10 +0000494 if( p->op==TK_COLUMN ){
drh8feb4b12004-07-19 02:12:14 +0000495 mask = getMask(pMaskSet, p->iTable);
drh8feb4b12004-07-19 02:12:14 +0000496 return mask;
drh75897232000-05-29 14:26:00 +0000497 }
danielk1977b3bce662005-01-29 08:32:43 +0000498 mask = exprTableUsage(pMaskSet, p->pRight);
499 mask |= exprTableUsage(pMaskSet, p->pLeft);
danielk19776ab3a2e2009-02-19 14:39:25 +0000500 if( ExprHasProperty(p, EP_xIsSelect) ){
501 mask |= exprSelectTableUsage(pMaskSet, p->x.pSelect);
502 }else{
503 mask |= exprListTableUsage(pMaskSet, p->x.pList);
504 }
danielk1977b3bce662005-01-29 08:32:43 +0000505 return mask;
506}
drh111a6a72008-12-21 03:51:16 +0000507static Bitmask exprListTableUsage(WhereMaskSet *pMaskSet, ExprList *pList){
danielk1977b3bce662005-01-29 08:32:43 +0000508 int i;
509 Bitmask mask = 0;
510 if( pList ){
511 for(i=0; i<pList->nExpr; i++){
512 mask |= exprTableUsage(pMaskSet, pList->a[i].pExpr);
drhdd579122002-04-02 01:58:57 +0000513 }
514 }
drh75897232000-05-29 14:26:00 +0000515 return mask;
516}
drh111a6a72008-12-21 03:51:16 +0000517static Bitmask exprSelectTableUsage(WhereMaskSet *pMaskSet, Select *pS){
drha430ae82007-09-12 15:41:01 +0000518 Bitmask mask = 0;
519 while( pS ){
drha464c232011-09-16 19:04:03 +0000520 SrcList *pSrc = pS->pSrc;
drha430ae82007-09-12 15:41:01 +0000521 mask |= exprListTableUsage(pMaskSet, pS->pEList);
drhf5b11382005-09-17 13:07:13 +0000522 mask |= exprListTableUsage(pMaskSet, pS->pGroupBy);
523 mask |= exprListTableUsage(pMaskSet, pS->pOrderBy);
524 mask |= exprTableUsage(pMaskSet, pS->pWhere);
525 mask |= exprTableUsage(pMaskSet, pS->pHaving);
drha464c232011-09-16 19:04:03 +0000526 if( ALWAYS(pSrc!=0) ){
drh88501772011-09-16 17:43:06 +0000527 int i;
528 for(i=0; i<pSrc->nSrc; i++){
529 mask |= exprSelectTableUsage(pMaskSet, pSrc->a[i].pSelect);
530 mask |= exprTableUsage(pMaskSet, pSrc->a[i].pOn);
531 }
532 }
drha430ae82007-09-12 15:41:01 +0000533 pS = pS->pPrior;
drhf5b11382005-09-17 13:07:13 +0000534 }
535 return mask;
536}
drh75897232000-05-29 14:26:00 +0000537
538/*
drh487ab3c2001-11-08 00:45:21 +0000539** Return TRUE if the given operator is one of the operators that is
drh51669862004-12-18 18:40:26 +0000540** allowed for an indexable WHERE clause term. The allowed operators are
drhc27a1ce2002-06-14 20:58:45 +0000541** "=", "<", ">", "<=", ">=", and "IN".
drhe9cdcea2010-07-22 22:40:03 +0000542**
543** IMPLEMENTATION-OF: R-59926-26393 To be usable by an index a term must be
544** of one of the following forms: column = expression column > expression
545** column >= expression column < expression column <= expression
546** expression = column expression > column expression >= column
547** expression < column expression <= column column IN
548** (expression-list) column IN (subquery) column IS NULL
drh487ab3c2001-11-08 00:45:21 +0000549*/
550static int allowedOp(int op){
drhfe05af82005-07-21 03:14:59 +0000551 assert( TK_GT>TK_EQ && TK_GT<TK_GE );
552 assert( TK_LT>TK_EQ && TK_LT<TK_GE );
553 assert( TK_LE>TK_EQ && TK_LE<TK_GE );
554 assert( TK_GE==TK_EQ+4 );
drh50b39962006-10-28 00:28:09 +0000555 return op==TK_IN || (op>=TK_EQ && op<=TK_GE) || op==TK_ISNULL;
drh487ab3c2001-11-08 00:45:21 +0000556}
557
558/*
drh902b9ee2008-12-05 17:17:07 +0000559** Swap two objects of type TYPE.
drh193bd772004-07-20 18:23:14 +0000560*/
561#define SWAP(TYPE,A,B) {TYPE t=A; A=B; B=t;}
562
563/*
drh909626d2008-05-30 14:58:37 +0000564** Commute a comparison operator. Expressions of the form "X op Y"
drh0fcef5e2005-07-19 17:38:22 +0000565** are converted into "Y op X".
danielk1977eb5453d2007-07-30 14:40:48 +0000566**
mistachkin48864df2013-03-21 21:20:32 +0000567** If left/right precedence rules come into play when determining the
drhae80dde2012-12-06 21:16:43 +0000568** collating
danielk1977eb5453d2007-07-30 14:40:48 +0000569** side of the comparison, it remains associated with the same side after
570** the commutation. So "Y collate NOCASE op X" becomes
drhae80dde2012-12-06 21:16:43 +0000571** "X op Y". This is because any collation sequence on
danielk1977eb5453d2007-07-30 14:40:48 +0000572** the left hand side of a comparison overrides any collation sequence
drhae80dde2012-12-06 21:16:43 +0000573** attached to the right. For the same reason the EP_Collate flag
danielk1977eb5453d2007-07-30 14:40:48 +0000574** is not commuted.
drh193bd772004-07-20 18:23:14 +0000575*/
drh7d10d5a2008-08-20 16:35:10 +0000576static void exprCommute(Parse *pParse, Expr *pExpr){
drhae80dde2012-12-06 21:16:43 +0000577 u16 expRight = (pExpr->pRight->flags & EP_Collate);
578 u16 expLeft = (pExpr->pLeft->flags & EP_Collate);
drhfe05af82005-07-21 03:14:59 +0000579 assert( allowedOp(pExpr->op) && pExpr->op!=TK_IN );
drhae80dde2012-12-06 21:16:43 +0000580 if( expRight==expLeft ){
581 /* Either X and Y both have COLLATE operator or neither do */
582 if( expRight ){
583 /* Both X and Y have COLLATE operators. Make sure X is always
584 ** used by clearing the EP_Collate flag from Y. */
585 pExpr->pRight->flags &= ~EP_Collate;
586 }else if( sqlite3ExprCollSeq(pParse, pExpr->pLeft)!=0 ){
587 /* Neither X nor Y have COLLATE operators, but X has a non-default
588 ** collating sequence. So add the EP_Collate marker on X to cause
589 ** it to be searched first. */
590 pExpr->pLeft->flags |= EP_Collate;
591 }
592 }
drh0fcef5e2005-07-19 17:38:22 +0000593 SWAP(Expr*,pExpr->pRight,pExpr->pLeft);
594 if( pExpr->op>=TK_GT ){
595 assert( TK_LT==TK_GT+2 );
596 assert( TK_GE==TK_LE+2 );
597 assert( TK_GT>TK_EQ );
598 assert( TK_GT<TK_LE );
599 assert( pExpr->op>=TK_GT && pExpr->op<=TK_GE );
600 pExpr->op = ((pExpr->op-TK_GT)^2)+TK_GT;
drh193bd772004-07-20 18:23:14 +0000601 }
drh193bd772004-07-20 18:23:14 +0000602}
603
604/*
drhfe05af82005-07-21 03:14:59 +0000605** Translate from TK_xx operator to WO_xx bitmask.
606*/
drhec1724e2008-12-09 01:32:03 +0000607static u16 operatorMask(int op){
608 u16 c;
drhfe05af82005-07-21 03:14:59 +0000609 assert( allowedOp(op) );
610 if( op==TK_IN ){
drh51147ba2005-07-23 22:59:55 +0000611 c = WO_IN;
drh50b39962006-10-28 00:28:09 +0000612 }else if( op==TK_ISNULL ){
613 c = WO_ISNULL;
drhfe05af82005-07-21 03:14:59 +0000614 }else{
drhec1724e2008-12-09 01:32:03 +0000615 assert( (WO_EQ<<(op-TK_EQ)) < 0x7fff );
616 c = (u16)(WO_EQ<<(op-TK_EQ));
drhfe05af82005-07-21 03:14:59 +0000617 }
drh50b39962006-10-28 00:28:09 +0000618 assert( op!=TK_ISNULL || c==WO_ISNULL );
drh51147ba2005-07-23 22:59:55 +0000619 assert( op!=TK_IN || c==WO_IN );
620 assert( op!=TK_EQ || c==WO_EQ );
621 assert( op!=TK_LT || c==WO_LT );
622 assert( op!=TK_LE || c==WO_LE );
623 assert( op!=TK_GT || c==WO_GT );
624 assert( op!=TK_GE || c==WO_GE );
625 return c;
drhfe05af82005-07-21 03:14:59 +0000626}
627
628/*
629** Search for a term in the WHERE clause that is of the form "X <op> <expr>"
630** where X is a reference to the iColumn of table iCur and <op> is one of
631** the WO_xx operator codes specified by the op parameter.
632** Return a pointer to the term. Return 0 if not found.
drh58eb1c02013-01-17 00:08:42 +0000633**
634** The term returned might by Y=<expr> if there is another constraint in
635** the WHERE clause that specifies that X=Y. Any such constraints will be
636** identified by the WO_EQUIV bit in the pTerm->eOperator field. The
637** aEquiv[] array holds X and all its equivalents, with each SQL variable
638** taking up two slots in aEquiv[]. The first slot is for the cursor number
639** and the second is for the column number. There are 22 slots in aEquiv[]
640** so that means we can look for X plus up to 10 other equivalent values.
641** Hence a search for X will return <expr> if X=A1 and A1=A2 and A2=A3
642** and ... and A9=A10 and A10=<expr>.
643**
644** If there are multiple terms in the WHERE clause of the form "X <op> <expr>"
645** then try for the one with no dependencies on <expr> - in other words where
646** <expr> is a constant expression of some kind. Only return entries of
647** the form "X <op> Y" where Y is a column in another table if no terms of
drh459f63e2013-03-06 01:55:27 +0000648** the form "X <op> <const-expr>" exist. If no terms with a constant RHS
649** exist, try to return a term that does not use WO_EQUIV.
drhfe05af82005-07-21 03:14:59 +0000650*/
651static WhereTerm *findTerm(
652 WhereClause *pWC, /* The WHERE clause to be searched */
653 int iCur, /* Cursor number of LHS */
654 int iColumn, /* Column number of LHS */
655 Bitmask notReady, /* RHS must not overlap with this mask */
drhec1724e2008-12-09 01:32:03 +0000656 u32 op, /* Mask of WO_xx values describing operator */
drhfe05af82005-07-21 03:14:59 +0000657 Index *pIdx /* Must be compatible with this index, if not NULL */
658){
drh58eb1c02013-01-17 00:08:42 +0000659 WhereTerm *pTerm; /* Term being examined as possible result */
660 WhereTerm *pResult = 0; /* The answer to return */
661 WhereClause *pWCOrig = pWC; /* Original pWC value */
662 int j, k; /* Loop counters */
663 Expr *pX; /* Pointer to an expression */
664 Parse *pParse; /* Parsing context */
drh738fc792013-01-17 15:05:17 +0000665 int iOrigCol = iColumn; /* Original value of iColumn */
drh58eb1c02013-01-17 00:08:42 +0000666 int nEquiv = 2; /* Number of entires in aEquiv[] */
667 int iEquiv = 2; /* Number of entries of aEquiv[] processed so far */
668 int aEquiv[22]; /* iCur,iColumn and up to 10 other equivalents */
drh7a5bcc02013-01-16 17:08:58 +0000669
drh22c24032008-07-09 13:28:53 +0000670 assert( iCur>=0 );
drh7a5bcc02013-01-16 17:08:58 +0000671 aEquiv[0] = iCur;
672 aEquiv[1] = iColumn;
673 for(;;){
674 for(pWC=pWCOrig; pWC; pWC=pWC->pOuter){
675 for(pTerm=pWC->a, k=pWC->nTerm; k; k--, pTerm++){
676 if( pTerm->leftCursor==iCur
677 && pTerm->u.leftColumn==iColumn
drh7a5bcc02013-01-16 17:08:58 +0000678 ){
drh738fc792013-01-17 15:05:17 +0000679 if( (pTerm->prereqRight & notReady)==0
680 && (pTerm->eOperator & op & WO_ALL)!=0
681 ){
682 if( iOrigCol>=0 && pIdx && (pTerm->eOperator & WO_ISNULL)==0 ){
drh7a5bcc02013-01-16 17:08:58 +0000683 CollSeq *pColl;
684 char idxaff;
685
686 pX = pTerm->pExpr;
687 pParse = pWC->pParse;
drh738fc792013-01-17 15:05:17 +0000688 idxaff = pIdx->pTable->aCol[iOrigCol].affinity;
drh63db0392013-01-17 16:18:55 +0000689 if( !sqlite3IndexAffinityOk(pX, idxaff) ){
690 continue;
691 }
drh7a5bcc02013-01-16 17:08:58 +0000692
693 /* Figure out the collation sequence required from an index for
694 ** it to be useful for optimising expression pX. Store this
695 ** value in variable pColl.
696 */
697 assert(pX->pLeft);
698 pColl = sqlite3BinaryCompareCollSeq(pParse,pX->pLeft,pX->pRight);
699 if( pColl==0 ) pColl = pParse->db->pDfltColl;
700
drh738fc792013-01-17 15:05:17 +0000701 for(j=0; pIdx->aiColumn[j]!=iOrigCol; j++){
drh7a5bcc02013-01-16 17:08:58 +0000702 if( NEVER(j>=pIdx->nColumn) ) return 0;
703 }
drh63db0392013-01-17 16:18:55 +0000704 if( sqlite3StrICmp(pColl->zName, pIdx->azColl[j]) ){
705 continue;
706 }
drh7a5bcc02013-01-16 17:08:58 +0000707 }
drh459f63e2013-03-06 01:55:27 +0000708 if( pTerm->prereqRight==0 ){
709 pResult = pTerm;
710 goto findTerm_success;
711 }else if( pResult==0 ){
712 pResult = pTerm;
713 }
drh8871ef52011-10-07 13:33:10 +0000714 }
drh738fc792013-01-17 15:05:17 +0000715 if( (pTerm->eOperator & WO_EQUIV)!=0
drh7a5bcc02013-01-16 17:08:58 +0000716 && nEquiv<ArraySize(aEquiv)
717 ){
718 pX = sqlite3ExprSkipCollate(pTerm->pExpr->pRight);
719 assert( pX->op==TK_COLUMN );
720 for(j=0; j<nEquiv; j+=2){
721 if( aEquiv[j]==pX->iTable && aEquiv[j+1]==pX->iColumn ) break;
722 }
723 if( j==nEquiv ){
724 aEquiv[j] = pX->iTable;
725 aEquiv[j+1] = pX->iColumn;
726 nEquiv += 2;
727 }
728 }
drh22c24032008-07-09 13:28:53 +0000729 }
drhfe05af82005-07-21 03:14:59 +0000730 }
drhfe05af82005-07-21 03:14:59 +0000731 }
drh7a5bcc02013-01-16 17:08:58 +0000732 if( iEquiv>=nEquiv ) break;
733 iCur = aEquiv[iEquiv++];
734 iColumn = aEquiv[iEquiv++];
drhfe05af82005-07-21 03:14:59 +0000735 }
drh7a5bcc02013-01-16 17:08:58 +0000736findTerm_success:
737 return pResult;
drhfe05af82005-07-21 03:14:59 +0000738}
739
drh6c30be82005-07-29 15:10:17 +0000740/* Forward reference */
drh7b4fc6a2007-02-06 13:26:32 +0000741static void exprAnalyze(SrcList*, WhereClause*, int);
drh6c30be82005-07-29 15:10:17 +0000742
743/*
744** Call exprAnalyze on all terms in a WHERE clause.
745**
746**
747*/
748static void exprAnalyzeAll(
749 SrcList *pTabList, /* the FROM clause */
drh6c30be82005-07-29 15:10:17 +0000750 WhereClause *pWC /* the WHERE clause to be analyzed */
751){
drh6c30be82005-07-29 15:10:17 +0000752 int i;
drh9eb20282005-08-24 03:52:18 +0000753 for(i=pWC->nTerm-1; i>=0; i--){
drh7b4fc6a2007-02-06 13:26:32 +0000754 exprAnalyze(pTabList, pWC, i);
drh6c30be82005-07-29 15:10:17 +0000755 }
756}
757
drhd2687b72005-08-12 22:56:09 +0000758#ifndef SQLITE_OMIT_LIKE_OPTIMIZATION
759/*
760** Check to see if the given expression is a LIKE or GLOB operator that
761** can be optimized using inequality constraints. Return TRUE if it is
762** so and false if not.
763**
764** In order for the operator to be optimizible, the RHS must be a string
765** literal that does not begin with a wildcard.
766*/
767static int isLikeOrGlob(
drh7d10d5a2008-08-20 16:35:10 +0000768 Parse *pParse, /* Parsing and code generating context */
drhd2687b72005-08-12 22:56:09 +0000769 Expr *pExpr, /* Test this expression */
dan937d0de2009-10-15 18:35:38 +0000770 Expr **ppPrefix, /* Pointer to TK_STRING expression with pattern prefix */
drh9f504ea2008-02-23 21:55:39 +0000771 int *pisComplete, /* True if the only wildcard is % in the last character */
772 int *pnoCase /* True if uppercase is equivalent to lowercase */
drhd2687b72005-08-12 22:56:09 +0000773){
dan937d0de2009-10-15 18:35:38 +0000774 const char *z = 0; /* String on RHS of LIKE operator */
drh5bd98ae2009-01-07 18:24:03 +0000775 Expr *pRight, *pLeft; /* Right and left size of LIKE operator */
776 ExprList *pList; /* List of operands to the LIKE operator */
777 int c; /* One character in z[] */
778 int cnt; /* Number of non-wildcard prefix characters */
779 char wc[3]; /* Wildcard characters */
drh5bd98ae2009-01-07 18:24:03 +0000780 sqlite3 *db = pParse->db; /* Database connection */
dan937d0de2009-10-15 18:35:38 +0000781 sqlite3_value *pVal = 0;
782 int op; /* Opcode of pRight */
drhd64fe2f2005-08-28 17:00:23 +0000783
drh9f504ea2008-02-23 21:55:39 +0000784 if( !sqlite3IsLikeFunction(db, pExpr, pnoCase, wc) ){
drhd2687b72005-08-12 22:56:09 +0000785 return 0;
786 }
drh9f504ea2008-02-23 21:55:39 +0000787#ifdef SQLITE_EBCDIC
788 if( *pnoCase ) return 0;
789#endif
danielk19776ab3a2e2009-02-19 14:39:25 +0000790 pList = pExpr->x.pList;
drh55ef4d92005-08-14 01:20:37 +0000791 pLeft = pList->a[1].pExpr;
danc68939e2012-03-29 14:29:07 +0000792 if( pLeft->op!=TK_COLUMN
793 || sqlite3ExprAffinity(pLeft)!=SQLITE_AFF_TEXT
794 || IsVirtual(pLeft->pTab)
795 ){
drhd91ca492009-10-22 20:50:36 +0000796 /* IMP: R-02065-49465 The left-hand side of the LIKE or GLOB operator must
797 ** be the name of an indexed column with TEXT affinity. */
drhd2687b72005-08-12 22:56:09 +0000798 return 0;
799 }
drhd91ca492009-10-22 20:50:36 +0000800 assert( pLeft->iColumn!=(-1) ); /* Because IPK never has AFF_TEXT */
dan937d0de2009-10-15 18:35:38 +0000801
802 pRight = pList->a[0].pExpr;
803 op = pRight->op;
804 if( op==TK_REGISTER ){
805 op = pRight->op2;
806 }
807 if( op==TK_VARIABLE ){
808 Vdbe *pReprepare = pParse->pReprepare;
drha7044002010-09-14 18:22:59 +0000809 int iCol = pRight->iColumn;
810 pVal = sqlite3VdbeGetValue(pReprepare, iCol, SQLITE_AFF_NONE);
dan937d0de2009-10-15 18:35:38 +0000811 if( pVal && sqlite3_value_type(pVal)==SQLITE_TEXT ){
812 z = (char *)sqlite3_value_text(pVal);
813 }
drhf9b22ca2011-10-21 16:47:31 +0000814 sqlite3VdbeSetVarmask(pParse->pVdbe, iCol);
dan937d0de2009-10-15 18:35:38 +0000815 assert( pRight->op==TK_VARIABLE || pRight->op==TK_REGISTER );
816 }else if( op==TK_STRING ){
817 z = pRight->u.zToken;
818 }
819 if( z ){
shane85095702009-06-15 16:27:08 +0000820 cnt = 0;
drhb7916a72009-05-27 10:31:29 +0000821 while( (c=z[cnt])!=0 && c!=wc[0] && c!=wc[1] && c!=wc[2] ){
drh24fb6272009-05-01 21:13:36 +0000822 cnt++;
823 }
drh93ee23c2010-07-22 12:33:57 +0000824 if( cnt!=0 && 255!=(u8)z[cnt-1] ){
dan937d0de2009-10-15 18:35:38 +0000825 Expr *pPrefix;
drh93ee23c2010-07-22 12:33:57 +0000826 *pisComplete = c==wc[0] && z[cnt+1]==0;
dan937d0de2009-10-15 18:35:38 +0000827 pPrefix = sqlite3Expr(db, TK_STRING, z);
828 if( pPrefix ) pPrefix->u.zToken[cnt] = 0;
829 *ppPrefix = pPrefix;
830 if( op==TK_VARIABLE ){
831 Vdbe *v = pParse->pVdbe;
drhf9b22ca2011-10-21 16:47:31 +0000832 sqlite3VdbeSetVarmask(v, pRight->iColumn);
dan937d0de2009-10-15 18:35:38 +0000833 if( *pisComplete && pRight->u.zToken[1] ){
834 /* If the rhs of the LIKE expression is a variable, and the current
835 ** value of the variable means there is no need to invoke the LIKE
836 ** function, then no OP_Variable will be added to the program.
837 ** This causes problems for the sqlite3_bind_parameter_name()
drhbec451f2009-10-17 13:13:02 +0000838 ** API. To workaround them, add a dummy OP_Variable here.
839 */
840 int r1 = sqlite3GetTempReg(pParse);
841 sqlite3ExprCodeTarget(pParse, pRight, r1);
dan937d0de2009-10-15 18:35:38 +0000842 sqlite3VdbeChangeP3(v, sqlite3VdbeCurrentAddr(v)-1, 0);
drhbec451f2009-10-17 13:13:02 +0000843 sqlite3ReleaseTempReg(pParse, r1);
dan937d0de2009-10-15 18:35:38 +0000844 }
845 }
846 }else{
847 z = 0;
shane85095702009-06-15 16:27:08 +0000848 }
drhf998b732007-11-26 13:36:00 +0000849 }
dan937d0de2009-10-15 18:35:38 +0000850
851 sqlite3ValueFree(pVal);
852 return (z!=0);
drhd2687b72005-08-12 22:56:09 +0000853}
854#endif /* SQLITE_OMIT_LIKE_OPTIMIZATION */
855
drhedb193b2006-06-27 13:20:21 +0000856
857#ifndef SQLITE_OMIT_VIRTUALTABLE
drhfe05af82005-07-21 03:14:59 +0000858/*
drh7f375902006-06-13 17:38:59 +0000859** Check to see if the given expression is of the form
860**
861** column MATCH expr
862**
863** If it is then return TRUE. If not, return FALSE.
864*/
865static int isMatchOfColumn(
866 Expr *pExpr /* Test this expression */
867){
868 ExprList *pList;
869
870 if( pExpr->op!=TK_FUNCTION ){
871 return 0;
872 }
drh33e619f2009-05-28 01:00:55 +0000873 if( sqlite3StrICmp(pExpr->u.zToken,"match")!=0 ){
drh7f375902006-06-13 17:38:59 +0000874 return 0;
875 }
danielk19776ab3a2e2009-02-19 14:39:25 +0000876 pList = pExpr->x.pList;
drh7f375902006-06-13 17:38:59 +0000877 if( pList->nExpr!=2 ){
878 return 0;
879 }
880 if( pList->a[1].pExpr->op != TK_COLUMN ){
881 return 0;
882 }
883 return 1;
884}
drhedb193b2006-06-27 13:20:21 +0000885#endif /* SQLITE_OMIT_VIRTUALTABLE */
drh7f375902006-06-13 17:38:59 +0000886
887/*
drh54a167d2005-11-26 14:08:07 +0000888** If the pBase expression originated in the ON or USING clause of
889** a join, then transfer the appropriate markings over to derived.
890*/
891static void transferJoinMarkings(Expr *pDerived, Expr *pBase){
892 pDerived->flags |= pBase->flags & EP_FromJoin;
893 pDerived->iRightJoinTable = pBase->iRightJoinTable;
894}
895
drh3e355802007-02-23 23:13:33 +0000896#if !defined(SQLITE_OMIT_OR_OPTIMIZATION) && !defined(SQLITE_OMIT_SUBQUERY)
897/*
drh1a58fe02008-12-20 02:06:13 +0000898** Analyze a term that consists of two or more OR-connected
899** subterms. So in:
drh3e355802007-02-23 23:13:33 +0000900**
drh1a58fe02008-12-20 02:06:13 +0000901** ... WHERE (a=5) AND (b=7 OR c=9 OR d=13) AND (d=13)
902** ^^^^^^^^^^^^^^^^^^^^
drh3e355802007-02-23 23:13:33 +0000903**
drh1a58fe02008-12-20 02:06:13 +0000904** This routine analyzes terms such as the middle term in the above example.
905** A WhereOrTerm object is computed and attached to the term under
906** analysis, regardless of the outcome of the analysis. Hence:
drh3e355802007-02-23 23:13:33 +0000907**
drh1a58fe02008-12-20 02:06:13 +0000908** WhereTerm.wtFlags |= TERM_ORINFO
909** WhereTerm.u.pOrInfo = a dynamically allocated WhereOrTerm object
drh3e355802007-02-23 23:13:33 +0000910**
drh1a58fe02008-12-20 02:06:13 +0000911** The term being analyzed must have two or more of OR-connected subterms.
danielk1977fdc40192008-12-29 18:33:32 +0000912** A single subterm might be a set of AND-connected sub-subterms.
drh1a58fe02008-12-20 02:06:13 +0000913** Examples of terms under analysis:
drh3e355802007-02-23 23:13:33 +0000914**
drh1a58fe02008-12-20 02:06:13 +0000915** (A) t1.x=t2.y OR t1.x=t2.z OR t1.y=15 OR t1.z=t3.a+5
916** (B) x=expr1 OR expr2=x OR x=expr3
917** (C) t1.x=t2.y OR (t1.x=t2.z AND t1.y=15)
918** (D) x=expr1 OR (y>11 AND y<22 AND z LIKE '*hello*')
919** (E) (p.a=1 AND q.b=2 AND r.c=3) OR (p.x=4 AND q.y=5 AND r.z=6)
drh3e355802007-02-23 23:13:33 +0000920**
drh1a58fe02008-12-20 02:06:13 +0000921** CASE 1:
922**
drhc3e552f2013-02-08 16:04:19 +0000923** If all subterms are of the form T.C=expr for some single column of C and
drh1a58fe02008-12-20 02:06:13 +0000924** a single table T (as shown in example B above) then create a new virtual
925** term that is an equivalent IN expression. In other words, if the term
926** being analyzed is:
927**
928** x = expr1 OR expr2 = x OR x = expr3
929**
930** then create a new virtual term like this:
931**
932** x IN (expr1,expr2,expr3)
933**
934** CASE 2:
935**
936** If all subterms are indexable by a single table T, then set
937**
938** WhereTerm.eOperator = WO_OR
939** WhereTerm.u.pOrInfo->indexable |= the cursor number for table T
940**
941** A subterm is "indexable" if it is of the form
942** "T.C <op> <expr>" where C is any column of table T and
943** <op> is one of "=", "<", "<=", ">", ">=", "IS NULL", or "IN".
944** A subterm is also indexable if it is an AND of two or more
945** subsubterms at least one of which is indexable. Indexable AND
946** subterms have their eOperator set to WO_AND and they have
947** u.pAndInfo set to a dynamically allocated WhereAndTerm object.
948**
949** From another point of view, "indexable" means that the subterm could
950** potentially be used with an index if an appropriate index exists.
951** This analysis does not consider whether or not the index exists; that
952** is something the bestIndex() routine will determine. This analysis
953** only looks at whether subterms appropriate for indexing exist.
954**
955** All examples A through E above all satisfy case 2. But if a term
956** also statisfies case 1 (such as B) we know that the optimizer will
957** always prefer case 1, so in that case we pretend that case 2 is not
958** satisfied.
959**
960** It might be the case that multiple tables are indexable. For example,
961** (E) above is indexable on tables P, Q, and R.
962**
963** Terms that satisfy case 2 are candidates for lookup by using
964** separate indices to find rowids for each subterm and composing
965** the union of all rowids using a RowSet object. This is similar
966** to "bitmap indices" in other database engines.
967**
968** OTHERWISE:
969**
970** If neither case 1 nor case 2 apply, then leave the eOperator set to
971** zero. This term is not useful for search.
drh3e355802007-02-23 23:13:33 +0000972*/
drh1a58fe02008-12-20 02:06:13 +0000973static void exprAnalyzeOrTerm(
974 SrcList *pSrc, /* the FROM clause */
975 WhereClause *pWC, /* the complete WHERE clause */
976 int idxTerm /* Index of the OR-term to be analyzed */
977){
978 Parse *pParse = pWC->pParse; /* Parser context */
979 sqlite3 *db = pParse->db; /* Database connection */
980 WhereTerm *pTerm = &pWC->a[idxTerm]; /* The term to be analyzed */
981 Expr *pExpr = pTerm->pExpr; /* The expression of the term */
drh111a6a72008-12-21 03:51:16 +0000982 WhereMaskSet *pMaskSet = pWC->pMaskSet; /* Table use masks */
drh1a58fe02008-12-20 02:06:13 +0000983 int i; /* Loop counters */
984 WhereClause *pOrWc; /* Breakup of pTerm into subterms */
985 WhereTerm *pOrTerm; /* A Sub-term within the pOrWc */
986 WhereOrInfo *pOrInfo; /* Additional information associated with pTerm */
987 Bitmask chngToIN; /* Tables that might satisfy case 1 */
988 Bitmask indexable; /* Tables that are indexable, satisfying case 2 */
drh3e355802007-02-23 23:13:33 +0000989
drh1a58fe02008-12-20 02:06:13 +0000990 /*
991 ** Break the OR clause into its separate subterms. The subterms are
992 ** stored in a WhereClause structure containing within the WhereOrInfo
993 ** object that is attached to the original OR clause term.
994 */
995 assert( (pTerm->wtFlags & (TERM_DYNAMIC|TERM_ORINFO|TERM_ANDINFO))==0 );
996 assert( pExpr->op==TK_OR );
drh954701a2008-12-29 23:45:07 +0000997 pTerm->u.pOrInfo = pOrInfo = sqlite3DbMallocZero(db, sizeof(*pOrInfo));
drh1a58fe02008-12-20 02:06:13 +0000998 if( pOrInfo==0 ) return;
999 pTerm->wtFlags |= TERM_ORINFO;
1000 pOrWc = &pOrInfo->wc;
drh9ef61f42011-10-07 14:40:59 +00001001 whereClauseInit(pOrWc, pWC->pParse, pMaskSet, pWC->wctrlFlags);
drh1a58fe02008-12-20 02:06:13 +00001002 whereSplit(pOrWc, pExpr, TK_OR);
1003 exprAnalyzeAll(pSrc, pOrWc);
1004 if( db->mallocFailed ) return;
1005 assert( pOrWc->nTerm>=2 );
1006
1007 /*
1008 ** Compute the set of tables that might satisfy cases 1 or 2.
1009 */
danielk1977e672c8e2009-05-22 15:43:26 +00001010 indexable = ~(Bitmask)0;
drhc3e552f2013-02-08 16:04:19 +00001011 chngToIN = ~(Bitmask)0;
drh1a58fe02008-12-20 02:06:13 +00001012 for(i=pOrWc->nTerm-1, pOrTerm=pOrWc->a; i>=0 && indexable; i--, pOrTerm++){
1013 if( (pOrTerm->eOperator & WO_SINGLE)==0 ){
drh29435252008-12-28 18:35:08 +00001014 WhereAndInfo *pAndInfo;
drh29435252008-12-28 18:35:08 +00001015 assert( (pOrTerm->wtFlags & (TERM_ANDINFO|TERM_ORINFO))==0 );
drh1a58fe02008-12-20 02:06:13 +00001016 chngToIN = 0;
drh29435252008-12-28 18:35:08 +00001017 pAndInfo = sqlite3DbMallocRaw(db, sizeof(*pAndInfo));
1018 if( pAndInfo ){
1019 WhereClause *pAndWC;
1020 WhereTerm *pAndTerm;
1021 int j;
1022 Bitmask b = 0;
1023 pOrTerm->u.pAndInfo = pAndInfo;
1024 pOrTerm->wtFlags |= TERM_ANDINFO;
1025 pOrTerm->eOperator = WO_AND;
1026 pAndWC = &pAndInfo->wc;
drh9ef61f42011-10-07 14:40:59 +00001027 whereClauseInit(pAndWC, pWC->pParse, pMaskSet, pWC->wctrlFlags);
drh29435252008-12-28 18:35:08 +00001028 whereSplit(pAndWC, pOrTerm->pExpr, TK_AND);
1029 exprAnalyzeAll(pSrc, pAndWC);
drh8871ef52011-10-07 13:33:10 +00001030 pAndWC->pOuter = pWC;
drh7c2fbde2009-01-07 20:58:57 +00001031 testcase( db->mallocFailed );
drh96c7a7d2009-01-10 15:34:12 +00001032 if( !db->mallocFailed ){
1033 for(j=0, pAndTerm=pAndWC->a; j<pAndWC->nTerm; j++, pAndTerm++){
1034 assert( pAndTerm->pExpr );
1035 if( allowedOp(pAndTerm->pExpr->op) ){
1036 b |= getMask(pMaskSet, pAndTerm->leftCursor);
1037 }
drh29435252008-12-28 18:35:08 +00001038 }
1039 }
1040 indexable &= b;
1041 }
drh1a58fe02008-12-20 02:06:13 +00001042 }else if( pOrTerm->wtFlags & TERM_COPIED ){
1043 /* Skip this term for now. We revisit it when we process the
1044 ** corresponding TERM_VIRTUAL term */
1045 }else{
1046 Bitmask b;
1047 b = getMask(pMaskSet, pOrTerm->leftCursor);
1048 if( pOrTerm->wtFlags & TERM_VIRTUAL ){
1049 WhereTerm *pOther = &pOrWc->a[pOrTerm->iParent];
1050 b |= getMask(pMaskSet, pOther->leftCursor);
1051 }
1052 indexable &= b;
drh7a5bcc02013-01-16 17:08:58 +00001053 if( (pOrTerm->eOperator & WO_EQ)==0 ){
drh1a58fe02008-12-20 02:06:13 +00001054 chngToIN = 0;
1055 }else{
1056 chngToIN &= b;
1057 }
1058 }
drh3e355802007-02-23 23:13:33 +00001059 }
drh1a58fe02008-12-20 02:06:13 +00001060
1061 /*
1062 ** Record the set of tables that satisfy case 2. The set might be
drh111a6a72008-12-21 03:51:16 +00001063 ** empty.
drh1a58fe02008-12-20 02:06:13 +00001064 */
1065 pOrInfo->indexable = indexable;
drh111a6a72008-12-21 03:51:16 +00001066 pTerm->eOperator = indexable==0 ? 0 : WO_OR;
drh1a58fe02008-12-20 02:06:13 +00001067
1068 /*
1069 ** chngToIN holds a set of tables that *might* satisfy case 1. But
1070 ** we have to do some additional checking to see if case 1 really
1071 ** is satisfied.
drh4e8be3b2009-06-08 17:11:08 +00001072 **
1073 ** chngToIN will hold either 0, 1, or 2 bits. The 0-bit case means
1074 ** that there is no possibility of transforming the OR clause into an
1075 ** IN operator because one or more terms in the OR clause contain
1076 ** something other than == on a column in the single table. The 1-bit
1077 ** case means that every term of the OR clause is of the form
1078 ** "table.column=expr" for some single table. The one bit that is set
1079 ** will correspond to the common table. We still need to check to make
1080 ** sure the same column is used on all terms. The 2-bit case is when
1081 ** the all terms are of the form "table1.column=table2.column". It
1082 ** might be possible to form an IN operator with either table1.column
1083 ** or table2.column as the LHS if either is common to every term of
1084 ** the OR clause.
1085 **
1086 ** Note that terms of the form "table.column1=table.column2" (the
1087 ** same table on both sizes of the ==) cannot be optimized.
drh1a58fe02008-12-20 02:06:13 +00001088 */
1089 if( chngToIN ){
1090 int okToChngToIN = 0; /* True if the conversion to IN is valid */
1091 int iColumn = -1; /* Column index on lhs of IN operator */
shane63207ab2009-02-04 01:49:30 +00001092 int iCursor = -1; /* Table cursor common to all terms */
drh1a58fe02008-12-20 02:06:13 +00001093 int j = 0; /* Loop counter */
1094
1095 /* Search for a table and column that appears on one side or the
1096 ** other of the == operator in every subterm. That table and column
1097 ** will be recorded in iCursor and iColumn. There might not be any
1098 ** such table and column. Set okToChngToIN if an appropriate table
1099 ** and column is found but leave okToChngToIN false if not found.
1100 */
1101 for(j=0; j<2 && !okToChngToIN; j++){
1102 pOrTerm = pOrWc->a;
1103 for(i=pOrWc->nTerm-1; i>=0; i--, pOrTerm++){
drh7a5bcc02013-01-16 17:08:58 +00001104 assert( pOrTerm->eOperator & WO_EQ );
drh1a58fe02008-12-20 02:06:13 +00001105 pOrTerm->wtFlags &= ~TERM_OR_OK;
drh4e8be3b2009-06-08 17:11:08 +00001106 if( pOrTerm->leftCursor==iCursor ){
1107 /* This is the 2-bit case and we are on the second iteration and
1108 ** current term is from the first iteration. So skip this term. */
1109 assert( j==1 );
1110 continue;
1111 }
1112 if( (chngToIN & getMask(pMaskSet, pOrTerm->leftCursor))==0 ){
1113 /* This term must be of the form t1.a==t2.b where t2 is in the
1114 ** chngToIN set but t1 is not. This term will be either preceeded
1115 ** or follwed by an inverted copy (t2.b==t1.a). Skip this term
1116 ** and use its inversion. */
1117 testcase( pOrTerm->wtFlags & TERM_COPIED );
1118 testcase( pOrTerm->wtFlags & TERM_VIRTUAL );
1119 assert( pOrTerm->wtFlags & (TERM_COPIED|TERM_VIRTUAL) );
1120 continue;
1121 }
drh1a58fe02008-12-20 02:06:13 +00001122 iColumn = pOrTerm->u.leftColumn;
1123 iCursor = pOrTerm->leftCursor;
1124 break;
1125 }
1126 if( i<0 ){
drh4e8be3b2009-06-08 17:11:08 +00001127 /* No candidate table+column was found. This can only occur
1128 ** on the second iteration */
drh1a58fe02008-12-20 02:06:13 +00001129 assert( j==1 );
drh7a5bcc02013-01-16 17:08:58 +00001130 assert( IsPowerOfTwo(chngToIN) );
drh4e8be3b2009-06-08 17:11:08 +00001131 assert( chngToIN==getMask(pMaskSet, iCursor) );
drh1a58fe02008-12-20 02:06:13 +00001132 break;
1133 }
drh4e8be3b2009-06-08 17:11:08 +00001134 testcase( j==1 );
1135
1136 /* We have found a candidate table and column. Check to see if that
1137 ** table and column is common to every term in the OR clause */
drh1a58fe02008-12-20 02:06:13 +00001138 okToChngToIN = 1;
1139 for(; i>=0 && okToChngToIN; i--, pOrTerm++){
drh7a5bcc02013-01-16 17:08:58 +00001140 assert( pOrTerm->eOperator & WO_EQ );
drh1a58fe02008-12-20 02:06:13 +00001141 if( pOrTerm->leftCursor!=iCursor ){
1142 pOrTerm->wtFlags &= ~TERM_OR_OK;
1143 }else if( pOrTerm->u.leftColumn!=iColumn ){
1144 okToChngToIN = 0;
1145 }else{
1146 int affLeft, affRight;
1147 /* If the right-hand side is also a column, then the affinities
1148 ** of both right and left sides must be such that no type
1149 ** conversions are required on the right. (Ticket #2249)
1150 */
1151 affRight = sqlite3ExprAffinity(pOrTerm->pExpr->pRight);
1152 affLeft = sqlite3ExprAffinity(pOrTerm->pExpr->pLeft);
1153 if( affRight!=0 && affRight!=affLeft ){
1154 okToChngToIN = 0;
1155 }else{
1156 pOrTerm->wtFlags |= TERM_OR_OK;
1157 }
1158 }
1159 }
1160 }
1161
1162 /* At this point, okToChngToIN is true if original pTerm satisfies
1163 ** case 1. In that case, construct a new virtual term that is
1164 ** pTerm converted into an IN operator.
drhe9cdcea2010-07-22 22:40:03 +00001165 **
1166 ** EV: R-00211-15100
drh1a58fe02008-12-20 02:06:13 +00001167 */
1168 if( okToChngToIN ){
1169 Expr *pDup; /* A transient duplicate expression */
1170 ExprList *pList = 0; /* The RHS of the IN operator */
1171 Expr *pLeft = 0; /* The LHS of the IN operator */
1172 Expr *pNew; /* The complete IN operator */
1173
1174 for(i=pOrWc->nTerm-1, pOrTerm=pOrWc->a; i>=0; i--, pOrTerm++){
1175 if( (pOrTerm->wtFlags & TERM_OR_OK)==0 ) continue;
drh7a5bcc02013-01-16 17:08:58 +00001176 assert( pOrTerm->eOperator & WO_EQ );
drh1a58fe02008-12-20 02:06:13 +00001177 assert( pOrTerm->leftCursor==iCursor );
1178 assert( pOrTerm->u.leftColumn==iColumn );
danielk19776ab3a2e2009-02-19 14:39:25 +00001179 pDup = sqlite3ExprDup(db, pOrTerm->pExpr->pRight, 0);
drhb7916a72009-05-27 10:31:29 +00001180 pList = sqlite3ExprListAppend(pWC->pParse, pList, pDup);
drh1a58fe02008-12-20 02:06:13 +00001181 pLeft = pOrTerm->pExpr->pLeft;
1182 }
1183 assert( pLeft!=0 );
danielk19776ab3a2e2009-02-19 14:39:25 +00001184 pDup = sqlite3ExprDup(db, pLeft, 0);
drhb7916a72009-05-27 10:31:29 +00001185 pNew = sqlite3PExpr(pParse, TK_IN, pDup, 0, 0);
drh1a58fe02008-12-20 02:06:13 +00001186 if( pNew ){
1187 int idxNew;
1188 transferJoinMarkings(pNew, pExpr);
danielk19776ab3a2e2009-02-19 14:39:25 +00001189 assert( !ExprHasProperty(pNew, EP_xIsSelect) );
1190 pNew->x.pList = pList;
drh1a58fe02008-12-20 02:06:13 +00001191 idxNew = whereClauseInsert(pWC, pNew, TERM_VIRTUAL|TERM_DYNAMIC);
1192 testcase( idxNew==0 );
1193 exprAnalyze(pSrc, pWC, idxNew);
1194 pTerm = &pWC->a[idxTerm];
1195 pWC->a[idxNew].iParent = idxTerm;
1196 pTerm->nChild = 1;
1197 }else{
1198 sqlite3ExprListDelete(db, pList);
1199 }
drh534230c2011-01-22 00:10:45 +00001200 pTerm->eOperator = WO_NOOP; /* case 1 trumps case 2 */
drh1a58fe02008-12-20 02:06:13 +00001201 }
drh3e355802007-02-23 23:13:33 +00001202 }
drh3e355802007-02-23 23:13:33 +00001203}
1204#endif /* !SQLITE_OMIT_OR_OPTIMIZATION && !SQLITE_OMIT_SUBQUERY */
drh54a167d2005-11-26 14:08:07 +00001205
drh7a5bcc02013-01-16 17:08:58 +00001206/*
drh0aa74ed2005-07-16 13:33:20 +00001207** The input to this routine is an WhereTerm structure with only the
drh51147ba2005-07-23 22:59:55 +00001208** "pExpr" field filled in. The job of this routine is to analyze the
drh0aa74ed2005-07-16 13:33:20 +00001209** subexpression and populate all the other fields of the WhereTerm
drh75897232000-05-29 14:26:00 +00001210** structure.
drh51147ba2005-07-23 22:59:55 +00001211**
1212** If the expression is of the form "<expr> <op> X" it gets commuted
drh1a58fe02008-12-20 02:06:13 +00001213** to the standard form of "X <op> <expr>".
1214**
1215** If the expression is of the form "X <op> Y" where both X and Y are
1216** columns, then the original expression is unchanged and a new virtual
1217** term of the form "Y <op> X" is added to the WHERE clause and
1218** analyzed separately. The original term is marked with TERM_COPIED
1219** and the new term is marked with TERM_DYNAMIC (because it's pExpr
1220** needs to be freed with the WhereClause) and TERM_VIRTUAL (because it
1221** is a commuted copy of a prior term.) The original term has nChild=1
1222** and the copy has idxParent set to the index of the original term.
drh75897232000-05-29 14:26:00 +00001223*/
drh0fcef5e2005-07-19 17:38:22 +00001224static void exprAnalyze(
1225 SrcList *pSrc, /* the FROM clause */
drh9eb20282005-08-24 03:52:18 +00001226 WhereClause *pWC, /* the WHERE clause */
1227 int idxTerm /* Index of the term to be analyzed */
drh0fcef5e2005-07-19 17:38:22 +00001228){
drh1a58fe02008-12-20 02:06:13 +00001229 WhereTerm *pTerm; /* The term to be analyzed */
drh111a6a72008-12-21 03:51:16 +00001230 WhereMaskSet *pMaskSet; /* Set of table index masks */
drh1a58fe02008-12-20 02:06:13 +00001231 Expr *pExpr; /* The expression to be analyzed */
1232 Bitmask prereqLeft; /* Prerequesites of the pExpr->pLeft */
1233 Bitmask prereqAll; /* Prerequesites of pExpr */
drh5e767c52010-02-25 04:15:47 +00001234 Bitmask extraRight = 0; /* Extra dependencies on LEFT JOIN */
drh1d452e12009-11-01 19:26:59 +00001235 Expr *pStr1 = 0; /* RHS of LIKE/GLOB operator */
1236 int isComplete = 0; /* RHS of LIKE/GLOB ends with wildcard */
1237 int noCase = 0; /* LIKE/GLOB distinguishes case */
drh1a58fe02008-12-20 02:06:13 +00001238 int op; /* Top-level operator. pExpr->op */
1239 Parse *pParse = pWC->pParse; /* Parsing context */
1240 sqlite3 *db = pParse->db; /* Database connection */
drh0fcef5e2005-07-19 17:38:22 +00001241
drhf998b732007-11-26 13:36:00 +00001242 if( db->mallocFailed ){
1243 return;
1244 }
1245 pTerm = &pWC->a[idxTerm];
1246 pMaskSet = pWC->pMaskSet;
drh7ee751d2012-12-19 15:53:51 +00001247 pExpr = pTerm->pExpr;
1248 assert( pExpr->op!=TK_AS && pExpr->op!=TK_COLLATE );
drh0fcef5e2005-07-19 17:38:22 +00001249 prereqLeft = exprTableUsage(pMaskSet, pExpr->pLeft);
drh50b39962006-10-28 00:28:09 +00001250 op = pExpr->op;
1251 if( op==TK_IN ){
drhf5b11382005-09-17 13:07:13 +00001252 assert( pExpr->pRight==0 );
danielk19776ab3a2e2009-02-19 14:39:25 +00001253 if( ExprHasProperty(pExpr, EP_xIsSelect) ){
1254 pTerm->prereqRight = exprSelectTableUsage(pMaskSet, pExpr->x.pSelect);
1255 }else{
1256 pTerm->prereqRight = exprListTableUsage(pMaskSet, pExpr->x.pList);
1257 }
drh50b39962006-10-28 00:28:09 +00001258 }else if( op==TK_ISNULL ){
1259 pTerm->prereqRight = 0;
drhf5b11382005-09-17 13:07:13 +00001260 }else{
1261 pTerm->prereqRight = exprTableUsage(pMaskSet, pExpr->pRight);
1262 }
drh22d6a532005-09-19 21:05:48 +00001263 prereqAll = exprTableUsage(pMaskSet, pExpr);
1264 if( ExprHasProperty(pExpr, EP_FromJoin) ){
drh42165be2008-03-26 14:56:34 +00001265 Bitmask x = getMask(pMaskSet, pExpr->iRightJoinTable);
1266 prereqAll |= x;
drhdafc0ce2008-04-17 19:14:02 +00001267 extraRight = x-1; /* ON clause terms may not be used with an index
1268 ** on left table of a LEFT JOIN. Ticket #3015 */
drh22d6a532005-09-19 21:05:48 +00001269 }
1270 pTerm->prereqAll = prereqAll;
drh0fcef5e2005-07-19 17:38:22 +00001271 pTerm->leftCursor = -1;
drh45b1ee42005-08-02 17:48:22 +00001272 pTerm->iParent = -1;
drhb52076c2006-01-23 13:22:09 +00001273 pTerm->eOperator = 0;
drh738fc792013-01-17 15:05:17 +00001274 if( allowedOp(op) ){
drh7a66da12012-12-07 20:31:11 +00001275 Expr *pLeft = sqlite3ExprSkipCollate(pExpr->pLeft);
1276 Expr *pRight = sqlite3ExprSkipCollate(pExpr->pRight);
drh738fc792013-01-17 15:05:17 +00001277 u16 opMask = (pTerm->prereqRight & prereqLeft)==0 ? WO_ALL : WO_EQUIV;
drh0fcef5e2005-07-19 17:38:22 +00001278 if( pLeft->op==TK_COLUMN ){
1279 pTerm->leftCursor = pLeft->iTable;
drh700a2262008-12-17 19:22:15 +00001280 pTerm->u.leftColumn = pLeft->iColumn;
drh738fc792013-01-17 15:05:17 +00001281 pTerm->eOperator = operatorMask(op) & opMask;
drh75897232000-05-29 14:26:00 +00001282 }
drh0fcef5e2005-07-19 17:38:22 +00001283 if( pRight && pRight->op==TK_COLUMN ){
1284 WhereTerm *pNew;
1285 Expr *pDup;
drh7a5bcc02013-01-16 17:08:58 +00001286 u16 eExtraOp = 0; /* Extra bits for pNew->eOperator */
drh0fcef5e2005-07-19 17:38:22 +00001287 if( pTerm->leftCursor>=0 ){
drh9eb20282005-08-24 03:52:18 +00001288 int idxNew;
danielk19776ab3a2e2009-02-19 14:39:25 +00001289 pDup = sqlite3ExprDup(db, pExpr, 0);
drh17435752007-08-16 04:30:38 +00001290 if( db->mallocFailed ){
drh633e6d52008-07-28 19:34:53 +00001291 sqlite3ExprDelete(db, pDup);
drh28f45912006-10-18 23:26:38 +00001292 return;
1293 }
drh9eb20282005-08-24 03:52:18 +00001294 idxNew = whereClauseInsert(pWC, pDup, TERM_VIRTUAL|TERM_DYNAMIC);
1295 if( idxNew==0 ) return;
1296 pNew = &pWC->a[idxNew];
1297 pNew->iParent = idxTerm;
1298 pTerm = &pWC->a[idxTerm];
drh45b1ee42005-08-02 17:48:22 +00001299 pTerm->nChild = 1;
drh165be382008-12-05 02:36:33 +00001300 pTerm->wtFlags |= TERM_COPIED;
drheb5bc922013-01-17 16:43:33 +00001301 if( pExpr->op==TK_EQ
1302 && !ExprHasProperty(pExpr, EP_FromJoin)
1303 && OptimizationEnabled(db, SQLITE_Transitive)
1304 ){
drh7a5bcc02013-01-16 17:08:58 +00001305 pTerm->eOperator |= WO_EQUIV;
1306 eExtraOp = WO_EQUIV;
1307 }
drh0fcef5e2005-07-19 17:38:22 +00001308 }else{
1309 pDup = pExpr;
1310 pNew = pTerm;
1311 }
drh7d10d5a2008-08-20 16:35:10 +00001312 exprCommute(pParse, pDup);
drhfb76f5a2012-12-08 14:16:47 +00001313 pLeft = sqlite3ExprSkipCollate(pDup->pLeft);
drh0fcef5e2005-07-19 17:38:22 +00001314 pNew->leftCursor = pLeft->iTable;
drh700a2262008-12-17 19:22:15 +00001315 pNew->u.leftColumn = pLeft->iColumn;
drh5e767c52010-02-25 04:15:47 +00001316 testcase( (prereqLeft | extraRight) != prereqLeft );
1317 pNew->prereqRight = prereqLeft | extraRight;
drh0fcef5e2005-07-19 17:38:22 +00001318 pNew->prereqAll = prereqAll;
drh738fc792013-01-17 15:05:17 +00001319 pNew->eOperator = (operatorMask(pDup->op) + eExtraOp) & opMask;
drh75897232000-05-29 14:26:00 +00001320 }
1321 }
drhed378002005-07-28 23:12:08 +00001322
drhd2687b72005-08-12 22:56:09 +00001323#ifndef SQLITE_OMIT_BETWEEN_OPTIMIZATION
drhed378002005-07-28 23:12:08 +00001324 /* If a term is the BETWEEN operator, create two new virtual terms
drh1a58fe02008-12-20 02:06:13 +00001325 ** that define the range that the BETWEEN implements. For example:
1326 **
1327 ** a BETWEEN b AND c
1328 **
1329 ** is converted into:
1330 **
1331 ** (a BETWEEN b AND c) AND (a>=b) AND (a<=c)
1332 **
1333 ** The two new terms are added onto the end of the WhereClause object.
1334 ** The new terms are "dynamic" and are children of the original BETWEEN
1335 ** term. That means that if the BETWEEN term is coded, the children are
1336 ** skipped. Or, if the children are satisfied by an index, the original
1337 ** BETWEEN term is skipped.
drhed378002005-07-28 23:12:08 +00001338 */
drh29435252008-12-28 18:35:08 +00001339 else if( pExpr->op==TK_BETWEEN && pWC->op==TK_AND ){
danielk19776ab3a2e2009-02-19 14:39:25 +00001340 ExprList *pList = pExpr->x.pList;
drhed378002005-07-28 23:12:08 +00001341 int i;
1342 static const u8 ops[] = {TK_GE, TK_LE};
1343 assert( pList!=0 );
1344 assert( pList->nExpr==2 );
1345 for(i=0; i<2; i++){
1346 Expr *pNewExpr;
drh9eb20282005-08-24 03:52:18 +00001347 int idxNew;
drhb7916a72009-05-27 10:31:29 +00001348 pNewExpr = sqlite3PExpr(pParse, ops[i],
1349 sqlite3ExprDup(db, pExpr->pLeft, 0),
danielk19776ab3a2e2009-02-19 14:39:25 +00001350 sqlite3ExprDup(db, pList->a[i].pExpr, 0), 0);
drh9eb20282005-08-24 03:52:18 +00001351 idxNew = whereClauseInsert(pWC, pNewExpr, TERM_VIRTUAL|TERM_DYNAMIC);
drh6a1e0712008-12-05 15:24:15 +00001352 testcase( idxNew==0 );
drh7b4fc6a2007-02-06 13:26:32 +00001353 exprAnalyze(pSrc, pWC, idxNew);
drh9eb20282005-08-24 03:52:18 +00001354 pTerm = &pWC->a[idxTerm];
1355 pWC->a[idxNew].iParent = idxTerm;
drhed378002005-07-28 23:12:08 +00001356 }
drh45b1ee42005-08-02 17:48:22 +00001357 pTerm->nChild = 2;
drhed378002005-07-28 23:12:08 +00001358 }
drhd2687b72005-08-12 22:56:09 +00001359#endif /* SQLITE_OMIT_BETWEEN_OPTIMIZATION */
drhed378002005-07-28 23:12:08 +00001360
danielk19771576cd92006-01-14 08:02:28 +00001361#if !defined(SQLITE_OMIT_OR_OPTIMIZATION) && !defined(SQLITE_OMIT_SUBQUERY)
drh1a58fe02008-12-20 02:06:13 +00001362 /* Analyze a term that is composed of two or more subterms connected by
1363 ** an OR operator.
drh6c30be82005-07-29 15:10:17 +00001364 */
1365 else if( pExpr->op==TK_OR ){
drh29435252008-12-28 18:35:08 +00001366 assert( pWC->op==TK_AND );
drh1a58fe02008-12-20 02:06:13 +00001367 exprAnalyzeOrTerm(pSrc, pWC, idxTerm);
danielk1977f51d1bd2009-07-31 06:14:51 +00001368 pTerm = &pWC->a[idxTerm];
drh6c30be82005-07-29 15:10:17 +00001369 }
drhd2687b72005-08-12 22:56:09 +00001370#endif /* SQLITE_OMIT_OR_OPTIMIZATION */
1371
1372#ifndef SQLITE_OMIT_LIKE_OPTIMIZATION
1373 /* Add constraints to reduce the search space on a LIKE or GLOB
1374 ** operator.
drh9f504ea2008-02-23 21:55:39 +00001375 **
1376 ** A like pattern of the form "x LIKE 'abc%'" is changed into constraints
1377 **
1378 ** x>='abc' AND x<'abd' AND x LIKE 'abc%'
1379 **
1380 ** The last character of the prefix "abc" is incremented to form the
shane7bc71e52008-05-28 18:01:44 +00001381 ** termination condition "abd".
drhd2687b72005-08-12 22:56:09 +00001382 */
dan937d0de2009-10-15 18:35:38 +00001383 if( pWC->op==TK_AND
1384 && isLikeOrGlob(pParse, pExpr, &pStr1, &isComplete, &noCase)
1385 ){
drh1d452e12009-11-01 19:26:59 +00001386 Expr *pLeft; /* LHS of LIKE/GLOB operator */
1387 Expr *pStr2; /* Copy of pStr1 - RHS of LIKE/GLOB operator */
1388 Expr *pNewExpr1;
1389 Expr *pNewExpr2;
1390 int idxNew1;
1391 int idxNew2;
drhae80dde2012-12-06 21:16:43 +00001392 Token sCollSeqName; /* Name of collating sequence */
drh9eb20282005-08-24 03:52:18 +00001393
danielk19776ab3a2e2009-02-19 14:39:25 +00001394 pLeft = pExpr->x.pList->a[1].pExpr;
danielk19776ab3a2e2009-02-19 14:39:25 +00001395 pStr2 = sqlite3ExprDup(db, pStr1, 0);
drhf998b732007-11-26 13:36:00 +00001396 if( !db->mallocFailed ){
drh254993e2009-06-08 19:44:36 +00001397 u8 c, *pC; /* Last character before the first wildcard */
dan937d0de2009-10-15 18:35:38 +00001398 pC = (u8*)&pStr2->u.zToken[sqlite3Strlen30(pStr2->u.zToken)-1];
drh9f504ea2008-02-23 21:55:39 +00001399 c = *pC;
drh02a50b72008-05-26 18:33:40 +00001400 if( noCase ){
drh254993e2009-06-08 19:44:36 +00001401 /* The point is to increment the last character before the first
1402 ** wildcard. But if we increment '@', that will push it into the
1403 ** alphabetic range where case conversions will mess up the
1404 ** inequality. To avoid this, make sure to also run the full
1405 ** LIKE on all candidate expressions by clearing the isComplete flag
1406 */
drhe9cdcea2010-07-22 22:40:03 +00001407 if( c=='A'-1 ) isComplete = 0; /* EV: R-64339-08207 */
1408
drh254993e2009-06-08 19:44:36 +00001409
drh02a50b72008-05-26 18:33:40 +00001410 c = sqlite3UpperToLower[c];
1411 }
drh9f504ea2008-02-23 21:55:39 +00001412 *pC = c + 1;
drhd2687b72005-08-12 22:56:09 +00001413 }
drhae80dde2012-12-06 21:16:43 +00001414 sCollSeqName.z = noCase ? "NOCASE" : "BINARY";
1415 sCollSeqName.n = 6;
1416 pNewExpr1 = sqlite3ExprDup(db, pLeft, 0);
drh8342e492010-07-22 17:49:52 +00001417 pNewExpr1 = sqlite3PExpr(pParse, TK_GE,
drh0a8a4062012-12-07 18:38:16 +00001418 sqlite3ExprAddCollateToken(pParse,pNewExpr1,&sCollSeqName),
drhae80dde2012-12-06 21:16:43 +00001419 pStr1, 0);
drh9eb20282005-08-24 03:52:18 +00001420 idxNew1 = whereClauseInsert(pWC, pNewExpr1, TERM_VIRTUAL|TERM_DYNAMIC);
drh6a1e0712008-12-05 15:24:15 +00001421 testcase( idxNew1==0 );
drh7b4fc6a2007-02-06 13:26:32 +00001422 exprAnalyze(pSrc, pWC, idxNew1);
drhae80dde2012-12-06 21:16:43 +00001423 pNewExpr2 = sqlite3ExprDup(db, pLeft, 0);
drh8342e492010-07-22 17:49:52 +00001424 pNewExpr2 = sqlite3PExpr(pParse, TK_LT,
drh0a8a4062012-12-07 18:38:16 +00001425 sqlite3ExprAddCollateToken(pParse,pNewExpr2,&sCollSeqName),
drhae80dde2012-12-06 21:16:43 +00001426 pStr2, 0);
drh9eb20282005-08-24 03:52:18 +00001427 idxNew2 = whereClauseInsert(pWC, pNewExpr2, TERM_VIRTUAL|TERM_DYNAMIC);
drh6a1e0712008-12-05 15:24:15 +00001428 testcase( idxNew2==0 );
drh7b4fc6a2007-02-06 13:26:32 +00001429 exprAnalyze(pSrc, pWC, idxNew2);
drh9eb20282005-08-24 03:52:18 +00001430 pTerm = &pWC->a[idxTerm];
drhd2687b72005-08-12 22:56:09 +00001431 if( isComplete ){
drh9eb20282005-08-24 03:52:18 +00001432 pWC->a[idxNew1].iParent = idxTerm;
1433 pWC->a[idxNew2].iParent = idxTerm;
drhd2687b72005-08-12 22:56:09 +00001434 pTerm->nChild = 2;
1435 }
1436 }
1437#endif /* SQLITE_OMIT_LIKE_OPTIMIZATION */
drh7f375902006-06-13 17:38:59 +00001438
1439#ifndef SQLITE_OMIT_VIRTUALTABLE
1440 /* Add a WO_MATCH auxiliary term to the constraint set if the
1441 ** current expression is of the form: column MATCH expr.
1442 ** This information is used by the xBestIndex methods of
1443 ** virtual tables. The native query optimizer does not attempt
1444 ** to do anything with MATCH functions.
1445 */
1446 if( isMatchOfColumn(pExpr) ){
1447 int idxNew;
1448 Expr *pRight, *pLeft;
1449 WhereTerm *pNewTerm;
1450 Bitmask prereqColumn, prereqExpr;
1451
danielk19776ab3a2e2009-02-19 14:39:25 +00001452 pRight = pExpr->x.pList->a[0].pExpr;
1453 pLeft = pExpr->x.pList->a[1].pExpr;
drh7f375902006-06-13 17:38:59 +00001454 prereqExpr = exprTableUsage(pMaskSet, pRight);
1455 prereqColumn = exprTableUsage(pMaskSet, pLeft);
1456 if( (prereqExpr & prereqColumn)==0 ){
drh1a90e092006-06-14 22:07:10 +00001457 Expr *pNewExpr;
drhb7916a72009-05-27 10:31:29 +00001458 pNewExpr = sqlite3PExpr(pParse, TK_MATCH,
1459 0, sqlite3ExprDup(db, pRight, 0), 0);
drh1a90e092006-06-14 22:07:10 +00001460 idxNew = whereClauseInsert(pWC, pNewExpr, TERM_VIRTUAL|TERM_DYNAMIC);
drh6a1e0712008-12-05 15:24:15 +00001461 testcase( idxNew==0 );
drh7f375902006-06-13 17:38:59 +00001462 pNewTerm = &pWC->a[idxNew];
1463 pNewTerm->prereqRight = prereqExpr;
1464 pNewTerm->leftCursor = pLeft->iTable;
drh700a2262008-12-17 19:22:15 +00001465 pNewTerm->u.leftColumn = pLeft->iColumn;
drh7f375902006-06-13 17:38:59 +00001466 pNewTerm->eOperator = WO_MATCH;
1467 pNewTerm->iParent = idxTerm;
drhd2ca60d2006-06-27 02:36:58 +00001468 pTerm = &pWC->a[idxTerm];
drh7f375902006-06-13 17:38:59 +00001469 pTerm->nChild = 1;
drh165be382008-12-05 02:36:33 +00001470 pTerm->wtFlags |= TERM_COPIED;
drh7f375902006-06-13 17:38:59 +00001471 pNewTerm->prereqAll = pTerm->prereqAll;
1472 }
1473 }
1474#endif /* SQLITE_OMIT_VIRTUALTABLE */
drhdafc0ce2008-04-17 19:14:02 +00001475
drhfaacf172011-08-12 01:51:45 +00001476#ifdef SQLITE_ENABLE_STAT3
drhd3ed7342011-09-21 00:09:41 +00001477 /* When sqlite_stat3 histogram data is available an operator of the
drh534230c2011-01-22 00:10:45 +00001478 ** form "x IS NOT NULL" can sometimes be evaluated more efficiently
1479 ** as "x>NULL" if x is not an INTEGER PRIMARY KEY. So construct a
1480 ** virtual term of that form.
1481 **
1482 ** Note that the virtual term must be tagged with TERM_VNULL. This
1483 ** TERM_VNULL tag will suppress the not-null check at the beginning
1484 ** of the loop. Without the TERM_VNULL flag, the not-null check at
1485 ** the start of the loop will prevent any results from being returned.
1486 */
drhea6dc442011-04-08 21:35:26 +00001487 if( pExpr->op==TK_NOTNULL
1488 && pExpr->pLeft->op==TK_COLUMN
1489 && pExpr->pLeft->iColumn>=0
1490 ){
drh534230c2011-01-22 00:10:45 +00001491 Expr *pNewExpr;
1492 Expr *pLeft = pExpr->pLeft;
1493 int idxNew;
1494 WhereTerm *pNewTerm;
1495
1496 pNewExpr = sqlite3PExpr(pParse, TK_GT,
1497 sqlite3ExprDup(db, pLeft, 0),
1498 sqlite3PExpr(pParse, TK_NULL, 0, 0, 0), 0);
1499
1500 idxNew = whereClauseInsert(pWC, pNewExpr,
1501 TERM_VIRTUAL|TERM_DYNAMIC|TERM_VNULL);
drhda91e712011-02-11 06:59:02 +00001502 if( idxNew ){
1503 pNewTerm = &pWC->a[idxNew];
1504 pNewTerm->prereqRight = 0;
1505 pNewTerm->leftCursor = pLeft->iTable;
1506 pNewTerm->u.leftColumn = pLeft->iColumn;
1507 pNewTerm->eOperator = WO_GT;
1508 pNewTerm->iParent = idxTerm;
1509 pTerm = &pWC->a[idxTerm];
1510 pTerm->nChild = 1;
1511 pTerm->wtFlags |= TERM_COPIED;
1512 pNewTerm->prereqAll = pTerm->prereqAll;
1513 }
drh534230c2011-01-22 00:10:45 +00001514 }
drhfaacf172011-08-12 01:51:45 +00001515#endif /* SQLITE_ENABLE_STAT */
drh534230c2011-01-22 00:10:45 +00001516
drhdafc0ce2008-04-17 19:14:02 +00001517 /* Prevent ON clause terms of a LEFT JOIN from being used to drive
1518 ** an index for tables to the left of the join.
1519 */
1520 pTerm->prereqRight |= extraRight;
drh75897232000-05-29 14:26:00 +00001521}
1522
drh7b4fc6a2007-02-06 13:26:32 +00001523/*
dan6f343962011-07-01 18:26:40 +00001524** This function searches the expression list passed as the second argument
1525** for an expression of type TK_COLUMN that refers to the same column and
1526** uses the same collation sequence as the iCol'th column of index pIdx.
1527** Argument iBase is the cursor number used for the table that pIdx refers
1528** to.
1529**
1530** If such an expression is found, its index in pList->a[] is returned. If
1531** no expression is found, -1 is returned.
1532*/
1533static int findIndexCol(
1534 Parse *pParse, /* Parse context */
1535 ExprList *pList, /* Expression list to search */
1536 int iBase, /* Cursor for table associated with pIdx */
1537 Index *pIdx, /* Index to match column of */
1538 int iCol /* Column of index to match */
1539){
1540 int i;
1541 const char *zColl = pIdx->azColl[iCol];
1542
1543 for(i=0; i<pList->nExpr; i++){
drh580c8c12012-12-08 03:34:04 +00001544 Expr *p = sqlite3ExprSkipCollate(pList->a[i].pExpr);
drhf1d3e322011-07-09 13:00:41 +00001545 if( p->op==TK_COLUMN
1546 && p->iColumn==pIdx->aiColumn[iCol]
1547 && p->iTable==iBase
1548 ){
drh580c8c12012-12-08 03:34:04 +00001549 CollSeq *pColl = sqlite3ExprCollSeq(pParse, pList->a[i].pExpr);
drhf1d3e322011-07-09 13:00:41 +00001550 if( ALWAYS(pColl) && 0==sqlite3StrICmp(pColl->zName, zColl) ){
dan6f343962011-07-01 18:26:40 +00001551 return i;
1552 }
1553 }
1554 }
1555
1556 return -1;
1557}
1558
1559/*
1560** This routine determines if pIdx can be used to assist in processing a
1561** DISTINCT qualifier. In other words, it tests whether or not using this
1562** index for the outer loop guarantees that rows with equal values for
1563** all expressions in the pDistinct list are delivered grouped together.
1564**
1565** For example, the query
1566**
1567** SELECT DISTINCT a, b, c FROM tbl WHERE a = ?
1568**
1569** can benefit from any index on columns "b" and "c".
1570*/
1571static int isDistinctIndex(
1572 Parse *pParse, /* Parsing context */
1573 WhereClause *pWC, /* The WHERE clause */
1574 Index *pIdx, /* The index being considered */
1575 int base, /* Cursor number for the table pIdx is on */
1576 ExprList *pDistinct, /* The DISTINCT expressions */
1577 int nEqCol /* Number of index columns with == */
1578){
1579 Bitmask mask = 0; /* Mask of unaccounted for pDistinct exprs */
1580 int i; /* Iterator variable */
1581
drh04b85bc2012-10-01 17:44:05 +00001582 assert( pDistinct!=0 );
1583 if( pIdx->zName==0 || pDistinct->nExpr>=BMS ) return 0;
drhb24d83f2011-07-02 19:12:05 +00001584 testcase( pDistinct->nExpr==BMS-1 );
dan6f343962011-07-01 18:26:40 +00001585
1586 /* Loop through all the expressions in the distinct list. If any of them
1587 ** are not simple column references, return early. Otherwise, test if the
1588 ** WHERE clause contains a "col=X" clause. If it does, the expression
1589 ** can be ignored. If it does not, and the column does not belong to the
1590 ** same table as index pIdx, return early. Finally, if there is no
1591 ** matching "col=X" expression and the column is on the same table as pIdx,
1592 ** set the corresponding bit in variable mask.
1593 */
1594 for(i=0; i<pDistinct->nExpr; i++){
1595 WhereTerm *pTerm;
drh580c8c12012-12-08 03:34:04 +00001596 Expr *p = sqlite3ExprSkipCollate(pDistinct->a[i].pExpr);
dan6f343962011-07-01 18:26:40 +00001597 if( p->op!=TK_COLUMN ) return 0;
1598 pTerm = findTerm(pWC, p->iTable, p->iColumn, ~(Bitmask)0, WO_EQ, 0);
1599 if( pTerm ){
1600 Expr *pX = pTerm->pExpr;
1601 CollSeq *p1 = sqlite3BinaryCompareCollSeq(pParse, pX->pLeft, pX->pRight);
1602 CollSeq *p2 = sqlite3ExprCollSeq(pParse, p);
1603 if( p1==p2 ) continue;
1604 }
1605 if( p->iTable!=base ) return 0;
1606 mask |= (((Bitmask)1) << i);
1607 }
1608
1609 for(i=nEqCol; mask && i<pIdx->nColumn; i++){
1610 int iExpr = findIndexCol(pParse, pDistinct, base, pIdx, i);
1611 if( iExpr<0 ) break;
1612 mask &= ~(((Bitmask)1) << iExpr);
1613 }
1614
1615 return (mask==0);
1616}
1617
1618
1619/*
1620** Return true if the DISTINCT expression-list passed as the third argument
1621** is redundant. A DISTINCT list is redundant if the database contains a
1622** UNIQUE index that guarantees that the result of the query will be distinct
1623** anyway.
1624*/
1625static int isDistinctRedundant(
1626 Parse *pParse,
1627 SrcList *pTabList,
1628 WhereClause *pWC,
1629 ExprList *pDistinct
1630){
1631 Table *pTab;
1632 Index *pIdx;
1633 int i;
1634 int iBase;
1635
1636 /* If there is more than one table or sub-select in the FROM clause of
1637 ** this query, then it will not be possible to show that the DISTINCT
1638 ** clause is redundant. */
1639 if( pTabList->nSrc!=1 ) return 0;
1640 iBase = pTabList->a[0].iCursor;
1641 pTab = pTabList->a[0].pTab;
1642
dan94e08d92011-07-02 06:44:05 +00001643 /* If any of the expressions is an IPK column on table iBase, then return
1644 ** true. Note: The (p->iTable==iBase) part of this test may be false if the
1645 ** current SELECT is a correlated sub-query.
1646 */
dan6f343962011-07-01 18:26:40 +00001647 for(i=0; i<pDistinct->nExpr; i++){
drh580c8c12012-12-08 03:34:04 +00001648 Expr *p = sqlite3ExprSkipCollate(pDistinct->a[i].pExpr);
dan94e08d92011-07-02 06:44:05 +00001649 if( p->op==TK_COLUMN && p->iTable==iBase && p->iColumn<0 ) return 1;
dan6f343962011-07-01 18:26:40 +00001650 }
1651
1652 /* Loop through all indices on the table, checking each to see if it makes
1653 ** the DISTINCT qualifier redundant. It does so if:
1654 **
1655 ** 1. The index is itself UNIQUE, and
1656 **
1657 ** 2. All of the columns in the index are either part of the pDistinct
1658 ** list, or else the WHERE clause contains a term of the form "col=X",
1659 ** where X is a constant value. The collation sequences of the
1660 ** comparison and select-list expressions must match those of the index.
dan6a36f432012-04-20 16:59:24 +00001661 **
1662 ** 3. All of those index columns for which the WHERE clause does not
1663 ** contain a "col=X" term are subject to a NOT NULL constraint.
dan6f343962011-07-01 18:26:40 +00001664 */
1665 for(pIdx=pTab->pIndex; pIdx; pIdx=pIdx->pNext){
1666 if( pIdx->onError==OE_None ) continue;
1667 for(i=0; i<pIdx->nColumn; i++){
1668 int iCol = pIdx->aiColumn[i];
dan6a36f432012-04-20 16:59:24 +00001669 if( 0==findTerm(pWC, iBase, iCol, ~(Bitmask)0, WO_EQ, pIdx) ){
1670 int iIdxCol = findIndexCol(pParse, pDistinct, iBase, pIdx, i);
1671 if( iIdxCol<0 || pTab->aCol[pIdx->aiColumn[i]].notNull==0 ){
1672 break;
1673 }
dan6f343962011-07-01 18:26:40 +00001674 }
1675 }
1676 if( i==pIdx->nColumn ){
1677 /* This index implies that the DISTINCT qualifier is redundant. */
1678 return 1;
1679 }
1680 }
1681
1682 return 0;
1683}
drh0fcef5e2005-07-19 17:38:22 +00001684
drh75897232000-05-29 14:26:00 +00001685/*
drhb6fb62d2005-09-20 08:47:20 +00001686** Prepare a crude estimate of the logarithm of the input value.
drh28c4cf42005-07-27 20:41:43 +00001687** The results need not be exact. This is only used for estimating
drh909626d2008-05-30 14:58:37 +00001688** the total cost of performing operations with O(logN) or O(NlogN)
drh28c4cf42005-07-27 20:41:43 +00001689** complexity. Because N is just a guess, it is no great tragedy if
1690** logN is a little off.
drh28c4cf42005-07-27 20:41:43 +00001691*/
1692static double estLog(double N){
drhb37df7b2005-10-13 02:09:49 +00001693 double logN = 1;
1694 double x = 10;
drh28c4cf42005-07-27 20:41:43 +00001695 while( N>x ){
drhb37df7b2005-10-13 02:09:49 +00001696 logN += 1;
drh28c4cf42005-07-27 20:41:43 +00001697 x *= 10;
1698 }
1699 return logN;
1700}
1701
drh6d209d82006-06-27 01:54:26 +00001702/*
1703** Two routines for printing the content of an sqlite3_index_info
1704** structure. Used for testing and debugging only. If neither
1705** SQLITE_TEST or SQLITE_DEBUG are defined, then these routines
1706** are no-ops.
1707*/
drh77a2a5e2007-04-06 01:04:39 +00001708#if !defined(SQLITE_OMIT_VIRTUALTABLE) && defined(SQLITE_DEBUG)
drh6d209d82006-06-27 01:54:26 +00001709static void TRACE_IDX_INPUTS(sqlite3_index_info *p){
1710 int i;
mlcreech3a00f902008-03-04 17:45:01 +00001711 if( !sqlite3WhereTrace ) return;
drh6d209d82006-06-27 01:54:26 +00001712 for(i=0; i<p->nConstraint; i++){
1713 sqlite3DebugPrintf(" constraint[%d]: col=%d termid=%d op=%d usabled=%d\n",
1714 i,
1715 p->aConstraint[i].iColumn,
1716 p->aConstraint[i].iTermOffset,
1717 p->aConstraint[i].op,
1718 p->aConstraint[i].usable);
1719 }
1720 for(i=0; i<p->nOrderBy; i++){
1721 sqlite3DebugPrintf(" orderby[%d]: col=%d desc=%d\n",
1722 i,
1723 p->aOrderBy[i].iColumn,
1724 p->aOrderBy[i].desc);
1725 }
1726}
1727static void TRACE_IDX_OUTPUTS(sqlite3_index_info *p){
1728 int i;
mlcreech3a00f902008-03-04 17:45:01 +00001729 if( !sqlite3WhereTrace ) return;
drh6d209d82006-06-27 01:54:26 +00001730 for(i=0; i<p->nConstraint; i++){
1731 sqlite3DebugPrintf(" usage[%d]: argvIdx=%d omit=%d\n",
1732 i,
1733 p->aConstraintUsage[i].argvIndex,
1734 p->aConstraintUsage[i].omit);
1735 }
1736 sqlite3DebugPrintf(" idxNum=%d\n", p->idxNum);
1737 sqlite3DebugPrintf(" idxStr=%s\n", p->idxStr);
1738 sqlite3DebugPrintf(" orderByConsumed=%d\n", p->orderByConsumed);
1739 sqlite3DebugPrintf(" estimatedCost=%g\n", p->estimatedCost);
1740}
1741#else
1742#define TRACE_IDX_INPUTS(A)
1743#define TRACE_IDX_OUTPUTS(A)
1744#endif
1745
danielk19771d461462009-04-21 09:02:45 +00001746/*
1747** Required because bestIndex() is called by bestOrClauseIndex()
1748*/
drh56f1b992012-09-25 14:29:39 +00001749static void bestIndex(WhereBestIdx*);
danielk19771d461462009-04-21 09:02:45 +00001750
1751/*
1752** This routine attempts to find an scanning strategy that can be used
1753** to optimize an 'OR' expression that is part of a WHERE clause.
1754**
1755** The table associated with FROM clause term pSrc may be either a
1756** regular B-Tree table or a virtual table.
1757*/
drh56f1b992012-09-25 14:29:39 +00001758static void bestOrClauseIndex(WhereBestIdx *p){
danielk19771d461462009-04-21 09:02:45 +00001759#ifndef SQLITE_OMIT_OR_OPTIMIZATION
drh56f1b992012-09-25 14:29:39 +00001760 WhereClause *pWC = p->pWC; /* The WHERE clause */
1761 struct SrcList_item *pSrc = p->pSrc; /* The FROM clause term to search */
1762 const int iCur = pSrc->iCursor; /* The cursor of the table */
danielk19771d461462009-04-21 09:02:45 +00001763 const Bitmask maskSrc = getMask(pWC->pMaskSet, iCur); /* Bitmask for pSrc */
1764 WhereTerm * const pWCEnd = &pWC->a[pWC->nTerm]; /* End of pWC->a[] */
drh56f1b992012-09-25 14:29:39 +00001765 WhereTerm *pTerm; /* A single term of the WHERE clause */
danielk19771d461462009-04-21 09:02:45 +00001766
drh9ef61f42011-10-07 14:40:59 +00001767 /* The OR-clause optimization is disallowed if the INDEXED BY or
1768 ** NOT INDEXED clauses are used or if the WHERE_AND_ONLY bit is set. */
drh75ad2602010-10-21 02:05:06 +00001769 if( pSrc->notIndexed || pSrc->pIndex!=0 ){
drhed754ce2010-04-15 01:04:54 +00001770 return;
1771 }
drh9ef61f42011-10-07 14:40:59 +00001772 if( pWC->wctrlFlags & WHERE_AND_ONLY ){
1773 return;
1774 }
drhed754ce2010-04-15 01:04:54 +00001775
danielk19771d461462009-04-21 09:02:45 +00001776 /* Search the WHERE clause terms for a usable WO_OR term. */
1777 for(pTerm=pWC->a; pTerm<pWCEnd; pTerm++){
drh7a5bcc02013-01-16 17:08:58 +00001778 if( (pTerm->eOperator & WO_OR)!=0
drh56f1b992012-09-25 14:29:39 +00001779 && ((pTerm->prereqAll & ~maskSrc) & p->notReady)==0
danielk19771d461462009-04-21 09:02:45 +00001780 && (pTerm->u.pOrInfo->indexable & maskSrc)!=0
1781 ){
1782 WhereClause * const pOrWC = &pTerm->u.pOrInfo->wc;
1783 WhereTerm * const pOrWCEnd = &pOrWC->a[pOrWC->nTerm];
1784 WhereTerm *pOrTerm;
1785 int flags = WHERE_MULTI_OR;
1786 double rTotal = 0;
1787 double nRow = 0;
dan5236ac12009-08-13 07:09:33 +00001788 Bitmask used = 0;
drh56f1b992012-09-25 14:29:39 +00001789 WhereBestIdx sBOI;
danielk19771d461462009-04-21 09:02:45 +00001790
drh56f1b992012-09-25 14:29:39 +00001791 sBOI = *p;
1792 sBOI.pOrderBy = 0;
1793 sBOI.pDistinct = 0;
1794 sBOI.ppIdxInfo = 0;
danielk19771d461462009-04-21 09:02:45 +00001795 for(pOrTerm=pOrWC->a; pOrTerm<pOrWCEnd; pOrTerm++){
danielk19771d461462009-04-21 09:02:45 +00001796 WHERETRACE(("... Multi-index OR testing for term %d of %d....\n",
1797 (pOrTerm - pOrWC->a), (pTerm - pWC->a)
1798 ));
drh7a5bcc02013-01-16 17:08:58 +00001799 if( (pOrTerm->eOperator& WO_AND)!=0 ){
drh56f1b992012-09-25 14:29:39 +00001800 sBOI.pWC = &pOrTerm->u.pAndInfo->wc;
1801 bestIndex(&sBOI);
danielk19771d461462009-04-21 09:02:45 +00001802 }else if( pOrTerm->leftCursor==iCur ){
1803 WhereClause tempWC;
1804 tempWC.pParse = pWC->pParse;
1805 tempWC.pMaskSet = pWC->pMaskSet;
drh8871ef52011-10-07 13:33:10 +00001806 tempWC.pOuter = pWC;
danielk19771d461462009-04-21 09:02:45 +00001807 tempWC.op = TK_AND;
1808 tempWC.a = pOrTerm;
drha2153f72011-10-18 19:14:33 +00001809 tempWC.wctrlFlags = 0;
danielk19771d461462009-04-21 09:02:45 +00001810 tempWC.nTerm = 1;
drh56f1b992012-09-25 14:29:39 +00001811 sBOI.pWC = &tempWC;
1812 bestIndex(&sBOI);
danielk19771d461462009-04-21 09:02:45 +00001813 }else{
1814 continue;
1815 }
drh56f1b992012-09-25 14:29:39 +00001816 rTotal += sBOI.cost.rCost;
1817 nRow += sBOI.cost.plan.nRow;
1818 used |= sBOI.cost.used;
1819 if( rTotal>=p->cost.rCost ) break;
danielk19771d461462009-04-21 09:02:45 +00001820 }
1821
1822 /* If there is an ORDER BY clause, increase the scan cost to account
1823 ** for the cost of the sort. */
drh56f1b992012-09-25 14:29:39 +00001824 if( p->pOrderBy!=0 ){
drhed754ce2010-04-15 01:04:54 +00001825 WHERETRACE(("... sorting increases OR cost %.9g to %.9g\n",
1826 rTotal, rTotal+nRow*estLog(nRow)));
danielk19771d461462009-04-21 09:02:45 +00001827 rTotal += nRow*estLog(nRow);
danielk19771d461462009-04-21 09:02:45 +00001828 }
1829
1830 /* If the cost of scanning using this OR term for optimization is
1831 ** less than the current cost stored in pCost, replace the contents
1832 ** of pCost. */
1833 WHERETRACE(("... multi-index OR cost=%.9g nrow=%.9g\n", rTotal, nRow));
drh56f1b992012-09-25 14:29:39 +00001834 if( rTotal<p->cost.rCost ){
1835 p->cost.rCost = rTotal;
1836 p->cost.used = used;
1837 p->cost.plan.nRow = nRow;
drhd663b5b2012-10-03 00:25:54 +00001838 p->cost.plan.nOBSat = p->i ? p->aLevel[p->i-1].plan.nOBSat : 0;
drh56f1b992012-09-25 14:29:39 +00001839 p->cost.plan.wsFlags = flags;
1840 p->cost.plan.u.pTerm = pTerm;
danielk19771d461462009-04-21 09:02:45 +00001841 }
1842 }
1843 }
1844#endif /* SQLITE_OMIT_OR_OPTIMIZATION */
1845}
1846
drhc6339082010-04-07 16:54:58 +00001847#ifndef SQLITE_OMIT_AUTOMATIC_INDEX
drh8b307fb2010-04-06 15:57:05 +00001848/*
drh4139c992010-04-07 14:59:45 +00001849** Return TRUE if the WHERE clause term pTerm is of a form where it
1850** could be used with an index to access pSrc, assuming an appropriate
1851** index existed.
1852*/
1853static int termCanDriveIndex(
1854 WhereTerm *pTerm, /* WHERE clause term to check */
1855 struct SrcList_item *pSrc, /* Table we are trying to access */
1856 Bitmask notReady /* Tables in outer loops of the join */
1857){
1858 char aff;
1859 if( pTerm->leftCursor!=pSrc->iCursor ) return 0;
drh7a5bcc02013-01-16 17:08:58 +00001860 if( (pTerm->eOperator & WO_EQ)==0 ) return 0;
drh4139c992010-04-07 14:59:45 +00001861 if( (pTerm->prereqRight & notReady)!=0 ) return 0;
1862 aff = pSrc->pTab->aCol[pTerm->u.leftColumn].affinity;
1863 if( !sqlite3IndexAffinityOk(pTerm->pExpr, aff) ) return 0;
1864 return 1;
1865}
drhc6339082010-04-07 16:54:58 +00001866#endif
drh4139c992010-04-07 14:59:45 +00001867
drhc6339082010-04-07 16:54:58 +00001868#ifndef SQLITE_OMIT_AUTOMATIC_INDEX
drh4139c992010-04-07 14:59:45 +00001869/*
drh8b307fb2010-04-06 15:57:05 +00001870** If the query plan for pSrc specified in pCost is a full table scan
drh4139c992010-04-07 14:59:45 +00001871** and indexing is allows (if there is no NOT INDEXED clause) and it
drh8b307fb2010-04-06 15:57:05 +00001872** possible to construct a transient index that would perform better
1873** than a full table scan even when the cost of constructing the index
1874** is taken into account, then alter the query plan to use the
1875** transient index.
1876*/
drh56f1b992012-09-25 14:29:39 +00001877static void bestAutomaticIndex(WhereBestIdx *p){
1878 Parse *pParse = p->pParse; /* The parsing context */
1879 WhereClause *pWC = p->pWC; /* The WHERE clause */
1880 struct SrcList_item *pSrc = p->pSrc; /* The FROM clause term to search */
1881 double nTableRow; /* Rows in the input table */
1882 double logN; /* log(nTableRow) */
drh8b307fb2010-04-06 15:57:05 +00001883 double costTempIdx; /* per-query cost of the transient index */
1884 WhereTerm *pTerm; /* A single term of the WHERE clause */
1885 WhereTerm *pWCEnd; /* End of pWC->a[] */
drh424aab82010-04-06 18:28:20 +00001886 Table *pTable; /* Table tht might be indexed */
drh8b307fb2010-04-06 15:57:05 +00001887
dan969e5592011-07-02 15:32:57 +00001888 if( pParse->nQueryLoop<=(double)1 ){
1889 /* There is no point in building an automatic index for a single scan */
1890 return;
1891 }
drhc6339082010-04-07 16:54:58 +00001892 if( (pParse->db->flags & SQLITE_AutoIndex)==0 ){
1893 /* Automatic indices are disabled at run-time */
1894 return;
1895 }
drh447b2892012-10-26 18:40:01 +00001896 if( (p->cost.plan.wsFlags & WHERE_NOT_FULLSCAN)!=0
1897 && (p->cost.plan.wsFlags & WHERE_COVER_SCAN)==0
1898 ){
drh8b307fb2010-04-06 15:57:05 +00001899 /* We already have some kind of index in use for this query. */
1900 return;
1901 }
drhda998c82012-10-30 15:31:31 +00001902 if( pSrc->viaCoroutine ){
1903 /* Cannot index a co-routine */
1904 return;
1905 }
drh8b307fb2010-04-06 15:57:05 +00001906 if( pSrc->notIndexed ){
1907 /* The NOT INDEXED clause appears in the SQL. */
1908 return;
1909 }
danda79cf02011-07-08 16:10:54 +00001910 if( pSrc->isCorrelated ){
1911 /* The source is a correlated sub-query. No point in indexing it. */
1912 return;
1913 }
drh8b307fb2010-04-06 15:57:05 +00001914
1915 assert( pParse->nQueryLoop >= (double)1 );
drh8bd54122010-04-08 15:00:59 +00001916 pTable = pSrc->pTab;
drh15564052010-09-25 22:32:56 +00001917 nTableRow = pTable->nRowEst;
drh8b307fb2010-04-06 15:57:05 +00001918 logN = estLog(nTableRow);
1919 costTempIdx = 2*logN*(nTableRow/pParse->nQueryLoop + 1);
drh56f1b992012-09-25 14:29:39 +00001920 if( costTempIdx>=p->cost.rCost ){
drh8b307fb2010-04-06 15:57:05 +00001921 /* The cost of creating the transient table would be greater than
1922 ** doing the full table scan */
1923 return;
1924 }
1925
1926 /* Search for any equality comparison term */
1927 pWCEnd = &pWC->a[pWC->nTerm];
1928 for(pTerm=pWC->a; pTerm<pWCEnd; pTerm++){
drh56f1b992012-09-25 14:29:39 +00001929 if( termCanDriveIndex(pTerm, pSrc, p->notReady) ){
drh7924f3e2011-02-09 03:04:27 +00001930 WHERETRACE(("auto-index reduces cost from %.1f to %.1f\n",
drh56f1b992012-09-25 14:29:39 +00001931 p->cost.rCost, costTempIdx));
1932 p->cost.rCost = costTempIdx;
1933 p->cost.plan.nRow = logN + 1;
1934 p->cost.plan.wsFlags = WHERE_TEMP_INDEX;
1935 p->cost.used = pTerm->prereqRight;
drh8b307fb2010-04-06 15:57:05 +00001936 break;
1937 }
1938 }
1939}
drhc6339082010-04-07 16:54:58 +00001940#else
drh56f1b992012-09-25 14:29:39 +00001941# define bestAutomaticIndex(A) /* no-op */
drhc6339082010-04-07 16:54:58 +00001942#endif /* SQLITE_OMIT_AUTOMATIC_INDEX */
drh8b307fb2010-04-06 15:57:05 +00001943
drhc6339082010-04-07 16:54:58 +00001944
1945#ifndef SQLITE_OMIT_AUTOMATIC_INDEX
drh8b307fb2010-04-06 15:57:05 +00001946/*
drhc6339082010-04-07 16:54:58 +00001947** Generate code to construct the Index object for an automatic index
1948** and to set up the WhereLevel object pLevel so that the code generator
1949** makes use of the automatic index.
drh8b307fb2010-04-06 15:57:05 +00001950*/
drhc6339082010-04-07 16:54:58 +00001951static void constructAutomaticIndex(
drh8b307fb2010-04-06 15:57:05 +00001952 Parse *pParse, /* The parsing context */
1953 WhereClause *pWC, /* The WHERE clause */
1954 struct SrcList_item *pSrc, /* The FROM clause term to get the next index */
1955 Bitmask notReady, /* Mask of cursors that are not available */
1956 WhereLevel *pLevel /* Write new index here */
1957){
1958 int nColumn; /* Number of columns in the constructed index */
1959 WhereTerm *pTerm; /* A single term of the WHERE clause */
1960 WhereTerm *pWCEnd; /* End of pWC->a[] */
1961 int nByte; /* Byte of memory needed for pIdx */
1962 Index *pIdx; /* Object describing the transient index */
1963 Vdbe *v; /* Prepared statement under construction */
drh8b307fb2010-04-06 15:57:05 +00001964 int addrInit; /* Address of the initialization bypass jump */
1965 Table *pTable; /* The table being indexed */
1966 KeyInfo *pKeyinfo; /* Key information for the index */
1967 int addrTop; /* Top of the index fill loop */
1968 int regRecord; /* Register holding an index record */
1969 int n; /* Column counter */
drh4139c992010-04-07 14:59:45 +00001970 int i; /* Loop counter */
1971 int mxBitCol; /* Maximum column in pSrc->colUsed */
drh424aab82010-04-06 18:28:20 +00001972 CollSeq *pColl; /* Collating sequence to on a column */
drh4139c992010-04-07 14:59:45 +00001973 Bitmask idxCols; /* Bitmap of columns used for indexing */
1974 Bitmask extraCols; /* Bitmap of additional columns */
drh8b307fb2010-04-06 15:57:05 +00001975
1976 /* Generate code to skip over the creation and initialization of the
1977 ** transient index on 2nd and subsequent iterations of the loop. */
1978 v = pParse->pVdbe;
1979 assert( v!=0 );
dan1d8cb212011-12-09 13:24:16 +00001980 addrInit = sqlite3CodeOnce(pParse);
drh8b307fb2010-04-06 15:57:05 +00001981
drh4139c992010-04-07 14:59:45 +00001982 /* Count the number of columns that will be added to the index
1983 ** and used to match WHERE clause constraints */
drh8b307fb2010-04-06 15:57:05 +00001984 nColumn = 0;
drh424aab82010-04-06 18:28:20 +00001985 pTable = pSrc->pTab;
drh8b307fb2010-04-06 15:57:05 +00001986 pWCEnd = &pWC->a[pWC->nTerm];
drh4139c992010-04-07 14:59:45 +00001987 idxCols = 0;
drh8b307fb2010-04-06 15:57:05 +00001988 for(pTerm=pWC->a; pTerm<pWCEnd; pTerm++){
drh4139c992010-04-07 14:59:45 +00001989 if( termCanDriveIndex(pTerm, pSrc, notReady) ){
1990 int iCol = pTerm->u.leftColumn;
drh0013e722010-04-08 00:40:15 +00001991 Bitmask cMask = iCol>=BMS ? ((Bitmask)1)<<(BMS-1) : ((Bitmask)1)<<iCol;
drh52ff8ea2010-04-08 14:15:56 +00001992 testcase( iCol==BMS );
1993 testcase( iCol==BMS-1 );
drh0013e722010-04-08 00:40:15 +00001994 if( (idxCols & cMask)==0 ){
1995 nColumn++;
1996 idxCols |= cMask;
1997 }
drh8b307fb2010-04-06 15:57:05 +00001998 }
1999 }
2000 assert( nColumn>0 );
drh424aab82010-04-06 18:28:20 +00002001 pLevel->plan.nEq = nColumn;
drh4139c992010-04-07 14:59:45 +00002002
2003 /* Count the number of additional columns needed to create a
2004 ** covering index. A "covering index" is an index that contains all
2005 ** columns that are needed by the query. With a covering index, the
2006 ** original table never needs to be accessed. Automatic indices must
2007 ** be a covering index because the index will not be updated if the
2008 ** original table changes and the index and table cannot both be used
2009 ** if they go out of sync.
2010 */
drh0013e722010-04-08 00:40:15 +00002011 extraCols = pSrc->colUsed & (~idxCols | (((Bitmask)1)<<(BMS-1)));
drh4139c992010-04-07 14:59:45 +00002012 mxBitCol = (pTable->nCol >= BMS-1) ? BMS-1 : pTable->nCol;
drh52ff8ea2010-04-08 14:15:56 +00002013 testcase( pTable->nCol==BMS-1 );
2014 testcase( pTable->nCol==BMS-2 );
drh4139c992010-04-07 14:59:45 +00002015 for(i=0; i<mxBitCol; i++){
drh67ae0cb2010-04-08 14:38:51 +00002016 if( extraCols & (((Bitmask)1)<<i) ) nColumn++;
drh4139c992010-04-07 14:59:45 +00002017 }
2018 if( pSrc->colUsed & (((Bitmask)1)<<(BMS-1)) ){
2019 nColumn += pTable->nCol - BMS + 1;
2020 }
2021 pLevel->plan.wsFlags |= WHERE_COLUMN_EQ | WHERE_IDX_ONLY | WO_EQ;
drh8b307fb2010-04-06 15:57:05 +00002022
2023 /* Construct the Index object to describe this index */
2024 nByte = sizeof(Index);
2025 nByte += nColumn*sizeof(int); /* Index.aiColumn */
2026 nByte += nColumn*sizeof(char*); /* Index.azColl */
2027 nByte += nColumn; /* Index.aSortOrder */
2028 pIdx = sqlite3DbMallocZero(pParse->db, nByte);
2029 if( pIdx==0 ) return;
2030 pLevel->plan.u.pIdx = pIdx;
2031 pIdx->azColl = (char**)&pIdx[1];
2032 pIdx->aiColumn = (int*)&pIdx->azColl[nColumn];
2033 pIdx->aSortOrder = (u8*)&pIdx->aiColumn[nColumn];
2034 pIdx->zName = "auto-index";
2035 pIdx->nColumn = nColumn;
drh424aab82010-04-06 18:28:20 +00002036 pIdx->pTable = pTable;
drh8b307fb2010-04-06 15:57:05 +00002037 n = 0;
drh0013e722010-04-08 00:40:15 +00002038 idxCols = 0;
drh8b307fb2010-04-06 15:57:05 +00002039 for(pTerm=pWC->a; pTerm<pWCEnd; pTerm++){
drh4139c992010-04-07 14:59:45 +00002040 if( termCanDriveIndex(pTerm, pSrc, notReady) ){
drh0013e722010-04-08 00:40:15 +00002041 int iCol = pTerm->u.leftColumn;
2042 Bitmask cMask = iCol>=BMS ? ((Bitmask)1)<<(BMS-1) : ((Bitmask)1)<<iCol;
2043 if( (idxCols & cMask)==0 ){
2044 Expr *pX = pTerm->pExpr;
2045 idxCols |= cMask;
2046 pIdx->aiColumn[n] = pTerm->u.leftColumn;
2047 pColl = sqlite3BinaryCompareCollSeq(pParse, pX->pLeft, pX->pRight);
drh6f2e6c02011-02-17 13:33:15 +00002048 pIdx->azColl[n] = ALWAYS(pColl) ? pColl->zName : "BINARY";
drh0013e722010-04-08 00:40:15 +00002049 n++;
2050 }
drh8b307fb2010-04-06 15:57:05 +00002051 }
2052 }
shaneh5eba1f62010-07-02 17:05:03 +00002053 assert( (u32)n==pLevel->plan.nEq );
drh4139c992010-04-07 14:59:45 +00002054
drhc6339082010-04-07 16:54:58 +00002055 /* Add additional columns needed to make the automatic index into
2056 ** a covering index */
drh4139c992010-04-07 14:59:45 +00002057 for(i=0; i<mxBitCol; i++){
drh67ae0cb2010-04-08 14:38:51 +00002058 if( extraCols & (((Bitmask)1)<<i) ){
drh4139c992010-04-07 14:59:45 +00002059 pIdx->aiColumn[n] = i;
2060 pIdx->azColl[n] = "BINARY";
2061 n++;
2062 }
2063 }
2064 if( pSrc->colUsed & (((Bitmask)1)<<(BMS-1)) ){
2065 for(i=BMS-1; i<pTable->nCol; i++){
2066 pIdx->aiColumn[n] = i;
2067 pIdx->azColl[n] = "BINARY";
2068 n++;
2069 }
2070 }
2071 assert( n==nColumn );
drh8b307fb2010-04-06 15:57:05 +00002072
drhc6339082010-04-07 16:54:58 +00002073 /* Create the automatic index */
drh8b307fb2010-04-06 15:57:05 +00002074 pKeyinfo = sqlite3IndexKeyinfo(pParse, pIdx);
2075 assert( pLevel->iIdxCur>=0 );
drha21a64d2010-04-06 22:33:55 +00002076 sqlite3VdbeAddOp4(v, OP_OpenAutoindex, pLevel->iIdxCur, nColumn+1, 0,
drh8b307fb2010-04-06 15:57:05 +00002077 (char*)pKeyinfo, P4_KEYINFO_HANDOFF);
drha21a64d2010-04-06 22:33:55 +00002078 VdbeComment((v, "for %s", pTable->zName));
drh8b307fb2010-04-06 15:57:05 +00002079
drhc6339082010-04-07 16:54:58 +00002080 /* Fill the automatic index with content */
drh8b307fb2010-04-06 15:57:05 +00002081 addrTop = sqlite3VdbeAddOp1(v, OP_Rewind, pLevel->iTabCur);
2082 regRecord = sqlite3GetTempReg(pParse);
2083 sqlite3GenerateIndexKey(pParse, pIdx, pLevel->iTabCur, regRecord, 1);
2084 sqlite3VdbeAddOp2(v, OP_IdxInsert, pLevel->iIdxCur, regRecord);
2085 sqlite3VdbeChangeP5(v, OPFLAG_USESEEKRESULT);
2086 sqlite3VdbeAddOp2(v, OP_Next, pLevel->iTabCur, addrTop+1);
drha21a64d2010-04-06 22:33:55 +00002087 sqlite3VdbeChangeP5(v, SQLITE_STMTSTATUS_AUTOINDEX);
drh8b307fb2010-04-06 15:57:05 +00002088 sqlite3VdbeJumpHere(v, addrTop);
2089 sqlite3ReleaseTempReg(pParse, regRecord);
2090
2091 /* Jump here when skipping the initialization */
2092 sqlite3VdbeJumpHere(v, addrInit);
2093}
drhc6339082010-04-07 16:54:58 +00002094#endif /* SQLITE_OMIT_AUTOMATIC_INDEX */
drh8b307fb2010-04-06 15:57:05 +00002095
drh9eff6162006-06-12 21:59:13 +00002096#ifndef SQLITE_OMIT_VIRTUALTABLE
2097/*
danielk19771d461462009-04-21 09:02:45 +00002098** Allocate and populate an sqlite3_index_info structure. It is the
2099** responsibility of the caller to eventually release the structure
2100** by passing the pointer returned by this function to sqlite3_free().
2101*/
drh56f1b992012-09-25 14:29:39 +00002102static sqlite3_index_info *allocateIndexInfo(WhereBestIdx *p){
2103 Parse *pParse = p->pParse;
2104 WhereClause *pWC = p->pWC;
2105 struct SrcList_item *pSrc = p->pSrc;
2106 ExprList *pOrderBy = p->pOrderBy;
danielk19771d461462009-04-21 09:02:45 +00002107 int i, j;
2108 int nTerm;
2109 struct sqlite3_index_constraint *pIdxCons;
2110 struct sqlite3_index_orderby *pIdxOrderBy;
2111 struct sqlite3_index_constraint_usage *pUsage;
2112 WhereTerm *pTerm;
2113 int nOrderBy;
2114 sqlite3_index_info *pIdxInfo;
2115
2116 WHERETRACE(("Recomputing index info for %s...\n", pSrc->pTab->zName));
2117
2118 /* Count the number of possible WHERE clause constraints referring
2119 ** to this virtual table */
2120 for(i=nTerm=0, pTerm=pWC->a; i<pWC->nTerm; i++, pTerm++){
2121 if( pTerm->leftCursor != pSrc->iCursor ) continue;
drh7a5bcc02013-01-16 17:08:58 +00002122 assert( IsPowerOfTwo(pTerm->eOperator & ~WO_EQUIV) );
2123 testcase( pTerm->eOperator & WO_IN );
2124 testcase( pTerm->eOperator & WO_ISNULL );
drh281bbe22012-10-16 23:17:14 +00002125 if( pTerm->eOperator & (WO_ISNULL) ) continue;
drhb4256992011-08-02 01:57:39 +00002126 if( pTerm->wtFlags & TERM_VNULL ) continue;
danielk19771d461462009-04-21 09:02:45 +00002127 nTerm++;
2128 }
2129
2130 /* If the ORDER BY clause contains only columns in the current
2131 ** virtual table then allocate space for the aOrderBy part of
2132 ** the sqlite3_index_info structure.
2133 */
2134 nOrderBy = 0;
2135 if( pOrderBy ){
drh56f1b992012-09-25 14:29:39 +00002136 int n = pOrderBy->nExpr;
2137 for(i=0; i<n; i++){
danielk19771d461462009-04-21 09:02:45 +00002138 Expr *pExpr = pOrderBy->a[i].pExpr;
2139 if( pExpr->op!=TK_COLUMN || pExpr->iTable!=pSrc->iCursor ) break;
2140 }
drh56f1b992012-09-25 14:29:39 +00002141 if( i==n){
2142 nOrderBy = n;
danielk19771d461462009-04-21 09:02:45 +00002143 }
2144 }
2145
2146 /* Allocate the sqlite3_index_info structure
2147 */
2148 pIdxInfo = sqlite3DbMallocZero(pParse->db, sizeof(*pIdxInfo)
2149 + (sizeof(*pIdxCons) + sizeof(*pUsage))*nTerm
2150 + sizeof(*pIdxOrderBy)*nOrderBy );
2151 if( pIdxInfo==0 ){
2152 sqlite3ErrorMsg(pParse, "out of memory");
2153 /* (double)0 In case of SQLITE_OMIT_FLOATING_POINT... */
2154 return 0;
2155 }
2156
2157 /* Initialize the structure. The sqlite3_index_info structure contains
2158 ** many fields that are declared "const" to prevent xBestIndex from
2159 ** changing them. We have to do some funky casting in order to
2160 ** initialize those fields.
2161 */
2162 pIdxCons = (struct sqlite3_index_constraint*)&pIdxInfo[1];
2163 pIdxOrderBy = (struct sqlite3_index_orderby*)&pIdxCons[nTerm];
2164 pUsage = (struct sqlite3_index_constraint_usage*)&pIdxOrderBy[nOrderBy];
2165 *(int*)&pIdxInfo->nConstraint = nTerm;
2166 *(int*)&pIdxInfo->nOrderBy = nOrderBy;
2167 *(struct sqlite3_index_constraint**)&pIdxInfo->aConstraint = pIdxCons;
2168 *(struct sqlite3_index_orderby**)&pIdxInfo->aOrderBy = pIdxOrderBy;
2169 *(struct sqlite3_index_constraint_usage**)&pIdxInfo->aConstraintUsage =
2170 pUsage;
2171
2172 for(i=j=0, pTerm=pWC->a; i<pWC->nTerm; i++, pTerm++){
drh281bbe22012-10-16 23:17:14 +00002173 u8 op;
danielk19771d461462009-04-21 09:02:45 +00002174 if( pTerm->leftCursor != pSrc->iCursor ) continue;
drh7a5bcc02013-01-16 17:08:58 +00002175 assert( IsPowerOfTwo(pTerm->eOperator & ~WO_EQUIV) );
2176 testcase( pTerm->eOperator & WO_IN );
2177 testcase( pTerm->eOperator & WO_ISNULL );
drh281bbe22012-10-16 23:17:14 +00002178 if( pTerm->eOperator & (WO_ISNULL) ) continue;
drhb4256992011-08-02 01:57:39 +00002179 if( pTerm->wtFlags & TERM_VNULL ) continue;
danielk19771d461462009-04-21 09:02:45 +00002180 pIdxCons[j].iColumn = pTerm->u.leftColumn;
2181 pIdxCons[j].iTermOffset = i;
drh7a5bcc02013-01-16 17:08:58 +00002182 op = (u8)pTerm->eOperator & WO_ALL;
drh281bbe22012-10-16 23:17:14 +00002183 if( op==WO_IN ) op = WO_EQ;
2184 pIdxCons[j].op = op;
danielk19771d461462009-04-21 09:02:45 +00002185 /* The direct assignment in the previous line is possible only because
2186 ** the WO_ and SQLITE_INDEX_CONSTRAINT_ codes are identical. The
2187 ** following asserts verify this fact. */
2188 assert( WO_EQ==SQLITE_INDEX_CONSTRAINT_EQ );
2189 assert( WO_LT==SQLITE_INDEX_CONSTRAINT_LT );
2190 assert( WO_LE==SQLITE_INDEX_CONSTRAINT_LE );
2191 assert( WO_GT==SQLITE_INDEX_CONSTRAINT_GT );
2192 assert( WO_GE==SQLITE_INDEX_CONSTRAINT_GE );
2193 assert( WO_MATCH==SQLITE_INDEX_CONSTRAINT_MATCH );
drh281bbe22012-10-16 23:17:14 +00002194 assert( pTerm->eOperator & (WO_IN|WO_EQ|WO_LT|WO_LE|WO_GT|WO_GE|WO_MATCH) );
danielk19771d461462009-04-21 09:02:45 +00002195 j++;
2196 }
2197 for(i=0; i<nOrderBy; i++){
2198 Expr *pExpr = pOrderBy->a[i].pExpr;
2199 pIdxOrderBy[i].iColumn = pExpr->iColumn;
2200 pIdxOrderBy[i].desc = pOrderBy->a[i].sortOrder;
2201 }
2202
2203 return pIdxInfo;
2204}
2205
2206/*
2207** The table object reference passed as the second argument to this function
2208** must represent a virtual table. This function invokes the xBestIndex()
2209** method of the virtual table with the sqlite3_index_info pointer passed
2210** as the argument.
2211**
2212** If an error occurs, pParse is populated with an error message and a
2213** non-zero value is returned. Otherwise, 0 is returned and the output
2214** part of the sqlite3_index_info structure is left populated.
2215**
2216** Whether or not an error is returned, it is the responsibility of the
2217** caller to eventually free p->idxStr if p->needToFreeIdxStr indicates
2218** that this is required.
2219*/
2220static int vtabBestIndex(Parse *pParse, Table *pTab, sqlite3_index_info *p){
danielk1977595a5232009-07-24 17:58:53 +00002221 sqlite3_vtab *pVtab = sqlite3GetVTable(pParse->db, pTab)->pVtab;
danielk19771d461462009-04-21 09:02:45 +00002222 int i;
2223 int rc;
2224
danielk19771d461462009-04-21 09:02:45 +00002225 WHERETRACE(("xBestIndex for %s\n", pTab->zName));
2226 TRACE_IDX_INPUTS(p);
2227 rc = pVtab->pModule->xBestIndex(pVtab, p);
2228 TRACE_IDX_OUTPUTS(p);
danielk19771d461462009-04-21 09:02:45 +00002229
2230 if( rc!=SQLITE_OK ){
2231 if( rc==SQLITE_NOMEM ){
2232 pParse->db->mallocFailed = 1;
2233 }else if( !pVtab->zErrMsg ){
2234 sqlite3ErrorMsg(pParse, "%s", sqlite3ErrStr(rc));
2235 }else{
2236 sqlite3ErrorMsg(pParse, "%s", pVtab->zErrMsg);
2237 }
2238 }
drhb9755982010-07-24 16:34:37 +00002239 sqlite3_free(pVtab->zErrMsg);
danielk19771d461462009-04-21 09:02:45 +00002240 pVtab->zErrMsg = 0;
2241
2242 for(i=0; i<p->nConstraint; i++){
2243 if( !p->aConstraint[i].usable && p->aConstraintUsage[i].argvIndex>0 ){
2244 sqlite3ErrorMsg(pParse,
2245 "table %s: xBestIndex returned an invalid plan", pTab->zName);
2246 }
2247 }
2248
2249 return pParse->nErr;
2250}
2251
2252
2253/*
drh7f375902006-06-13 17:38:59 +00002254** Compute the best index for a virtual table.
2255**
2256** The best index is computed by the xBestIndex method of the virtual
2257** table module. This routine is really just a wrapper that sets up
2258** the sqlite3_index_info structure that is used to communicate with
2259** xBestIndex.
2260**
2261** In a join, this routine might be called multiple times for the
2262** same virtual table. The sqlite3_index_info structure is created
2263** and initialized on the first invocation and reused on all subsequent
2264** invocations. The sqlite3_index_info structure is also used when
2265** code is generated to access the virtual table. The whereInfoDelete()
2266** routine takes care of freeing the sqlite3_index_info structure after
2267** everybody has finished with it.
drh9eff6162006-06-12 21:59:13 +00002268*/
drh56f1b992012-09-25 14:29:39 +00002269static void bestVirtualIndex(WhereBestIdx *p){
2270 Parse *pParse = p->pParse; /* The parsing context */
2271 WhereClause *pWC = p->pWC; /* The WHERE clause */
2272 struct SrcList_item *pSrc = p->pSrc; /* The FROM clause term to search */
drh9eff6162006-06-12 21:59:13 +00002273 Table *pTab = pSrc->pTab;
2274 sqlite3_index_info *pIdxInfo;
2275 struct sqlite3_index_constraint *pIdxCons;
drh9eff6162006-06-12 21:59:13 +00002276 struct sqlite3_index_constraint_usage *pUsage;
2277 WhereTerm *pTerm;
drh83b5bfc2013-04-18 02:55:54 +00002278 int i, j;
drh9eff6162006-06-12 21:59:13 +00002279 int nOrderBy;
drhe40ed782012-12-14 15:36:17 +00002280 int bAllowIN; /* Allow IN optimizations */
danc26c0042010-03-27 09:44:42 +00002281 double rCost;
drh9eff6162006-06-12 21:59:13 +00002282
danielk19776eacd282009-04-29 11:50:53 +00002283 /* Make sure wsFlags is initialized to some sane value. Otherwise, if the
2284 ** malloc in allocateIndexInfo() fails and this function returns leaving
2285 ** wsFlags in an uninitialized state, the caller may behave unpredictably.
2286 */
drh56f1b992012-09-25 14:29:39 +00002287 memset(&p->cost, 0, sizeof(p->cost));
2288 p->cost.plan.wsFlags = WHERE_VIRTUALTABLE;
danielk19776eacd282009-04-29 11:50:53 +00002289
drh9eff6162006-06-12 21:59:13 +00002290 /* If the sqlite3_index_info structure has not been previously
danielk19771d461462009-04-21 09:02:45 +00002291 ** allocated and initialized, then allocate and initialize it now.
drh9eff6162006-06-12 21:59:13 +00002292 */
drh56f1b992012-09-25 14:29:39 +00002293 pIdxInfo = *p->ppIdxInfo;
drh9eff6162006-06-12 21:59:13 +00002294 if( pIdxInfo==0 ){
drh56f1b992012-09-25 14:29:39 +00002295 *p->ppIdxInfo = pIdxInfo = allocateIndexInfo(p);
drh9eff6162006-06-12 21:59:13 +00002296 }
danielk1977732dc552009-04-21 17:23:04 +00002297 if( pIdxInfo==0 ){
2298 return;
2299 }
drh9eff6162006-06-12 21:59:13 +00002300
drh7f375902006-06-13 17:38:59 +00002301 /* At this point, the sqlite3_index_info structure that pIdxInfo points
2302 ** to will have been initialized, either during the current invocation or
2303 ** during some prior invocation. Now we just have to customize the
2304 ** details of pIdxInfo for the current invocation and pass it to
2305 ** xBestIndex.
2306 */
2307
danielk1977935ed5e2007-03-30 09:13:13 +00002308 /* The module name must be defined. Also, by this point there must
2309 ** be a pointer to an sqlite3_vtab structure. Otherwise
2310 ** sqlite3ViewGetColumnNames() would have picked up the error.
2311 */
drh9eff6162006-06-12 21:59:13 +00002312 assert( pTab->azModuleArg && pTab->azModuleArg[0] );
danielk1977595a5232009-07-24 17:58:53 +00002313 assert( sqlite3GetVTable(pParse->db, pTab) );
drh9eff6162006-06-12 21:59:13 +00002314
drhe40ed782012-12-14 15:36:17 +00002315 /* Try once or twice. On the first attempt, allow IN optimizations.
drhd0302532012-12-14 17:48:08 +00002316 ** If an IN optimization is accepted by the virtual table xBestIndex
2317 ** method, but the pInfo->aConstrainUsage.omit flag is not set, then
2318 ** the query will not work because it might allow duplicate rows in
2319 ** output. In that case, run the xBestIndex method a second time
2320 ** without the IN constraints. Usually this loop only runs once.
2321 ** The loop will exit using a "break" statement.
drh9eff6162006-06-12 21:59:13 +00002322 */
drhd0302532012-12-14 17:48:08 +00002323 for(bAllowIN=1; 1; bAllowIN--){
2324 assert( bAllowIN==0 || bAllowIN==1 );
2325
drhe40ed782012-12-14 15:36:17 +00002326 /* Set the aConstraint[].usable fields and initialize all
2327 ** output variables to zero.
2328 **
2329 ** aConstraint[].usable is true for constraints where the right-hand
2330 ** side contains only references to tables to the left of the current
2331 ** table. In other words, if the constraint is of the form:
2332 **
2333 ** column = expr
2334 **
2335 ** and we are evaluating a join, then the constraint on column is
2336 ** only valid if all tables referenced in expr occur to the left
2337 ** of the table containing column.
2338 **
2339 ** The aConstraints[] array contains entries for all constraints
2340 ** on the current table. That way we only have to compute it once
2341 ** even though we might try to pick the best index multiple times.
2342 ** For each attempt at picking an index, the order of tables in the
2343 ** join might be different so we have to recompute the usable flag
2344 ** each time.
2345 */
2346 pIdxCons = *(struct sqlite3_index_constraint**)&pIdxInfo->aConstraint;
2347 pUsage = pIdxInfo->aConstraintUsage;
2348 for(i=0; i<pIdxInfo->nConstraint; i++, pIdxCons++){
2349 j = pIdxCons->iTermOffset;
2350 pTerm = &pWC->a[j];
2351 if( (pTerm->prereqRight&p->notReady)==0
drh7a5bcc02013-01-16 17:08:58 +00002352 && (bAllowIN || (pTerm->eOperator & WO_IN)==0)
drhe40ed782012-12-14 15:36:17 +00002353 ){
2354 pIdxCons->usable = 1;
2355 }else{
2356 pIdxCons->usable = 0;
2357 }
dan5236ac12009-08-13 07:09:33 +00002358 }
drhe40ed782012-12-14 15:36:17 +00002359 memset(pUsage, 0, sizeof(pUsage[0])*pIdxInfo->nConstraint);
2360 if( pIdxInfo->needToFreeIdxStr ){
2361 sqlite3_free(pIdxInfo->idxStr);
2362 }
2363 pIdxInfo->idxStr = 0;
2364 pIdxInfo->idxNum = 0;
2365 pIdxInfo->needToFreeIdxStr = 0;
2366 pIdxInfo->orderByConsumed = 0;
2367 /* ((double)2) In case of SQLITE_OMIT_FLOATING_POINT... */
2368 pIdxInfo->estimatedCost = SQLITE_BIG_DBL / ((double)2);
2369 nOrderBy = pIdxInfo->nOrderBy;
2370 if( !p->pOrderBy ){
2371 pIdxInfo->nOrderBy = 0;
2372 }
2373
2374 if( vtabBestIndex(pParse, pTab, pIdxInfo) ){
2375 return;
2376 }
2377
2378 pIdxCons = *(struct sqlite3_index_constraint**)&pIdxInfo->aConstraint;
2379 for(i=0; i<pIdxInfo->nConstraint; i++, pIdxCons++){
2380 if( pUsage[i].argvIndex>0 ){
2381 j = pIdxCons->iTermOffset;
2382 pTerm = &pWC->a[j];
2383 p->cost.used |= pTerm->prereqRight;
drh36670332013-02-08 20:39:02 +00002384 if( (pTerm->eOperator & WO_IN)!=0 ){
2385 if( pUsage[i].omit==0 ){
2386 /* Do not attempt to use an IN constraint if the virtual table
2387 ** says that the equivalent EQ constraint cannot be safely omitted.
2388 ** If we do attempt to use such a constraint, some rows might be
2389 ** repeated in the output. */
2390 break;
2391 }
drh83b5bfc2013-04-18 02:55:54 +00002392 /* A virtual table that is constrained by an IN clause may not
2393 ** consume the ORDER BY clause because (1) the order of IN terms
2394 ** is not necessarily related to the order of output terms and
2395 ** (2) Multiple outputs from a single IN value will not merge
2396 ** together. */
2397 pIdxInfo->orderByConsumed = 0;
drhe40ed782012-12-14 15:36:17 +00002398 }
2399 }
2400 }
2401 if( i>=pIdxInfo->nConstraint ) break;
dan5236ac12009-08-13 07:09:33 +00002402 }
drhe40ed782012-12-14 15:36:17 +00002403
danc26c0042010-03-27 09:44:42 +00002404 /* If there is an ORDER BY clause, and the selected virtual table index
2405 ** does not satisfy it, increase the cost of the scan accordingly. This
2406 ** matches the processing for non-virtual tables in bestBtreeIndex().
2407 */
2408 rCost = pIdxInfo->estimatedCost;
drh56f1b992012-09-25 14:29:39 +00002409 if( p->pOrderBy && pIdxInfo->orderByConsumed==0 ){
danc26c0042010-03-27 09:44:42 +00002410 rCost += estLog(rCost)*rCost;
2411 }
2412
danielk19771d461462009-04-21 09:02:45 +00002413 /* The cost is not allowed to be larger than SQLITE_BIG_DBL (the
2414 ** inital value of lowestCost in this loop. If it is, then the
2415 ** (cost<lowestCost) test below will never be true.
2416 **
2417 ** Use "(double)2" instead of "2.0" in case OMIT_FLOATING_POINT
2418 ** is defined.
2419 */
danc26c0042010-03-27 09:44:42 +00002420 if( (SQLITE_BIG_DBL/((double)2))<rCost ){
drh56f1b992012-09-25 14:29:39 +00002421 p->cost.rCost = (SQLITE_BIG_DBL/((double)2));
danielk19771d461462009-04-21 09:02:45 +00002422 }else{
drh56f1b992012-09-25 14:29:39 +00002423 p->cost.rCost = rCost;
danielk19771d461462009-04-21 09:02:45 +00002424 }
drh56f1b992012-09-25 14:29:39 +00002425 p->cost.plan.u.pVtabIdx = pIdxInfo;
drh5901b572009-06-10 19:33:28 +00002426 if( pIdxInfo->orderByConsumed ){
drh83b5bfc2013-04-18 02:55:54 +00002427 p->cost.plan.wsFlags |= WHERE_ORDERED;
drhd663b5b2012-10-03 00:25:54 +00002428 p->cost.plan.nOBSat = nOrderBy;
2429 }else{
2430 p->cost.plan.nOBSat = p->i ? p->aLevel[p->i-1].plan.nOBSat : 0;
danielk19771d461462009-04-21 09:02:45 +00002431 }
drh56f1b992012-09-25 14:29:39 +00002432 p->cost.plan.nEq = 0;
danielk19771d461462009-04-21 09:02:45 +00002433 pIdxInfo->nOrderBy = nOrderBy;
2434
2435 /* Try to find a more efficient access pattern by using multiple indexes
2436 ** to optimize an OR expression within the WHERE clause.
2437 */
drh56f1b992012-09-25 14:29:39 +00002438 bestOrClauseIndex(p);
drh9eff6162006-06-12 21:59:13 +00002439}
2440#endif /* SQLITE_OMIT_VIRTUALTABLE */
2441
drhfaacf172011-08-12 01:51:45 +00002442#ifdef SQLITE_ENABLE_STAT3
drh28c4cf42005-07-27 20:41:43 +00002443/*
drhfaacf172011-08-12 01:51:45 +00002444** Estimate the location of a particular key among all keys in an
2445** index. Store the results in aStat as follows:
drhe847d322011-01-20 02:56:37 +00002446**
drhfaacf172011-08-12 01:51:45 +00002447** aStat[0] Est. number of rows less than pVal
2448** aStat[1] Est. number of rows equal to pVal
dan02fa4692009-08-17 17:06:58 +00002449**
drhfaacf172011-08-12 01:51:45 +00002450** Return SQLITE_OK on success.
dan02fa4692009-08-17 17:06:58 +00002451*/
drhfaacf172011-08-12 01:51:45 +00002452static int whereKeyStats(
dan02fa4692009-08-17 17:06:58 +00002453 Parse *pParse, /* Database connection */
2454 Index *pIdx, /* Index to consider domain of */
2455 sqlite3_value *pVal, /* Value to consider */
drhfaacf172011-08-12 01:51:45 +00002456 int roundUp, /* Round up if true. Round down if false */
2457 tRowcnt *aStat /* OUT: stats written here */
dan02fa4692009-08-17 17:06:58 +00002458){
drhfaacf172011-08-12 01:51:45 +00002459 tRowcnt n;
2460 IndexSample *aSample;
2461 int i, eType;
2462 int isEq = 0;
drh4e50c5e2011-08-13 19:35:19 +00002463 i64 v;
2464 double r, rS;
dan02fa4692009-08-17 17:06:58 +00002465
drhfaacf172011-08-12 01:51:45 +00002466 assert( roundUp==0 || roundUp==1 );
drh5c624862011-09-22 18:46:34 +00002467 assert( pIdx->nSample>0 );
drhfaacf172011-08-12 01:51:45 +00002468 if( pVal==0 ) return SQLITE_ERROR;
2469 n = pIdx->aiRowEst[0];
2470 aSample = pIdx->aSample;
drhfaacf172011-08-12 01:51:45 +00002471 eType = sqlite3_value_type(pVal);
2472
2473 if( eType==SQLITE_INTEGER ){
drh4e50c5e2011-08-13 19:35:19 +00002474 v = sqlite3_value_int64(pVal);
2475 r = (i64)v;
drhfaacf172011-08-12 01:51:45 +00002476 for(i=0; i<pIdx->nSample; i++){
2477 if( aSample[i].eType==SQLITE_NULL ) continue;
2478 if( aSample[i].eType>=SQLITE_TEXT ) break;
drh4e50c5e2011-08-13 19:35:19 +00002479 if( aSample[i].eType==SQLITE_INTEGER ){
2480 if( aSample[i].u.i>=v ){
2481 isEq = aSample[i].u.i==v;
2482 break;
2483 }
2484 }else{
2485 assert( aSample[i].eType==SQLITE_FLOAT );
2486 if( aSample[i].u.r>=r ){
2487 isEq = aSample[i].u.r==r;
2488 break;
2489 }
dan02fa4692009-08-17 17:06:58 +00002490 }
drhfaacf172011-08-12 01:51:45 +00002491 }
2492 }else if( eType==SQLITE_FLOAT ){
drh4e50c5e2011-08-13 19:35:19 +00002493 r = sqlite3_value_double(pVal);
drhfaacf172011-08-12 01:51:45 +00002494 for(i=0; i<pIdx->nSample; i++){
2495 if( aSample[i].eType==SQLITE_NULL ) continue;
2496 if( aSample[i].eType>=SQLITE_TEXT ) break;
drh4e50c5e2011-08-13 19:35:19 +00002497 if( aSample[i].eType==SQLITE_FLOAT ){
2498 rS = aSample[i].u.r;
2499 }else{
2500 rS = aSample[i].u.i;
2501 }
2502 if( rS>=r ){
2503 isEq = rS==r;
drhfaacf172011-08-12 01:51:45 +00002504 break;
drh9b3eb0a2011-01-21 14:37:04 +00002505 }
drhfaacf172011-08-12 01:51:45 +00002506 }
2507 }else if( eType==SQLITE_NULL ){
2508 i = 0;
drh5c624862011-09-22 18:46:34 +00002509 if( aSample[0].eType==SQLITE_NULL ) isEq = 1;
drhfaacf172011-08-12 01:51:45 +00002510 }else{
2511 assert( eType==SQLITE_TEXT || eType==SQLITE_BLOB );
2512 for(i=0; i<pIdx->nSample; i++){
2513 if( aSample[i].eType==SQLITE_TEXT || aSample[i].eType==SQLITE_BLOB ){
2514 break;
2515 }
2516 }
2517 if( i<pIdx->nSample ){
dan02fa4692009-08-17 17:06:58 +00002518 sqlite3 *db = pParse->db;
2519 CollSeq *pColl;
2520 const u8 *z;
dan02fa4692009-08-17 17:06:58 +00002521 if( eType==SQLITE_BLOB ){
2522 z = (const u8 *)sqlite3_value_blob(pVal);
2523 pColl = db->pDfltColl;
dane275dc32009-08-18 16:24:58 +00002524 assert( pColl->enc==SQLITE_UTF8 );
dan02fa4692009-08-17 17:06:58 +00002525 }else{
drh79e72a52012-10-05 14:43:40 +00002526 pColl = sqlite3GetCollSeq(pParse, SQLITE_UTF8, 0, *pIdx->azColl);
drh9aeda792009-08-20 02:34:15 +00002527 if( pColl==0 ){
dane275dc32009-08-18 16:24:58 +00002528 return SQLITE_ERROR;
2529 }
dan02fa4692009-08-17 17:06:58 +00002530 z = (const u8 *)sqlite3ValueText(pVal, pColl->enc);
dane275dc32009-08-18 16:24:58 +00002531 if( !z ){
2532 return SQLITE_NOMEM;
2533 }
dan02fa4692009-08-17 17:06:58 +00002534 assert( z && pColl && pColl->xCmp );
2535 }
2536 n = sqlite3ValueBytes(pVal, pColl->enc);
drhfaacf172011-08-12 01:51:45 +00002537
2538 for(; i<pIdx->nSample; i++){
drhe847d322011-01-20 02:56:37 +00002539 int c;
dan02fa4692009-08-17 17:06:58 +00002540 int eSampletype = aSample[i].eType;
drhfaacf172011-08-12 01:51:45 +00002541 if( eSampletype<eType ) continue;
2542 if( eSampletype!=eType ) break;
dane83c4f32009-09-21 16:34:24 +00002543#ifndef SQLITE_OMIT_UTF16
2544 if( pColl->enc!=SQLITE_UTF8 ){
dane275dc32009-08-18 16:24:58 +00002545 int nSample;
2546 char *zSample = sqlite3Utf8to16(
dan02fa4692009-08-17 17:06:58 +00002547 db, pColl->enc, aSample[i].u.z, aSample[i].nByte, &nSample
2548 );
dane275dc32009-08-18 16:24:58 +00002549 if( !zSample ){
2550 assert( db->mallocFailed );
2551 return SQLITE_NOMEM;
2552 }
drhe847d322011-01-20 02:56:37 +00002553 c = pColl->xCmp(pColl->pUser, nSample, zSample, n, z);
dane275dc32009-08-18 16:24:58 +00002554 sqlite3DbFree(db, zSample);
dane83c4f32009-09-21 16:34:24 +00002555 }else
2556#endif
2557 {
drhe847d322011-01-20 02:56:37 +00002558 c = pColl->xCmp(pColl->pUser, aSample[i].nByte, aSample[i].u.z, n, z);
dan02fa4692009-08-17 17:06:58 +00002559 }
drhfaacf172011-08-12 01:51:45 +00002560 if( c>=0 ){
2561 if( c==0 ) isEq = 1;
2562 break;
2563 }
dan02fa4692009-08-17 17:06:58 +00002564 }
2565 }
drhfaacf172011-08-12 01:51:45 +00002566 }
dan02fa4692009-08-17 17:06:58 +00002567
drhfaacf172011-08-12 01:51:45 +00002568 /* At this point, aSample[i] is the first sample that is greater than
2569 ** or equal to pVal. Or if i==pIdx->nSample, then all samples are less
2570 ** than pVal. If aSample[i]==pVal, then isEq==1.
2571 */
2572 if( isEq ){
2573 assert( i<pIdx->nSample );
2574 aStat[0] = aSample[i].nLt;
2575 aStat[1] = aSample[i].nEq;
2576 }else{
2577 tRowcnt iLower, iUpper, iGap;
2578 if( i==0 ){
2579 iLower = 0;
2580 iUpper = aSample[0].nLt;
drhfaacf172011-08-12 01:51:45 +00002581 }else{
drh4e50c5e2011-08-13 19:35:19 +00002582 iUpper = i>=pIdx->nSample ? n : aSample[i].nLt;
drhfaacf172011-08-12 01:51:45 +00002583 iLower = aSample[i-1].nEq + aSample[i-1].nLt;
drhfaacf172011-08-12 01:51:45 +00002584 }
drh4e50c5e2011-08-13 19:35:19 +00002585 aStat[1] = pIdx->avgEq;
drhfaacf172011-08-12 01:51:45 +00002586 if( iLower>=iUpper ){
2587 iGap = 0;
2588 }else{
2589 iGap = iUpper - iLower;
drhfaacf172011-08-12 01:51:45 +00002590 }
2591 if( roundUp ){
2592 iGap = (iGap*2)/3;
2593 }else{
2594 iGap = iGap/3;
2595 }
2596 aStat[0] = iLower + iGap;
dan02fa4692009-08-17 17:06:58 +00002597 }
2598 return SQLITE_OK;
2599}
drhfaacf172011-08-12 01:51:45 +00002600#endif /* SQLITE_ENABLE_STAT3 */
dan02fa4692009-08-17 17:06:58 +00002601
2602/*
dan937d0de2009-10-15 18:35:38 +00002603** If expression pExpr represents a literal value, set *pp to point to
2604** an sqlite3_value structure containing the same value, with affinity
2605** aff applied to it, before returning. It is the responsibility of the
2606** caller to eventually release this structure by passing it to
2607** sqlite3ValueFree().
2608**
2609** If the current parse is a recompile (sqlite3Reprepare()) and pExpr
2610** is an SQL variable that currently has a non-NULL value bound to it,
2611** create an sqlite3_value structure containing this value, again with
2612** affinity aff applied to it, instead.
2613**
2614** If neither of the above apply, set *pp to NULL.
2615**
2616** If an error occurs, return an error code. Otherwise, SQLITE_OK.
2617*/
drhfaacf172011-08-12 01:51:45 +00002618#ifdef SQLITE_ENABLE_STAT3
dan937d0de2009-10-15 18:35:38 +00002619static int valueFromExpr(
2620 Parse *pParse,
2621 Expr *pExpr,
2622 u8 aff,
2623 sqlite3_value **pp
2624){
drh4278d532010-12-16 19:52:52 +00002625 if( pExpr->op==TK_VARIABLE
2626 || (pExpr->op==TK_REGISTER && pExpr->op2==TK_VARIABLE)
2627 ){
dan937d0de2009-10-15 18:35:38 +00002628 int iVar = pExpr->iColumn;
drhf9b22ca2011-10-21 16:47:31 +00002629 sqlite3VdbeSetVarmask(pParse->pVdbe, iVar);
dan937d0de2009-10-15 18:35:38 +00002630 *pp = sqlite3VdbeGetValue(pParse->pReprepare, iVar, aff);
2631 return SQLITE_OK;
2632 }
2633 return sqlite3ValueFromExpr(pParse->db, pExpr, SQLITE_UTF8, aff, pp);
2634}
danf7b0b0a2009-10-19 15:52:32 +00002635#endif
dan937d0de2009-10-15 18:35:38 +00002636
2637/*
dan02fa4692009-08-17 17:06:58 +00002638** This function is used to estimate the number of rows that will be visited
2639** by scanning an index for a range of values. The range may have an upper
2640** bound, a lower bound, or both. The WHERE clause terms that set the upper
2641** and lower bounds are represented by pLower and pUpper respectively. For
2642** example, assuming that index p is on t1(a):
2643**
2644** ... FROM t1 WHERE a > ? AND a < ? ...
2645** |_____| |_____|
2646** | |
2647** pLower pUpper
2648**
drh98cdf622009-08-20 18:14:42 +00002649** If either of the upper or lower bound is not present, then NULL is passed in
drhcdaca552009-08-20 13:45:07 +00002650** place of the corresponding WhereTerm.
dan02fa4692009-08-17 17:06:58 +00002651**
2652** The nEq parameter is passed the index of the index column subject to the
2653** range constraint. Or, equivalently, the number of equality constraints
2654** optimized by the proposed index scan. For example, assuming index p is
2655** on t1(a, b), and the SQL query is:
2656**
2657** ... FROM t1 WHERE a = ? AND b > ? AND b < ? ...
2658**
2659** then nEq should be passed the value 1 (as the range restricted column,
2660** b, is the second left-most column of the index). Or, if the query is:
2661**
2662** ... FROM t1 WHERE a > ? AND a < ? ...
2663**
2664** then nEq should be passed 0.
2665**
drhfaacf172011-08-12 01:51:45 +00002666** The returned value is an integer divisor to reduce the estimated
2667** search space. A return value of 1 means that range constraints are
2668** no help at all. A return value of 2 means range constraints are
2669** expected to reduce the search space by half. And so forth...
drh98cdf622009-08-20 18:14:42 +00002670**
drhfaacf172011-08-12 01:51:45 +00002671** In the absence of sqlite_stat3 ANALYZE data, each range inequality
2672** reduces the search space by a factor of 4. Hence a single constraint (x>?)
2673** results in a return of 4 and a range constraint (x>? AND x<?) results
2674** in a return of 16.
dan02fa4692009-08-17 17:06:58 +00002675*/
2676static int whereRangeScanEst(
drhcdaca552009-08-20 13:45:07 +00002677 Parse *pParse, /* Parsing & code generating context */
2678 Index *p, /* The index containing the range-compared column; "x" */
2679 int nEq, /* index into p->aCol[] of the range-compared column */
2680 WhereTerm *pLower, /* Lower bound on the range. ex: "x>123" Might be NULL */
2681 WhereTerm *pUpper, /* Upper bound on the range. ex: "x<455" Might be NULL */
drh4e50c5e2011-08-13 19:35:19 +00002682 double *pRangeDiv /* OUT: Reduce search space by this divisor */
dan02fa4692009-08-17 17:06:58 +00002683){
dan69188d92009-08-19 08:18:32 +00002684 int rc = SQLITE_OK;
2685
drhfaacf172011-08-12 01:51:45 +00002686#ifdef SQLITE_ENABLE_STAT3
dan02fa4692009-08-17 17:06:58 +00002687
drhfaacf172011-08-12 01:51:45 +00002688 if( nEq==0 && p->nSample ){
2689 sqlite3_value *pRangeVal;
2690 tRowcnt iLower = 0;
2691 tRowcnt iUpper = p->aiRowEst[0];
2692 tRowcnt a[2];
dan937d0de2009-10-15 18:35:38 +00002693 u8 aff = p->pTable->aCol[p->aiColumn[0]].affinity;
drh98cdf622009-08-20 18:14:42 +00002694
dan02fa4692009-08-17 17:06:58 +00002695 if( pLower ){
2696 Expr *pExpr = pLower->pExpr->pRight;
drhfaacf172011-08-12 01:51:45 +00002697 rc = valueFromExpr(pParse, pExpr, aff, &pRangeVal);
drh7a5bcc02013-01-16 17:08:58 +00002698 assert( (pLower->eOperator & (WO_GT|WO_GE))!=0 );
drhfaacf172011-08-12 01:51:45 +00002699 if( rc==SQLITE_OK
2700 && whereKeyStats(pParse, p, pRangeVal, 0, a)==SQLITE_OK
2701 ){
2702 iLower = a[0];
drh7a5bcc02013-01-16 17:08:58 +00002703 if( (pLower->eOperator & WO_GT)!=0 ) iLower += a[1];
drhfaacf172011-08-12 01:51:45 +00002704 }
2705 sqlite3ValueFree(pRangeVal);
dan02fa4692009-08-17 17:06:58 +00002706 }
drh98cdf622009-08-20 18:14:42 +00002707 if( rc==SQLITE_OK && pUpper ){
dan02fa4692009-08-17 17:06:58 +00002708 Expr *pExpr = pUpper->pExpr->pRight;
drhfaacf172011-08-12 01:51:45 +00002709 rc = valueFromExpr(pParse, pExpr, aff, &pRangeVal);
drh7a5bcc02013-01-16 17:08:58 +00002710 assert( (pUpper->eOperator & (WO_LT|WO_LE))!=0 );
drhfaacf172011-08-12 01:51:45 +00002711 if( rc==SQLITE_OK
2712 && whereKeyStats(pParse, p, pRangeVal, 1, a)==SQLITE_OK
2713 ){
2714 iUpper = a[0];
drh7a5bcc02013-01-16 17:08:58 +00002715 if( (pUpper->eOperator & WO_LE)!=0 ) iUpper += a[1];
dan02fa4692009-08-17 17:06:58 +00002716 }
drhfaacf172011-08-12 01:51:45 +00002717 sqlite3ValueFree(pRangeVal);
dan02fa4692009-08-17 17:06:58 +00002718 }
drhfaacf172011-08-12 01:51:45 +00002719 if( rc==SQLITE_OK ){
2720 if( iUpper<=iLower ){
drh4e50c5e2011-08-13 19:35:19 +00002721 *pRangeDiv = (double)p->aiRowEst[0];
drhfaacf172011-08-12 01:51:45 +00002722 }else{
drh4e50c5e2011-08-13 19:35:19 +00002723 *pRangeDiv = (double)p->aiRowEst[0]/(double)(iUpper - iLower);
drhfaacf172011-08-12 01:51:45 +00002724 }
drh4e50c5e2011-08-13 19:35:19 +00002725 WHERETRACE(("range scan regions: %u..%u div=%g\n",
2726 (u32)iLower, (u32)iUpper, *pRangeDiv));
drhfaacf172011-08-12 01:51:45 +00002727 return SQLITE_OK;
drh98cdf622009-08-20 18:14:42 +00002728 }
dan02fa4692009-08-17 17:06:58 +00002729 }
drh3f022182009-09-09 16:10:50 +00002730#else
2731 UNUSED_PARAMETER(pParse);
2732 UNUSED_PARAMETER(p);
2733 UNUSED_PARAMETER(nEq);
dan69188d92009-08-19 08:18:32 +00002734#endif
dan02fa4692009-08-17 17:06:58 +00002735 assert( pLower || pUpper );
drh4e50c5e2011-08-13 19:35:19 +00002736 *pRangeDiv = (double)1;
2737 if( pLower && (pLower->wtFlags & TERM_VNULL)==0 ) *pRangeDiv *= (double)4;
2738 if( pUpper ) *pRangeDiv *= (double)4;
dan02fa4692009-08-17 17:06:58 +00002739 return rc;
2740}
2741
drhfaacf172011-08-12 01:51:45 +00002742#ifdef SQLITE_ENABLE_STAT3
drh82759752011-01-20 16:52:09 +00002743/*
2744** Estimate the number of rows that will be returned based on
2745** an equality constraint x=VALUE and where that VALUE occurs in
2746** the histogram data. This only works when x is the left-most
drhfaacf172011-08-12 01:51:45 +00002747** column of an index and sqlite_stat3 histogram data is available
drhac8eb112011-03-17 01:58:21 +00002748** for that index. When pExpr==NULL that means the constraint is
2749** "x IS NULL" instead of "x=VALUE".
drh82759752011-01-20 16:52:09 +00002750**
drh0c50fa02011-01-21 16:27:18 +00002751** Write the estimated row count into *pnRow and return SQLITE_OK.
2752** If unable to make an estimate, leave *pnRow unchanged and return
2753** non-zero.
drh9b3eb0a2011-01-21 14:37:04 +00002754**
2755** This routine can fail if it is unable to load a collating sequence
2756** required for string comparison, or if unable to allocate memory
2757** for a UTF conversion required for comparison. The error is stored
2758** in the pParse structure.
drh82759752011-01-20 16:52:09 +00002759*/
drh041e09f2011-04-07 19:56:21 +00002760static int whereEqualScanEst(
drh82759752011-01-20 16:52:09 +00002761 Parse *pParse, /* Parsing & code generating context */
2762 Index *p, /* The index whose left-most column is pTerm */
drh0c50fa02011-01-21 16:27:18 +00002763 Expr *pExpr, /* Expression for VALUE in the x=VALUE constraint */
drh82759752011-01-20 16:52:09 +00002764 double *pnRow /* Write the revised row estimate here */
2765){
2766 sqlite3_value *pRhs = 0; /* VALUE on right-hand side of pTerm */
drh82759752011-01-20 16:52:09 +00002767 u8 aff; /* Column affinity */
2768 int rc; /* Subfunction return code */
drhfaacf172011-08-12 01:51:45 +00002769 tRowcnt a[2]; /* Statistics */
drh82759752011-01-20 16:52:09 +00002770
2771 assert( p->aSample!=0 );
drh5c624862011-09-22 18:46:34 +00002772 assert( p->nSample>0 );
drh82759752011-01-20 16:52:09 +00002773 aff = p->pTable->aCol[p->aiColumn[0]].affinity;
drh1f9c7662011-03-17 01:34:26 +00002774 if( pExpr ){
2775 rc = valueFromExpr(pParse, pExpr, aff, &pRhs);
2776 if( rc ) goto whereEqualScanEst_cancel;
2777 }else{
2778 pRhs = sqlite3ValueNew(pParse->db);
2779 }
drh0c50fa02011-01-21 16:27:18 +00002780 if( pRhs==0 ) return SQLITE_NOTFOUND;
drhfaacf172011-08-12 01:51:45 +00002781 rc = whereKeyStats(pParse, p, pRhs, 0, a);
2782 if( rc==SQLITE_OK ){
2783 WHERETRACE(("equality scan regions: %d\n", (int)a[1]));
2784 *pnRow = a[1];
drh82759752011-01-20 16:52:09 +00002785 }
drh0c50fa02011-01-21 16:27:18 +00002786whereEqualScanEst_cancel:
drh82759752011-01-20 16:52:09 +00002787 sqlite3ValueFree(pRhs);
drh0c50fa02011-01-21 16:27:18 +00002788 return rc;
2789}
drhfaacf172011-08-12 01:51:45 +00002790#endif /* defined(SQLITE_ENABLE_STAT3) */
drh0c50fa02011-01-21 16:27:18 +00002791
drhfaacf172011-08-12 01:51:45 +00002792#ifdef SQLITE_ENABLE_STAT3
drh0c50fa02011-01-21 16:27:18 +00002793/*
2794** Estimate the number of rows that will be returned based on
drh5ac06072011-01-21 18:18:13 +00002795** an IN constraint where the right-hand side of the IN operator
2796** is a list of values. Example:
2797**
2798** WHERE x IN (1,2,3,4)
drh0c50fa02011-01-21 16:27:18 +00002799**
2800** Write the estimated row count into *pnRow and return SQLITE_OK.
2801** If unable to make an estimate, leave *pnRow unchanged and return
2802** non-zero.
2803**
2804** This routine can fail if it is unable to load a collating sequence
2805** required for string comparison, or if unable to allocate memory
2806** for a UTF conversion required for comparison. The error is stored
2807** in the pParse structure.
2808*/
drh041e09f2011-04-07 19:56:21 +00002809static int whereInScanEst(
drh0c50fa02011-01-21 16:27:18 +00002810 Parse *pParse, /* Parsing & code generating context */
2811 Index *p, /* The index whose left-most column is pTerm */
2812 ExprList *pList, /* The value list on the RHS of "x IN (v1,v2,v3,...)" */
2813 double *pnRow /* Write the revised row estimate here */
2814){
drh68257192011-08-16 17:06:21 +00002815 int rc = SQLITE_OK; /* Subfunction return code */
2816 double nEst; /* Number of rows for a single term */
2817 double nRowEst = (double)0; /* New estimate of the number of rows */
2818 int i; /* Loop counter */
drh0c50fa02011-01-21 16:27:18 +00002819
2820 assert( p->aSample!=0 );
drhfaacf172011-08-12 01:51:45 +00002821 for(i=0; rc==SQLITE_OK && i<pList->nExpr; i++){
2822 nEst = p->aiRowEst[0];
2823 rc = whereEqualScanEst(pParse, p, pList->a[i].pExpr, &nEst);
2824 nRowEst += nEst;
drh0c50fa02011-01-21 16:27:18 +00002825 }
2826 if( rc==SQLITE_OK ){
drh0c50fa02011-01-21 16:27:18 +00002827 if( nRowEst > p->aiRowEst[0] ) nRowEst = p->aiRowEst[0];
2828 *pnRow = nRowEst;
drhfaacf172011-08-12 01:51:45 +00002829 WHERETRACE(("IN row estimate: est=%g\n", nRowEst));
drh0c50fa02011-01-21 16:27:18 +00002830 }
drh0c50fa02011-01-21 16:27:18 +00002831 return rc;
drh82759752011-01-20 16:52:09 +00002832}
drhfaacf172011-08-12 01:51:45 +00002833#endif /* defined(SQLITE_ENABLE_STAT3) */
drh82759752011-01-20 16:52:09 +00002834
drh46c35f92012-09-26 23:17:01 +00002835/*
drh32634d22012-09-27 14:11:36 +00002836** Check to see if column iCol of the table with cursor iTab will appear
drh8e4af1b2012-10-08 18:23:51 +00002837** in sorted order according to the current query plan.
drh32634d22012-09-27 14:11:36 +00002838**
drh8e4af1b2012-10-08 18:23:51 +00002839** Return values:
2840**
2841** 0 iCol is not ordered
2842** 1 iCol has only a single value
2843** 2 iCol is in ASC order
2844** 3 iCol is in DESC order
drh32634d22012-09-27 14:11:36 +00002845*/
drh8e4af1b2012-10-08 18:23:51 +00002846static int isOrderedColumn(
2847 WhereBestIdx *p,
2848 int iTab,
2849 int iCol
2850){
drh32634d22012-09-27 14:11:36 +00002851 int i, j;
2852 WhereLevel *pLevel = &p->aLevel[p->i-1];
2853 Index *pIdx;
2854 u8 sortOrder;
2855 for(i=p->i-1; i>=0; i--, pLevel--){
2856 if( pLevel->iTabCur!=iTab ) continue;
drh60441af2012-09-29 19:10:29 +00002857 if( (pLevel->plan.wsFlags & WHERE_ALL_UNIQUE)!=0 ){
2858 return 1;
2859 }
drh69a76ba2012-10-09 01:23:25 +00002860 assert( (pLevel->plan.wsFlags & WHERE_ORDERED)!=0 );
drhd663b5b2012-10-03 00:25:54 +00002861 if( (pIdx = pLevel->plan.u.pIdx)!=0 ){
drh6b10a6a2012-09-27 17:31:32 +00002862 if( iCol<0 ){
2863 sortOrder = 0;
2864 testcase( (pLevel->plan.wsFlags & WHERE_REVERSE)!=0 );
2865 }else{
drhafcd5222012-10-02 15:19:19 +00002866 int n = pIdx->nColumn;
drh178eb612012-10-02 14:11:29 +00002867 for(j=0; j<n; j++){
drh6b10a6a2012-09-27 17:31:32 +00002868 if( iCol==pIdx->aiColumn[j] ) break;
2869 }
drh178eb612012-10-02 14:11:29 +00002870 if( j>=n ) return 0;
drh6b10a6a2012-09-27 17:31:32 +00002871 sortOrder = pIdx->aSortOrder[j];
2872 testcase( (pLevel->plan.wsFlags & WHERE_REVERSE)!=0 );
drh32634d22012-09-27 14:11:36 +00002873 }
drh32634d22012-09-27 14:11:36 +00002874 }else{
2875 if( iCol!=(-1) ) return 0;
2876 sortOrder = 0;
drh6b10a6a2012-09-27 17:31:32 +00002877 testcase( (pLevel->plan.wsFlags & WHERE_REVERSE)!=0 );
drh32634d22012-09-27 14:11:36 +00002878 }
drh6b10a6a2012-09-27 17:31:32 +00002879 if( (pLevel->plan.wsFlags & WHERE_REVERSE)!=0 ){
2880 assert( sortOrder==0 || sortOrder==1 );
2881 testcase( sortOrder==1 );
2882 sortOrder = 1 - sortOrder;
2883 }
drh8e4af1b2012-10-08 18:23:51 +00002884 return sortOrder+2;
drh32634d22012-09-27 14:11:36 +00002885 }
2886 return 0;
2887}
2888
2889/*
drh60441af2012-09-29 19:10:29 +00002890** This routine decides if pIdx can be used to satisfy the ORDER BY
2891** clause, either in whole or in part. The return value is the
2892** cumulative number of terms in the ORDER BY clause that are satisfied
2893** by the index pIdx and other indices in outer loops.
2894**
2895** The table being queried has a cursor number of "base". pIdx is the
2896** index that is postulated for use to access the table.
2897**
drh60441af2012-09-29 19:10:29 +00002898** The *pbRev value is set to 0 order 1 depending on whether or not
2899** pIdx should be run in the forward order or in reverse order.
2900*/
2901static int isSortingIndex(
2902 WhereBestIdx *p, /* Best index search context */
2903 Index *pIdx, /* The index we are testing */
2904 int base, /* Cursor number for the table to be sorted */
drh8a1b87c2013-03-27 15:04:28 +00002905 int *pbRev, /* Set to 1 for reverse-order scan of pIdx */
2906 int *pbObUnique /* ORDER BY column values will different in every row */
drh60441af2012-09-29 19:10:29 +00002907){
2908 int i; /* Number of pIdx terms used */
2909 int j; /* Number of ORDER BY terms satisfied */
drh4f68d6c2012-10-04 12:10:25 +00002910 int sortOrder = 2; /* 0: forward. 1: backward. 2: unknown */
drh60441af2012-09-29 19:10:29 +00002911 int nTerm; /* Number of ORDER BY terms */
drh8e4af1b2012-10-08 18:23:51 +00002912 struct ExprList_item *pOBItem;/* A term of the ORDER BY clause */
drh4f68d6c2012-10-04 12:10:25 +00002913 Table *pTab = pIdx->pTable; /* Table that owns index pIdx */
drh60441af2012-09-29 19:10:29 +00002914 ExprList *pOrderBy; /* The ORDER BY clause */
2915 Parse *pParse = p->pParse; /* Parser context */
2916 sqlite3 *db = pParse->db; /* Database connection */
2917 int nPriorSat; /* ORDER BY terms satisfied by outer loops */
2918 int seenRowid = 0; /* True if an ORDER BY rowid term is seen */
drh0a4c7412012-10-08 19:41:38 +00002919 int uniqueNotNull; /* pIdx is UNIQUE with all terms are NOT NULL */
drh8a1b87c2013-03-27 15:04:28 +00002920 int outerObUnique; /* Outer loops generate different values in
2921 ** every row for the ORDER BY columns */
drh60441af2012-09-29 19:10:29 +00002922
2923 if( p->i==0 ){
2924 nPriorSat = 0;
drh8a1b87c2013-03-27 15:04:28 +00002925 outerObUnique = 1;
drh60441af2012-09-29 19:10:29 +00002926 }else{
drhe6a8bbb2013-03-27 16:42:21 +00002927 u32 wsFlags = p->aLevel[p->i-1].plan.wsFlags;
drh60441af2012-09-29 19:10:29 +00002928 nPriorSat = p->aLevel[p->i-1].plan.nOBSat;
drhe6a8bbb2013-03-27 16:42:21 +00002929 if( (wsFlags & WHERE_ORDERED)==0 ){
drh0a4c7412012-10-08 19:41:38 +00002930 /* This loop cannot be ordered unless the next outer loop is
2931 ** also ordered */
drhd663b5b2012-10-03 00:25:54 +00002932 return nPriorSat;
2933 }
drh0a4c7412012-10-08 19:41:38 +00002934 if( OptimizationDisabled(db, SQLITE_OrderByIdxJoin) ){
2935 /* Only look at the outer-most loop if the OrderByIdxJoin
2936 ** optimization is disabled */
2937 return nPriorSat;
2938 }
drhe6a8bbb2013-03-27 16:42:21 +00002939 testcase( wsFlags & WHERE_OB_UNIQUE );
2940 testcase( wsFlags & WHERE_ALL_UNIQUE );
2941 outerObUnique = (wsFlags & (WHERE_OB_UNIQUE|WHERE_ALL_UNIQUE))!=0;
drh60441af2012-09-29 19:10:29 +00002942 }
2943 pOrderBy = p->pOrderBy;
2944 assert( pOrderBy!=0 );
drh0a4c7412012-10-08 19:41:38 +00002945 if( pIdx->bUnordered ){
2946 /* Hash indices (indicated by the "unordered" tag on sqlite_stat1) cannot
2947 ** be used for sorting */
2948 return nPriorSat;
2949 }
drh60441af2012-09-29 19:10:29 +00002950 nTerm = pOrderBy->nExpr;
drh8e4af1b2012-10-08 18:23:51 +00002951 uniqueNotNull = pIdx->onError!=OE_None;
drh60441af2012-09-29 19:10:29 +00002952 assert( nTerm>0 );
2953
2954 /* Argument pIdx must either point to a 'real' named index structure,
2955 ** or an index structure allocated on the stack by bestBtreeIndex() to
2956 ** represent the rowid index that is part of every table. */
2957 assert( pIdx->zName || (pIdx->nColumn==1 && pIdx->aiColumn[0]==-1) );
2958
2959 /* Match terms of the ORDER BY clause against columns of
2960 ** the index.
2961 **
2962 ** Note that indices have pIdx->nColumn regular columns plus
2963 ** one additional column containing the rowid. The rowid column
2964 ** of the index is also allowed to match against the ORDER BY
2965 ** clause.
2966 */
drh8e4af1b2012-10-08 18:23:51 +00002967 j = nPriorSat;
2968 for(i=0,pOBItem=&pOrderBy->a[j]; j<nTerm && i<=pIdx->nColumn; i++){
2969 Expr *pOBExpr; /* The expression of the ORDER BY pOBItem */
2970 CollSeq *pColl; /* The collating sequence of pOBExpr */
2971 int termSortOrder; /* Sort order for this term */
2972 int iColumn; /* The i-th column of the index. -1 for rowid */
2973 int iSortOrder; /* 1 for DESC, 0 for ASC on the i-th index term */
2974 int isEq; /* Subject to an == or IS NULL constraint */
2975 int isMatch; /* ORDER BY term matches the index term */
2976 const char *zColl; /* Name of collating sequence for i-th index term */
2977 WhereTerm *pConstraint; /* A constraint in the WHERE clause */
drh60441af2012-09-29 19:10:29 +00002978
drh8e4af1b2012-10-08 18:23:51 +00002979 /* If the next term of the ORDER BY clause refers to anything other than
2980 ** a column in the "base" table, then this index will not be of any
2981 ** further use in handling the ORDER BY. */
drh7a66da12012-12-07 20:31:11 +00002982 pOBExpr = sqlite3ExprSkipCollate(pOBItem->pExpr);
drh8e4af1b2012-10-08 18:23:51 +00002983 if( pOBExpr->op!=TK_COLUMN || pOBExpr->iTable!=base ){
drh60441af2012-09-29 19:10:29 +00002984 break;
2985 }
drh8e4af1b2012-10-08 18:23:51 +00002986
2987 /* Find column number and collating sequence for the next entry
2988 ** in the index */
drh60441af2012-09-29 19:10:29 +00002989 if( pIdx->zName && i<pIdx->nColumn ){
2990 iColumn = pIdx->aiColumn[i];
2991 if( iColumn==pIdx->pTable->iPKey ){
2992 iColumn = -1;
2993 }
2994 iSortOrder = pIdx->aSortOrder[i];
2995 zColl = pIdx->azColl[i];
drh8e4af1b2012-10-08 18:23:51 +00002996 assert( zColl!=0 );
drh60441af2012-09-29 19:10:29 +00002997 }else{
2998 iColumn = -1;
2999 iSortOrder = 0;
drh8e4af1b2012-10-08 18:23:51 +00003000 zColl = 0;
drh60441af2012-09-29 19:10:29 +00003001 }
drh8e4af1b2012-10-08 18:23:51 +00003002
3003 /* Check to see if the column number and collating sequence of the
3004 ** index match the column number and collating sequence of the ORDER BY
3005 ** clause entry. Set isMatch to 1 if they both match. */
3006 if( pOBExpr->iColumn==iColumn ){
3007 if( zColl ){
drh7a66da12012-12-07 20:31:11 +00003008 pColl = sqlite3ExprCollSeq(pParse, pOBItem->pExpr);
drh8e4af1b2012-10-08 18:23:51 +00003009 if( !pColl ) pColl = db->pDfltColl;
3010 isMatch = sqlite3StrICmp(pColl->zName, zColl)==0;
drh60441af2012-09-29 19:10:29 +00003011 }else{
drh8e4af1b2012-10-08 18:23:51 +00003012 isMatch = 1;
drh60441af2012-09-29 19:10:29 +00003013 }
3014 }else{
drh8e4af1b2012-10-08 18:23:51 +00003015 isMatch = 0;
3016 }
3017
3018 /* termSortOrder is 0 or 1 for whether or not the access loop should
3019 ** run forward or backwards (respectively) in order to satisfy this
3020 ** term of the ORDER BY clause. */
drh2f546ee2012-10-09 09:26:28 +00003021 assert( pOBItem->sortOrder==0 || pOBItem->sortOrder==1 );
3022 assert( iSortOrder==0 || iSortOrder==1 );
drh8e4af1b2012-10-08 18:23:51 +00003023 termSortOrder = iSortOrder ^ pOBItem->sortOrder;
3024
3025 /* If X is the column in the index and ORDER BY clause, check to see
3026 ** if there are any X= or X IS NULL constraints in the WHERE clause. */
3027 pConstraint = findTerm(p->pWC, base, iColumn, p->notReady,
3028 WO_EQ|WO_ISNULL|WO_IN, pIdx);
3029 if( pConstraint==0 ){
3030 isEq = 0;
drh7a5bcc02013-01-16 17:08:58 +00003031 }else if( (pConstraint->eOperator & WO_IN)!=0 ){
drh1b8fc652013-02-07 21:15:14 +00003032 isEq = 0;
drh7a5bcc02013-01-16 17:08:58 +00003033 }else if( (pConstraint->eOperator & WO_ISNULL)!=0 ){
drh8e4af1b2012-10-08 18:23:51 +00003034 uniqueNotNull = 0;
drh2f546ee2012-10-09 09:26:28 +00003035 isEq = 1; /* "X IS NULL" means X has only a single value */
drh6b9e5652012-10-08 20:27:35 +00003036 }else if( pConstraint->prereqRight==0 ){
drh2f546ee2012-10-09 09:26:28 +00003037 isEq = 1; /* Constraint "X=constant" means X has only a single value */
drh8e4af1b2012-10-08 18:23:51 +00003038 }else{
3039 Expr *pRight = pConstraint->pExpr->pRight;
3040 if( pRight->op==TK_COLUMN ){
3041 WHERETRACE((" .. isOrderedColumn(tab=%d,col=%d)",
3042 pRight->iTable, pRight->iColumn));
3043 isEq = isOrderedColumn(p, pRight->iTable, pRight->iColumn);
3044 WHERETRACE((" -> isEq=%d\n", isEq));
drh2f546ee2012-10-09 09:26:28 +00003045
3046 /* If the constraint is of the form X=Y where Y is an ordered value
3047 ** in an outer loop, then make sure the sort order of Y matches the
3048 ** sort order required for X. */
drh2fad8152012-10-08 21:01:15 +00003049 if( isMatch && isEq>=2 && isEq!=pOBItem->sortOrder+2 ){
drh2f546ee2012-10-09 09:26:28 +00003050 testcase( isEq==2 );
3051 testcase( isEq==3 );
drh8e4af1b2012-10-08 18:23:51 +00003052 break;
3053 }
3054 }else{
drh2f546ee2012-10-09 09:26:28 +00003055 isEq = 0; /* "X=expr" places no ordering constraints on X */
drh8e4af1b2012-10-08 18:23:51 +00003056 }
3057 }
drh8e4af1b2012-10-08 18:23:51 +00003058 if( !isMatch ){
3059 if( isEq==0 ){
3060 break;
3061 }else{
3062 continue;
3063 }
drh6b9e5652012-10-08 20:27:35 +00003064 }else if( isEq!=1 ){
3065 if( sortOrder==2 ){
3066 sortOrder = termSortOrder;
3067 }else if( termSortOrder!=sortOrder ){
3068 break;
3069 }
drh60441af2012-09-29 19:10:29 +00003070 }
3071 j++;
drh8e4af1b2012-10-08 18:23:51 +00003072 pOBItem++;
drh60441af2012-09-29 19:10:29 +00003073 if( iColumn<0 ){
3074 seenRowid = 1;
3075 break;
drh2f546ee2012-10-09 09:26:28 +00003076 }else if( pTab->aCol[iColumn].notNull==0 && isEq!=1 ){
3077 testcase( isEq==0 );
3078 testcase( isEq==2 );
3079 testcase( isEq==3 );
drh4f68d6c2012-10-04 12:10:25 +00003080 uniqueNotNull = 0;
drh60441af2012-09-29 19:10:29 +00003081 }
3082 }
drh8a1b87c2013-03-27 15:04:28 +00003083 if( seenRowid ){
3084 uniqueNotNull = 1;
3085 }else if( uniqueNotNull==0 || i<pIdx->nColumn ){
3086 uniqueNotNull = 0;
3087 }
drh0a4c7412012-10-08 19:41:38 +00003088
3089 /* If we have not found at least one ORDER BY term that matches the
3090 ** index, then show no progress. */
3091 if( pOBItem==&pOrderBy->a[nPriorSat] ) return nPriorSat;
3092
drhd9883572013-03-27 17:20:10 +00003093 /* Either the outer queries must generate rows where there are no two
3094 ** rows with the same values in all ORDER BY columns, or else this
3095 ** loop must generate just a single row of output. Example: Suppose
3096 ** the outer loops generate A=1 and A=1, and this loop generates B=3
3097 ** and B=4. Then without the following test, ORDER BY A,B would
3098 ** generate the wrong order output: 1,3 1,4 1,3 1,4
3099 */
drh8a1b87c2013-03-27 15:04:28 +00003100 if( outerObUnique==0 && uniqueNotNull==0 ) return nPriorSat;
3101 *pbObUnique = uniqueNotNull;
3102
drh0a4c7412012-10-08 19:41:38 +00003103 /* Return the necessary scan order back to the caller */
drh4f68d6c2012-10-04 12:10:25 +00003104 *pbRev = sortOrder & 1;
drh60441af2012-09-29 19:10:29 +00003105
3106 /* If there was an "ORDER BY rowid" term that matched, or it is only
3107 ** possible for a single row from this table to match, then skip over
3108 ** any additional ORDER BY terms dealing with this table.
3109 */
drh8a1b87c2013-03-27 15:04:28 +00003110 if( uniqueNotNull ){
drh60441af2012-09-29 19:10:29 +00003111 /* Advance j over additional ORDER BY terms associated with base */
3112 WhereMaskSet *pMS = p->pWC->pMaskSet;
3113 Bitmask m = ~getMask(pMS, base);
3114 while( j<nTerm && (exprTableUsage(pMS, pOrderBy->a[j].pExpr)&m)==0 ){
3115 j++;
3116 }
3117 }
3118 return j;
3119}
dan02fa4692009-08-17 17:06:58 +00003120
3121/*
drh083310d2011-01-28 01:57:41 +00003122** Find the best query plan for accessing a particular table. Write the
drh56f1b992012-09-25 14:29:39 +00003123** best query plan and its cost into the p->cost.
drh51147ba2005-07-23 22:59:55 +00003124**
drh111a6a72008-12-21 03:51:16 +00003125** The lowest cost plan wins. The cost is an estimate of the amount of
drh083310d2011-01-28 01:57:41 +00003126** CPU and disk I/O needed to process the requested result.
drh51147ba2005-07-23 22:59:55 +00003127** Factors that influence cost include:
3128**
3129** * The estimated number of rows that will be retrieved. (The
3130** fewer the better.)
3131**
3132** * Whether or not sorting must occur.
3133**
3134** * Whether or not there must be separate lookups in the
3135** index and in the main table.
3136**
danielk1977e2d7b242009-02-23 17:33:49 +00003137** If there was an INDEXED BY clause (pSrc->pIndex) attached to the table in
3138** the SQL statement, then this function only considers plans using the
drh296a4832009-03-22 20:36:18 +00003139** named index. If no such plan is found, then the returned cost is
3140** SQLITE_BIG_DBL. If a plan is found that uses the named index,
danielk197785574e32008-10-06 05:32:18 +00003141** then the cost is calculated in the usual way.
3142**
drh21172c42012-10-30 00:29:07 +00003143** If a NOT INDEXED clause was attached to the table
danielk1977e2d7b242009-02-23 17:33:49 +00003144** in the SELECT statement, then no indexes are considered. However, the
drh083310d2011-01-28 01:57:41 +00003145** selected plan may still take advantage of the built-in rowid primary key
danielk197785574e32008-10-06 05:32:18 +00003146** index.
drhfe05af82005-07-21 03:14:59 +00003147*/
drh56f1b992012-09-25 14:29:39 +00003148static void bestBtreeIndex(WhereBestIdx *p){
3149 Parse *pParse = p->pParse; /* The parsing context */
3150 WhereClause *pWC = p->pWC; /* The WHERE clause */
3151 struct SrcList_item *pSrc = p->pSrc; /* The FROM clause term to search */
drh51147ba2005-07-23 22:59:55 +00003152 int iCur = pSrc->iCursor; /* The cursor of the table to be accessed */
3153 Index *pProbe; /* An index we are evaluating */
dan5236ac12009-08-13 07:09:33 +00003154 Index *pIdx; /* Copy of pProbe, or zero for IPK index */
3155 int eqTermMask; /* Current mask of valid equality operators */
3156 int idxEqTermMask; /* Index mask of valid equality operators */
drhcdaca552009-08-20 13:45:07 +00003157 Index sPk; /* A fake index object for the primary key */
drhfaacf172011-08-12 01:51:45 +00003158 tRowcnt aiRowEstPk[2]; /* The aiRowEst[] value for the sPk index */
drhcdaca552009-08-20 13:45:07 +00003159 int aiColumnPk = -1; /* The aColumn[] value for the sPk index */
drh56f1b992012-09-25 14:29:39 +00003160 int wsFlagMask; /* Allowed flags in p->cost.plan.wsFlag */
drh04229ac2012-12-08 22:14:29 +00003161 int nPriorSat; /* ORDER BY terms satisfied by outer loops */
3162 int nOrderBy; /* Number of ORDER BY terms */
3163 char bSortInit; /* Initializer for bSort in inner loop */
3164 char bDistInit; /* Initializer for bDist in inner loop */
3165
drhfe05af82005-07-21 03:14:59 +00003166
drhcdaca552009-08-20 13:45:07 +00003167 /* Initialize the cost to a worst-case value */
drh56f1b992012-09-25 14:29:39 +00003168 memset(&p->cost, 0, sizeof(p->cost));
3169 p->cost.rCost = SQLITE_BIG_DBL;
drh51147ba2005-07-23 22:59:55 +00003170
drhc49de5d2007-01-19 01:06:01 +00003171 /* If the pSrc table is the right table of a LEFT JOIN then we may not
3172 ** use an index to satisfy IS NULL constraints on that table. This is
3173 ** because columns might end up being NULL if the table does not match -
3174 ** a circumstance which the index cannot help us discover. Ticket #2177.
3175 */
dan5236ac12009-08-13 07:09:33 +00003176 if( pSrc->jointype & JT_LEFT ){
3177 idxEqTermMask = WO_EQ|WO_IN;
drhc49de5d2007-01-19 01:06:01 +00003178 }else{
dan5236ac12009-08-13 07:09:33 +00003179 idxEqTermMask = WO_EQ|WO_IN|WO_ISNULL;
drhc49de5d2007-01-19 01:06:01 +00003180 }
3181
danielk197785574e32008-10-06 05:32:18 +00003182 if( pSrc->pIndex ){
drhcdaca552009-08-20 13:45:07 +00003183 /* An INDEXED BY clause specifies a particular index to use */
dan5236ac12009-08-13 07:09:33 +00003184 pIdx = pProbe = pSrc->pIndex;
3185 wsFlagMask = ~(WHERE_ROWID_EQ|WHERE_ROWID_RANGE);
3186 eqTermMask = idxEqTermMask;
3187 }else{
drh083310d2011-01-28 01:57:41 +00003188 /* There is no INDEXED BY clause. Create a fake Index object in local
3189 ** variable sPk to represent the rowid primary key index. Make this
3190 ** fake index the first in a chain of Index objects with all of the real
3191 ** indices to follow */
3192 Index *pFirst; /* First of real indices on the table */
drhcdaca552009-08-20 13:45:07 +00003193 memset(&sPk, 0, sizeof(Index));
3194 sPk.nColumn = 1;
3195 sPk.aiColumn = &aiColumnPk;
3196 sPk.aiRowEst = aiRowEstPk;
drhcdaca552009-08-20 13:45:07 +00003197 sPk.onError = OE_Replace;
3198 sPk.pTable = pSrc->pTab;
drh15564052010-09-25 22:32:56 +00003199 aiRowEstPk[0] = pSrc->pTab->nRowEst;
3200 aiRowEstPk[1] = 1;
drhcdaca552009-08-20 13:45:07 +00003201 pFirst = pSrc->pTab->pIndex;
dan5236ac12009-08-13 07:09:33 +00003202 if( pSrc->notIndexed==0 ){
drh083310d2011-01-28 01:57:41 +00003203 /* The real indices of the table are only considered if the
3204 ** NOT INDEXED qualifier is omitted from the FROM clause */
drhcdaca552009-08-20 13:45:07 +00003205 sPk.pNext = pFirst;
dan5236ac12009-08-13 07:09:33 +00003206 }
drhcdaca552009-08-20 13:45:07 +00003207 pProbe = &sPk;
dan5236ac12009-08-13 07:09:33 +00003208 wsFlagMask = ~(
3209 WHERE_COLUMN_IN|WHERE_COLUMN_EQ|WHERE_COLUMN_NULL|WHERE_COLUMN_RANGE
3210 );
3211 eqTermMask = WO_EQ|WO_IN;
3212 pIdx = 0;
danielk197785574e32008-10-06 05:32:18 +00003213 }
drh51147ba2005-07-23 22:59:55 +00003214
drh04229ac2012-12-08 22:14:29 +00003215 nOrderBy = p->pOrderBy ? p->pOrderBy->nExpr : 0;
3216 if( p->i ){
3217 nPriorSat = p->aLevel[p->i-1].plan.nOBSat;
3218 bSortInit = nPriorSat<nOrderBy;
3219 bDistInit = 0;
3220 }else{
3221 nPriorSat = 0;
3222 bSortInit = nOrderBy>0;
3223 bDistInit = p->pDistinct!=0;
3224 }
3225
drhcdaca552009-08-20 13:45:07 +00003226 /* Loop over all indices looking for the best one to use
3227 */
dan5236ac12009-08-13 07:09:33 +00003228 for(; pProbe; pIdx=pProbe=pProbe->pNext){
drhfaacf172011-08-12 01:51:45 +00003229 const tRowcnt * const aiRowEst = pProbe->aiRowEst;
drhd663b5b2012-10-03 00:25:54 +00003230 WhereCost pc; /* Cost of using pProbe */
drh93c63842011-09-22 00:28:55 +00003231 double log10N = (double)1; /* base-10 logarithm of nRow (inexact) */
drh8e4af1b2012-10-08 18:23:51 +00003232
dan5236ac12009-08-13 07:09:33 +00003233 /* The following variables are populated based on the properties of
drh083310d2011-01-28 01:57:41 +00003234 ** index being evaluated. They are then used to determine the expected
dan5236ac12009-08-13 07:09:33 +00003235 ** cost and number of rows returned.
3236 **
drhd663b5b2012-10-03 00:25:54 +00003237 ** pc.plan.nEq:
dan5236ac12009-08-13 07:09:33 +00003238 ** Number of equality terms that can be implemented using the index.
drh083310d2011-01-28 01:57:41 +00003239 ** In other words, the number of initial fields in the index that
3240 ** are used in == or IN or NOT NULL constraints of the WHERE clause.
dan5236ac12009-08-13 07:09:33 +00003241 **
3242 ** nInMul:
3243 ** The "in-multiplier". This is an estimate of how many seek operations
3244 ** SQLite must perform on the index in question. For example, if the
3245 ** WHERE clause is:
3246 **
3247 ** WHERE a IN (1, 2, 3) AND b IN (4, 5, 6)
3248 **
3249 ** SQLite must perform 9 lookups on an index on (a, b), so nInMul is
3250 ** set to 9. Given the same schema and either of the following WHERE
3251 ** clauses:
3252 **
3253 ** WHERE a = 1
3254 ** WHERE a >= 2
3255 **
3256 ** nInMul is set to 1.
3257 **
3258 ** If there exists a WHERE term of the form "x IN (SELECT ...)", then
3259 ** the sub-select is assumed to return 25 rows for the purposes of
3260 ** determining nInMul.
3261 **
3262 ** bInEst:
3263 ** Set to true if there was at least one "x IN (SELECT ...)" term used
drh083310d2011-01-28 01:57:41 +00003264 ** in determining the value of nInMul. Note that the RHS of the
3265 ** IN operator must be a SELECT, not a value list, for this variable
3266 ** to be true.
dan5236ac12009-08-13 07:09:33 +00003267 **
drhfaacf172011-08-12 01:51:45 +00003268 ** rangeDiv:
3269 ** An estimate of a divisor by which to reduce the search space due
3270 ** to inequality constraints. In the absence of sqlite_stat3 ANALYZE
3271 ** data, a single inequality reduces the search space to 1/4rd its
3272 ** original size (rangeDiv==4). Two inequalities reduce the search
3273 ** space to 1/16th of its original size (rangeDiv==16).
dan5236ac12009-08-13 07:09:33 +00003274 **
3275 ** bSort:
3276 ** Boolean. True if there is an ORDER BY clause that will require an
3277 ** external sort (i.e. scanning the index being evaluated will not
3278 ** correctly order records).
3279 **
drh04b85bc2012-10-01 17:44:05 +00003280 ** bDist:
drh46c35f92012-09-26 23:17:01 +00003281 ** Boolean. True if there is a DISTINCT clause that will require an
3282 ** external btree.
3283 **
dan5236ac12009-08-13 07:09:33 +00003284 ** bLookup:
drh083310d2011-01-28 01:57:41 +00003285 ** Boolean. True if a table lookup is required for each index entry
3286 ** visited. In other words, true if this is not a covering index.
3287 ** This is always false for the rowid primary key index of a table.
3288 ** For other indexes, it is true unless all the columns of the table
3289 ** used by the SELECT statement are present in the index (such an
3290 ** index is sometimes described as a covering index).
dan5236ac12009-08-13 07:09:33 +00003291 ** For example, given the index on (a, b), the second of the following
drh083310d2011-01-28 01:57:41 +00003292 ** two queries requires table b-tree lookups in order to find the value
3293 ** of column c, but the first does not because columns a and b are
3294 ** both available in the index.
dan5236ac12009-08-13 07:09:33 +00003295 **
3296 ** SELECT a, b FROM tbl WHERE a = 1;
3297 ** SELECT a, b, c FROM tbl WHERE a = 1;
drhfe05af82005-07-21 03:14:59 +00003298 */
drh083310d2011-01-28 01:57:41 +00003299 int bInEst = 0; /* True if "x IN (SELECT...)" seen */
3300 int nInMul = 1; /* Number of distinct equalities to lookup */
drh4e50c5e2011-08-13 19:35:19 +00003301 double rangeDiv = (double)1; /* Estimated reduction in search space */
drh82759752011-01-20 16:52:09 +00003302 int nBound = 0; /* Number of range constraints seen */
drh04229ac2012-12-08 22:14:29 +00003303 char bSort = bSortInit; /* True if external sort required */
3304 char bDist = bDistInit; /* True if index cannot help with DISTINCT */
3305 char bLookup = 0; /* True if not a covering index */
drh82759752011-01-20 16:52:09 +00003306 WhereTerm *pTerm; /* A single term of the WHERE clause */
drhfaacf172011-08-12 01:51:45 +00003307#ifdef SQLITE_ENABLE_STAT3
drh0c50fa02011-01-21 16:27:18 +00003308 WhereTerm *pFirstTerm = 0; /* First term matching the index */
drh82759752011-01-20 16:52:09 +00003309#endif
dan5236ac12009-08-13 07:09:33 +00003310
drh86257ff2012-10-09 01:39:25 +00003311 WHERETRACE((
3312 " %s(%s):\n",
3313 pSrc->pTab->zName, (pIdx ? pIdx->zName : "ipk")
3314 ));
drh613a53a2012-10-03 18:09:32 +00003315 memset(&pc, 0, sizeof(pc));
drh04229ac2012-12-08 22:14:29 +00003316 pc.plan.nOBSat = nPriorSat;
drh9cd1c992012-09-25 20:43:35 +00003317
drhd663b5b2012-10-03 00:25:54 +00003318 /* Determine the values of pc.plan.nEq and nInMul */
drh4f68d6c2012-10-04 12:10:25 +00003319 for(pc.plan.nEq=0; pc.plan.nEq<pProbe->nColumn; pc.plan.nEq++){
drhd663b5b2012-10-03 00:25:54 +00003320 int j = pProbe->aiColumn[pc.plan.nEq];
drh56f1b992012-09-25 14:29:39 +00003321 pTerm = findTerm(pWC, iCur, j, p->notReady, eqTermMask, pIdx);
drhfe05af82005-07-21 03:14:59 +00003322 if( pTerm==0 ) break;
drhd663b5b2012-10-03 00:25:54 +00003323 pc.plan.wsFlags |= (WHERE_COLUMN_EQ|WHERE_ROWID_EQ);
drh0a61df62011-10-07 17:45:58 +00003324 testcase( pTerm->pWC!=pWC );
drhb52076c2006-01-23 13:22:09 +00003325 if( pTerm->eOperator & WO_IN ){
drha6110402005-07-28 20:51:19 +00003326 Expr *pExpr = pTerm->pExpr;
drhd663b5b2012-10-03 00:25:54 +00003327 pc.plan.wsFlags |= WHERE_COLUMN_IN;
danielk19776ab3a2e2009-02-19 14:39:25 +00003328 if( ExprHasProperty(pExpr, EP_xIsSelect) ){
drh9b3eb0a2011-01-21 14:37:04 +00003329 /* "x IN (SELECT ...)": Assume the SELECT returns 25 rows */
dan5236ac12009-08-13 07:09:33 +00003330 nInMul *= 25;
3331 bInEst = 1;
drh083310d2011-01-28 01:57:41 +00003332 }else if( ALWAYS(pExpr->x.pList && pExpr->x.pList->nExpr) ){
drh9b3eb0a2011-01-21 14:37:04 +00003333 /* "x IN (value, value, ...)" */
drh083310d2011-01-28 01:57:41 +00003334 nInMul *= pExpr->x.pList->nExpr;
drhfe05af82005-07-21 03:14:59 +00003335 }
drh46619d62009-04-24 14:51:42 +00003336 }else if( pTerm->eOperator & WO_ISNULL ){
drhd663b5b2012-10-03 00:25:54 +00003337 pc.plan.wsFlags |= WHERE_COLUMN_NULL;
drhfe05af82005-07-21 03:14:59 +00003338 }
drhfaacf172011-08-12 01:51:45 +00003339#ifdef SQLITE_ENABLE_STAT3
drhd663b5b2012-10-03 00:25:54 +00003340 if( pc.plan.nEq==0 && pProbe->aSample ) pFirstTerm = pTerm;
drh82759752011-01-20 16:52:09 +00003341#endif
drhd663b5b2012-10-03 00:25:54 +00003342 pc.used |= pTerm->prereqRight;
drhfe05af82005-07-21 03:14:59 +00003343 }
dan0c733f62011-11-16 15:27:09 +00003344
3345 /* If the index being considered is UNIQUE, and there is an equality
3346 ** constraint for all columns in the index, then this search will find
3347 ** at most a single row. In this case set the WHERE_UNIQUE flag to
3348 ** indicate this to the caller.
3349 **
3350 ** Otherwise, if the search may find more than one row, test to see if
drh1b8fc652013-02-07 21:15:14 +00003351 ** there is a range constraint on indexed column (pc.plan.nEq+1) that
3352 ** can be optimized using the index.
dan0c733f62011-11-16 15:27:09 +00003353 */
drhd663b5b2012-10-03 00:25:54 +00003354 if( pc.plan.nEq==pProbe->nColumn && pProbe->onError!=OE_None ){
3355 testcase( pc.plan.wsFlags & WHERE_COLUMN_IN );
3356 testcase( pc.plan.wsFlags & WHERE_COLUMN_NULL );
3357 if( (pc.plan.wsFlags & (WHERE_COLUMN_IN|WHERE_COLUMN_NULL))==0 ){
3358 pc.plan.wsFlags |= WHERE_UNIQUE;
drh60441af2012-09-29 19:10:29 +00003359 if( p->i==0 || (p->aLevel[p->i-1].plan.wsFlags & WHERE_ALL_UNIQUE)!=0 ){
drhd663b5b2012-10-03 00:25:54 +00003360 pc.plan.wsFlags |= WHERE_ALL_UNIQUE;
drh60441af2012-09-29 19:10:29 +00003361 }
dan0c733f62011-11-16 15:27:09 +00003362 }
3363 }else if( pProbe->bUnordered==0 ){
drhd663b5b2012-10-03 00:25:54 +00003364 int j;
3365 j = (pc.plan.nEq==pProbe->nColumn ? -1 : pProbe->aiColumn[pc.plan.nEq]);
drh56f1b992012-09-25 14:29:39 +00003366 if( findTerm(pWC, iCur, j, p->notReady, WO_LT|WO_LE|WO_GT|WO_GE, pIdx) ){
3367 WhereTerm *pTop, *pBtm;
3368 pTop = findTerm(pWC, iCur, j, p->notReady, WO_LT|WO_LE, pIdx);
3369 pBtm = findTerm(pWC, iCur, j, p->notReady, WO_GT|WO_GE, pIdx);
drhd663b5b2012-10-03 00:25:54 +00003370 whereRangeScanEst(pParse, pProbe, pc.plan.nEq, pBtm, pTop, &rangeDiv);
dan5236ac12009-08-13 07:09:33 +00003371 if( pTop ){
drhed754ce2010-04-15 01:04:54 +00003372 nBound = 1;
drhd663b5b2012-10-03 00:25:54 +00003373 pc.plan.wsFlags |= WHERE_TOP_LIMIT;
3374 pc.used |= pTop->prereqRight;
drh0a61df62011-10-07 17:45:58 +00003375 testcase( pTop->pWC!=pWC );
dan5236ac12009-08-13 07:09:33 +00003376 }
3377 if( pBtm ){
drhed754ce2010-04-15 01:04:54 +00003378 nBound++;
drhd663b5b2012-10-03 00:25:54 +00003379 pc.plan.wsFlags |= WHERE_BTM_LIMIT;
3380 pc.used |= pBtm->prereqRight;
drh0a61df62011-10-07 17:45:58 +00003381 testcase( pBtm->pWC!=pWC );
dan5236ac12009-08-13 07:09:33 +00003382 }
drhd663b5b2012-10-03 00:25:54 +00003383 pc.plan.wsFlags |= (WHERE_COLUMN_RANGE|WHERE_ROWID_RANGE);
dan5236ac12009-08-13 07:09:33 +00003384 }
drh943af3c2005-07-29 19:43:58 +00003385 }
drhfe05af82005-07-21 03:14:59 +00003386
dan5236ac12009-08-13 07:09:33 +00003387 /* If there is an ORDER BY clause and the index being considered will
3388 ** naturally scan rows in the required order, set the appropriate flags
drhd663b5b2012-10-03 00:25:54 +00003389 ** in pc.plan.wsFlags. Otherwise, if there is an ORDER BY clause but
3390 ** the index will scan rows in a different order, set the bSort
3391 ** variable. */
drh8e4af1b2012-10-08 18:23:51 +00003392 if( bSort && (pSrc->jointype & JT_LEFT)==0 ){
3393 int bRev = 2;
drh8a1b87c2013-03-27 15:04:28 +00003394 int bObUnique = 0;
3395 WHERETRACE((" --> before isSortIndex: nPriorSat=%d\n",nPriorSat));
3396 pc.plan.nOBSat = isSortingIndex(p, pProbe, iCur, &bRev, &bObUnique);
3397 WHERETRACE((" --> after isSortIndex: bRev=%d bObU=%d nOBSat=%d\n",
3398 bRev, bObUnique, pc.plan.nOBSat));
drh29a8bf82013-01-09 11:31:17 +00003399 if( nPriorSat<pc.plan.nOBSat || (pc.plan.wsFlags & WHERE_ALL_UNIQUE)!=0 ){
drhd663b5b2012-10-03 00:25:54 +00003400 pc.plan.wsFlags |= WHERE_ORDERED;
drh8a1b87c2013-03-27 15:04:28 +00003401 if( bObUnique ) pc.plan.wsFlags |= WHERE_OB_UNIQUE;
drh46c35f92012-09-26 23:17:01 +00003402 }
drhd663b5b2012-10-03 00:25:54 +00003403 if( nOrderBy==pc.plan.nOBSat ){
3404 bSort = 0;
3405 pc.plan.wsFlags |= WHERE_ROWID_RANGE|WHERE_COLUMN_RANGE;
3406 }
3407 if( bRev & 1 ) pc.plan.wsFlags |= WHERE_REVERSE;
dan38cc40c2011-06-30 20:17:15 +00003408 }
3409
3410 /* If there is a DISTINCT qualifier and this index will scan rows in
3411 ** order of the DISTINCT expressions, clear bDist and set the appropriate
drhd663b5b2012-10-03 00:25:54 +00003412 ** flags in pc.plan.wsFlags. */
drh9cd1c992012-09-25 20:43:35 +00003413 if( bDist
drhd663b5b2012-10-03 00:25:54 +00003414 && isDistinctIndex(pParse, pWC, pProbe, iCur, p->pDistinct, pc.plan.nEq)
3415 && (pc.plan.wsFlags & WHERE_COLUMN_IN)==0
drh7f67d942012-03-03 00:34:47 +00003416 ){
dan38cc40c2011-06-30 20:17:15 +00003417 bDist = 0;
drhd663b5b2012-10-03 00:25:54 +00003418 pc.plan.wsFlags |= WHERE_ROWID_RANGE|WHERE_COLUMN_RANGE|WHERE_DISTINCT;
drhfe05af82005-07-21 03:14:59 +00003419 }
3420
dan5236ac12009-08-13 07:09:33 +00003421 /* If currently calculating the cost of using an index (not the IPK
3422 ** index), determine if all required column data may be obtained without
drh4139c992010-04-07 14:59:45 +00003423 ** using the main table (i.e. if the index is a covering
dan5236ac12009-08-13 07:09:33 +00003424 ** index for this query). If it is, set the WHERE_IDX_ONLY flag in
drhd663b5b2012-10-03 00:25:54 +00003425 ** pc.plan.wsFlags. Otherwise, set the bLookup variable to true. */
drh3f4d1d12012-09-15 18:45:54 +00003426 if( pIdx ){
drhfe05af82005-07-21 03:14:59 +00003427 Bitmask m = pSrc->colUsed;
3428 int j;
dan5236ac12009-08-13 07:09:33 +00003429 for(j=0; j<pIdx->nColumn; j++){
3430 int x = pIdx->aiColumn[j];
drhfe05af82005-07-21 03:14:59 +00003431 if( x<BMS-1 ){
3432 m &= ~(((Bitmask)1)<<x);
3433 }
3434 }
3435 if( m==0 ){
drhd663b5b2012-10-03 00:25:54 +00003436 pc.plan.wsFlags |= WHERE_IDX_ONLY;
dan5236ac12009-08-13 07:09:33 +00003437 }else{
3438 bLookup = 1;
drhfe05af82005-07-21 03:14:59 +00003439 }
3440 }
3441
drh1e0f4a82010-04-14 19:01:44 +00003442 /*
drh9b3eb0a2011-01-21 14:37:04 +00003443 ** Estimate the number of rows of output. For an "x IN (SELECT...)"
3444 ** constraint, do not let the estimate exceed half the rows in the table.
drhcdaca552009-08-20 13:45:07 +00003445 */
drhd663b5b2012-10-03 00:25:54 +00003446 pc.plan.nRow = (double)(aiRowEst[pc.plan.nEq] * nInMul);
3447 if( bInEst && pc.plan.nRow*2>aiRowEst[0] ){
3448 pc.plan.nRow = aiRowEst[0]/2;
3449 nInMul = (int)(pc.plan.nRow / aiRowEst[pc.plan.nEq]);
dan5236ac12009-08-13 07:09:33 +00003450 }
drhcdaca552009-08-20 13:45:07 +00003451
drhfaacf172011-08-12 01:51:45 +00003452#ifdef SQLITE_ENABLE_STAT3
drhbf4ec552011-07-13 18:31:10 +00003453 /* If the constraint is of the form x=VALUE or x IN (E1,E2,...)
3454 ** and we do not think that values of x are unique and if histogram
drh82759752011-01-20 16:52:09 +00003455 ** data is available for column x, then it might be possible
3456 ** to get a better estimate on the number of rows based on
3457 ** VALUE and how common that value is according to the histogram.
3458 */
drhd663b5b2012-10-03 00:25:54 +00003459 if( pc.plan.nRow>(double)1 && pc.plan.nEq==1
3460 && pFirstTerm!=0 && aiRowEst[1]>1 ){
drh567211e2011-09-23 13:59:33 +00003461 assert( (pFirstTerm->eOperator & (WO_EQ|WO_ISNULL|WO_IN))!=0 );
drh1f9c7662011-03-17 01:34:26 +00003462 if( pFirstTerm->eOperator & (WO_EQ|WO_ISNULL) ){
drh7a5bcc02013-01-16 17:08:58 +00003463 testcase( pFirstTerm->eOperator & WO_EQ );
3464 testcase( pFirstTerm->eOperator & WO_EQUIV );
3465 testcase( pFirstTerm->eOperator & WO_ISNULL );
drhd663b5b2012-10-03 00:25:54 +00003466 whereEqualScanEst(pParse, pProbe, pFirstTerm->pExpr->pRight,
3467 &pc.plan.nRow);
drh567211e2011-09-23 13:59:33 +00003468 }else if( bInEst==0 ){
drh7a5bcc02013-01-16 17:08:58 +00003469 assert( pFirstTerm->eOperator & WO_IN );
drhd663b5b2012-10-03 00:25:54 +00003470 whereInScanEst(pParse, pProbe, pFirstTerm->pExpr->x.pList,
3471 &pc.plan.nRow);
drh0c50fa02011-01-21 16:27:18 +00003472 }
drh82759752011-01-20 16:52:09 +00003473 }
drhfaacf172011-08-12 01:51:45 +00003474#endif /* SQLITE_ENABLE_STAT3 */
drh82759752011-01-20 16:52:09 +00003475
drh37722062011-02-10 00:08:47 +00003476 /* Adjust the number of output rows and downward to reflect rows
drhcdaca552009-08-20 13:45:07 +00003477 ** that are excluded by range constraints.
3478 */
drhd663b5b2012-10-03 00:25:54 +00003479 pc.plan.nRow = pc.plan.nRow/rangeDiv;
3480 if( pc.plan.nRow<1 ) pc.plan.nRow = 1;
drhcdaca552009-08-20 13:45:07 +00003481
drh37722062011-02-10 00:08:47 +00003482 /* Experiments run on real SQLite databases show that the time needed
3483 ** to do a binary search to locate a row in a table or index is roughly
3484 ** log10(N) times the time to move from one row to the next row within
3485 ** a table or index. The actual times can vary, with the size of
3486 ** records being an important factor. Both moves and searches are
3487 ** slower with larger records, presumably because fewer records fit
3488 ** on one page and hence more pages have to be fetched.
drh083310d2011-01-28 01:57:41 +00003489 **
drh74e7c8f2011-10-21 19:06:32 +00003490 ** The ANALYZE command and the sqlite_stat1 and sqlite_stat3 tables do
drh37722062011-02-10 00:08:47 +00003491 ** not give us data on the relative sizes of table and index records.
3492 ** So this computation assumes table records are about twice as big
3493 ** as index records
drhb9661942011-01-24 15:11:23 +00003494 */
drh2b6c8742013-03-27 16:05:30 +00003495 if( (pc.plan.wsFlags&~(WHERE_REVERSE|WHERE_ORDERED|WHERE_OB_UNIQUE))
3496 ==WHERE_IDX_ONLY
drh3f4d1d12012-09-15 18:45:54 +00003497 && (pWC->wctrlFlags & WHERE_ONEPASS_DESIRED)==0
drhde9a7b82012-09-17 20:44:46 +00003498 && sqlite3GlobalConfig.bUseCis
drh7e5418e2012-09-27 15:05:54 +00003499 && OptimizationEnabled(pParse->db, SQLITE_CoverIdxScan)
drh3f4d1d12012-09-15 18:45:54 +00003500 ){
3501 /* This index is not useful for indexing, but it is a covering index.
3502 ** A full-scan of the index might be a little faster than a full-scan
3503 ** of the table, so give this case a cost slightly less than a table
3504 ** scan. */
drhd663b5b2012-10-03 00:25:54 +00003505 pc.rCost = aiRowEst[0]*3 + pProbe->nColumn;
3506 pc.plan.wsFlags |= WHERE_COVER_SCAN|WHERE_COLUMN_RANGE;
3507 }else if( (pc.plan.wsFlags & WHERE_NOT_FULLSCAN)==0 ){
drh37722062011-02-10 00:08:47 +00003508 /* The cost of a full table scan is a number of move operations equal
3509 ** to the number of rows in the table.
3510 **
3511 ** We add an additional 4x penalty to full table scans. This causes
3512 ** the cost function to err on the side of choosing an index over
3513 ** choosing a full scan. This 4x full-scan penalty is an arguable
3514 ** decision and one which we expect to revisit in the future. But
3515 ** it seems to be working well enough at the moment.
drh083310d2011-01-28 01:57:41 +00003516 */
drhd663b5b2012-10-03 00:25:54 +00003517 pc.rCost = aiRowEst[0]*4;
3518 pc.plan.wsFlags &= ~WHERE_IDX_ONLY;
drh8e4af1b2012-10-08 18:23:51 +00003519 if( pIdx ){
3520 pc.plan.wsFlags &= ~WHERE_ORDERED;
3521 pc.plan.nOBSat = nPriorSat;
3522 }
drh37722062011-02-10 00:08:47 +00003523 }else{
3524 log10N = estLog(aiRowEst[0]);
drhd663b5b2012-10-03 00:25:54 +00003525 pc.rCost = pc.plan.nRow;
drh37722062011-02-10 00:08:47 +00003526 if( pIdx ){
3527 if( bLookup ){
3528 /* For an index lookup followed by a table lookup:
3529 ** nInMul index searches to find the start of each index range
3530 ** + nRow steps through the index
3531 ** + nRow table searches to lookup the table entry using the rowid
3532 */
drhd663b5b2012-10-03 00:25:54 +00003533 pc.rCost += (nInMul + pc.plan.nRow)*log10N;
drh37722062011-02-10 00:08:47 +00003534 }else{
3535 /* For a covering index:
3536 ** nInMul index searches to find the initial entry
3537 ** + nRow steps through the index
3538 */
drhd663b5b2012-10-03 00:25:54 +00003539 pc.rCost += nInMul*log10N;
drh37722062011-02-10 00:08:47 +00003540 }
3541 }else{
3542 /* For a rowid primary key lookup:
3543 ** nInMult table searches to find the initial entry for each range
3544 ** + nRow steps through the table
3545 */
drhd663b5b2012-10-03 00:25:54 +00003546 pc.rCost += nInMul*log10N;
drh37722062011-02-10 00:08:47 +00003547 }
drhb9661942011-01-24 15:11:23 +00003548 }
3549
drh37722062011-02-10 00:08:47 +00003550 /* Add in the estimated cost of sorting the result. Actual experimental
3551 ** measurements of sorting performance in SQLite show that sorting time
3552 ** adds C*N*log10(N) to the cost, where N is the number of rows to be
3553 ** sorted and C is a factor between 1.95 and 4.3. We will split the
3554 ** difference and select C of 3.0.
drhcdaca552009-08-20 13:45:07 +00003555 */
dan5236ac12009-08-13 07:09:33 +00003556 if( bSort ){
drhd663b5b2012-10-03 00:25:54 +00003557 double m = estLog(pc.plan.nRow*(nOrderBy - pc.plan.nOBSat)/nOrderBy);
3558 m *= (double)(pc.plan.nOBSat ? 2 : 3);
3559 pc.rCost += pc.plan.nRow*m;
dan5236ac12009-08-13 07:09:33 +00003560 }
dan38cc40c2011-06-30 20:17:15 +00003561 if( bDist ){
drhd663b5b2012-10-03 00:25:54 +00003562 pc.rCost += pc.plan.nRow*estLog(pc.plan.nRow)*3;
dan38cc40c2011-06-30 20:17:15 +00003563 }
drhcdaca552009-08-20 13:45:07 +00003564
drhcdaca552009-08-20 13:45:07 +00003565 /**** Cost of using this index has now been computed ****/
dan5236ac12009-08-13 07:09:33 +00003566
drh1e0f4a82010-04-14 19:01:44 +00003567 /* If there are additional constraints on this table that cannot
3568 ** be used with the current index, but which might lower the number
3569 ** of output rows, adjust the nRow value accordingly. This only
3570 ** matters if the current index is the least costly, so do not bother
3571 ** with this step if we already know this index will not be chosen.
drhed754ce2010-04-15 01:04:54 +00003572 ** Also, never reduce the output row count below 2 using this step.
drhed808ac2010-04-15 13:29:37 +00003573 **
drh547caad2010-10-04 23:55:50 +00003574 ** It is critical that the notValid mask be used here instead of
3575 ** the notReady mask. When computing an "optimal" index, the notReady
3576 ** mask will only have one bit set - the bit for the current table.
3577 ** The notValid mask, on the other hand, always has all bits set for
3578 ** tables that are not in outer loops. If notReady is used here instead
3579 ** of notValid, then a optimal index that depends on inner joins loops
3580 ** might be selected even when there exists an optimal index that has
3581 ** no such dependency.
drh1e0f4a82010-04-14 19:01:44 +00003582 */
drhd663b5b2012-10-03 00:25:54 +00003583 if( pc.plan.nRow>2 && pc.rCost<=p->cost.rCost ){
drhed808ac2010-04-15 13:29:37 +00003584 int k; /* Loop counter */
drhd663b5b2012-10-03 00:25:54 +00003585 int nSkipEq = pc.plan.nEq; /* Number of == constraints to skip */
drhed808ac2010-04-15 13:29:37 +00003586 int nSkipRange = nBound; /* Number of < constraints to skip */
3587 Bitmask thisTab; /* Bitmap for pSrc */
3588
3589 thisTab = getMask(pWC->pMaskSet, iCur);
drhd663b5b2012-10-03 00:25:54 +00003590 for(pTerm=pWC->a, k=pWC->nTerm; pc.plan.nRow>2 && k; k--, pTerm++){
drh534230c2011-01-22 00:10:45 +00003591 if( pTerm->wtFlags & TERM_VIRTUAL ) continue;
drh56f1b992012-09-25 14:29:39 +00003592 if( (pTerm->prereqAll & p->notValid)!=thisTab ) continue;
drh1e0f4a82010-04-14 19:01:44 +00003593 if( pTerm->eOperator & (WO_EQ|WO_IN|WO_ISNULL) ){
drhed754ce2010-04-15 01:04:54 +00003594 if( nSkipEq ){
drhd663b5b2012-10-03 00:25:54 +00003595 /* Ignore the first pc.plan.nEq equality matches since the index
drh1e0f4a82010-04-14 19:01:44 +00003596 ** has already accounted for these */
drhed754ce2010-04-15 01:04:54 +00003597 nSkipEq--;
drh1e0f4a82010-04-14 19:01:44 +00003598 }else{
3599 /* Assume each additional equality match reduces the result
3600 ** set size by a factor of 10 */
drhd663b5b2012-10-03 00:25:54 +00003601 pc.plan.nRow /= 10;
drh1e0f4a82010-04-14 19:01:44 +00003602 }
drhed754ce2010-04-15 01:04:54 +00003603 }else if( pTerm->eOperator & (WO_LT|WO_LE|WO_GT|WO_GE) ){
3604 if( nSkipRange ){
drh5ac06072011-01-21 18:18:13 +00003605 /* Ignore the first nSkipRange range constraints since the index
drhed754ce2010-04-15 01:04:54 +00003606 ** has already accounted for these */
3607 nSkipRange--;
3608 }else{
3609 /* Assume each additional range constraint reduces the result
drh083310d2011-01-28 01:57:41 +00003610 ** set size by a factor of 3. Indexed range constraints reduce
3611 ** the search space by a larger factor: 4. We make indexed range
3612 ** more selective intentionally because of the subjective
3613 ** observation that indexed range constraints really are more
3614 ** selective in practice, on average. */
drhd663b5b2012-10-03 00:25:54 +00003615 pc.plan.nRow /= 3;
drhed754ce2010-04-15 01:04:54 +00003616 }
drh7a5bcc02013-01-16 17:08:58 +00003617 }else if( (pTerm->eOperator & WO_NOOP)==0 ){
drh1e0f4a82010-04-14 19:01:44 +00003618 /* Any other expression lowers the output row count by half */
drhd663b5b2012-10-03 00:25:54 +00003619 pc.plan.nRow /= 2;
drh1e0f4a82010-04-14 19:01:44 +00003620 }
3621 }
drhd663b5b2012-10-03 00:25:54 +00003622 if( pc.plan.nRow<2 ) pc.plan.nRow = 2;
drh1e0f4a82010-04-14 19:01:44 +00003623 }
3624
3625
dan5236ac12009-08-13 07:09:33 +00003626 WHERETRACE((
drh8e4af1b2012-10-08 18:23:51 +00003627 " nEq=%d nInMul=%d rangeDiv=%d bSort=%d bLookup=%d wsFlags=0x%08x\n"
3628 " notReady=0x%llx log10N=%.1f nRow=%.1f cost=%.1f\n"
3629 " used=0x%llx nOBSat=%d\n",
drhd663b5b2012-10-03 00:25:54 +00003630 pc.plan.nEq, nInMul, (int)rangeDiv, bSort, bLookup, pc.plan.wsFlags,
drh4f68d6c2012-10-04 12:10:25 +00003631 p->notReady, log10N, pc.plan.nRow, pc.rCost, pc.used,
drhd663b5b2012-10-03 00:25:54 +00003632 pc.plan.nOBSat
dan5236ac12009-08-13 07:09:33 +00003633 ));
3634
drhcdaca552009-08-20 13:45:07 +00003635 /* If this index is the best we have seen so far, then record this
drhd663b5b2012-10-03 00:25:54 +00003636 ** index and its cost in the p->cost structure.
drhcdaca552009-08-20 13:45:07 +00003637 */
drhd663b5b2012-10-03 00:25:54 +00003638 if( (!pIdx || pc.plan.wsFlags) && compareCost(&pc, &p->cost) ){
3639 p->cost = pc;
3640 p->cost.plan.wsFlags &= wsFlagMask;
drh56f1b992012-09-25 14:29:39 +00003641 p->cost.plan.u.pIdx = pIdx;
drhfe05af82005-07-21 03:14:59 +00003642 }
dan5236ac12009-08-13 07:09:33 +00003643
drhcdaca552009-08-20 13:45:07 +00003644 /* If there was an INDEXED BY clause, then only that one index is
3645 ** considered. */
dan5236ac12009-08-13 07:09:33 +00003646 if( pSrc->pIndex ) break;
drhcdaca552009-08-20 13:45:07 +00003647
3648 /* Reset masks for the next index in the loop */
dan5236ac12009-08-13 07:09:33 +00003649 wsFlagMask = ~(WHERE_ROWID_EQ|WHERE_ROWID_RANGE);
3650 eqTermMask = idxEqTermMask;
drhfe05af82005-07-21 03:14:59 +00003651 }
3652
dan5236ac12009-08-13 07:09:33 +00003653 /* If there is no ORDER BY clause and the SQLITE_ReverseOrder flag
3654 ** is set, then reverse the order that the index will be scanned
3655 ** in. This is used for application testing, to help find cases
mistachkin48864df2013-03-21 21:20:32 +00003656 ** where application behavior depends on the (undefined) order that
dan5236ac12009-08-13 07:09:33 +00003657 ** SQLite outputs rows in in the absence of an ORDER BY clause. */
drh56f1b992012-09-25 14:29:39 +00003658 if( !p->pOrderBy && pParse->db->flags & SQLITE_ReverseOrder ){
3659 p->cost.plan.wsFlags |= WHERE_REVERSE;
dan5236ac12009-08-13 07:09:33 +00003660 }
3661
drhd663b5b2012-10-03 00:25:54 +00003662 assert( p->pOrderBy || (p->cost.plan.wsFlags&WHERE_ORDERED)==0 );
drh56f1b992012-09-25 14:29:39 +00003663 assert( p->cost.plan.u.pIdx==0 || (p->cost.plan.wsFlags&WHERE_ROWID_EQ)==0 );
dan5236ac12009-08-13 07:09:33 +00003664 assert( pSrc->pIndex==0
drh56f1b992012-09-25 14:29:39 +00003665 || p->cost.plan.u.pIdx==0
3666 || p->cost.plan.u.pIdx==pSrc->pIndex
dan5236ac12009-08-13 07:09:33 +00003667 );
3668
drhea84a652013-01-15 18:49:07 +00003669 WHERETRACE((" best index is %s cost=%.1f\n",
3670 p->cost.plan.u.pIdx ? p->cost.plan.u.pIdx->zName : "ipk",
3671 p->cost.rCost));
dan5236ac12009-08-13 07:09:33 +00003672
drh56f1b992012-09-25 14:29:39 +00003673 bestOrClauseIndex(p);
3674 bestAutomaticIndex(p);
3675 p->cost.plan.wsFlags |= eqTermMask;
drhfe05af82005-07-21 03:14:59 +00003676}
3677
danielk19771d461462009-04-21 09:02:45 +00003678/*
3679** Find the query plan for accessing table pSrc->pTab. Write the
3680** best query plan and its cost into the WhereCost object supplied
3681** as the last parameter. This function may calculate the cost of
3682** both real and virtual table scans.
drh4d85fa72012-09-24 19:50:00 +00003683**
3684** This function does not take ORDER BY or DISTINCT into account. Nor
3685** does it remember the virtual table query plan. All it does is compute
3686** the cost while determining if an OR optimization is applicable. The
3687** details will be reconsidered later if the optimization is found to be
3688** applicable.
danielk19771d461462009-04-21 09:02:45 +00003689*/
drh56f1b992012-09-25 14:29:39 +00003690static void bestIndex(WhereBestIdx *p){
shanee26fa4c2009-06-16 14:15:22 +00003691#ifndef SQLITE_OMIT_VIRTUALTABLE
drh56f1b992012-09-25 14:29:39 +00003692 if( IsVirtual(p->pSrc->pTab) ){
3693 sqlite3_index_info *pIdxInfo = 0;
3694 p->ppIdxInfo = &pIdxInfo;
3695 bestVirtualIndex(p);
drh5edf8432013-02-08 23:18:18 +00003696 assert( pIdxInfo!=0 || p->pParse->db->mallocFailed );
3697 if( pIdxInfo && pIdxInfo->needToFreeIdxStr ){
drh56f1b992012-09-25 14:29:39 +00003698 sqlite3_free(pIdxInfo->idxStr);
danielk19771d461462009-04-21 09:02:45 +00003699 }
drh56f1b992012-09-25 14:29:39 +00003700 sqlite3DbFree(p->pParse->db, pIdxInfo);
shanee26fa4c2009-06-16 14:15:22 +00003701 }else
3702#endif
3703 {
drh56f1b992012-09-25 14:29:39 +00003704 bestBtreeIndex(p);
danielk19771d461462009-04-21 09:02:45 +00003705 }
3706}
drhb6c29892004-11-22 19:12:19 +00003707
3708/*
drh2ffb1182004-07-19 19:14:01 +00003709** Disable a term in the WHERE clause. Except, do not disable the term
3710** if it controls a LEFT OUTER JOIN and it did not originate in the ON
3711** or USING clause of that join.
3712**
3713** Consider the term t2.z='ok' in the following queries:
3714**
3715** (1) SELECT * FROM t1 LEFT JOIN t2 ON t1.a=t2.x WHERE t2.z='ok'
3716** (2) SELECT * FROM t1 LEFT JOIN t2 ON t1.a=t2.x AND t2.z='ok'
3717** (3) SELECT * FROM t1, t2 WHERE t1.a=t2.x AND t2.z='ok'
3718**
drh23bf66d2004-12-14 03:34:34 +00003719** The t2.z='ok' is disabled in the in (2) because it originates
drh2ffb1182004-07-19 19:14:01 +00003720** in the ON clause. The term is disabled in (3) because it is not part
3721** of a LEFT OUTER JOIN. In (1), the term is not disabled.
3722**
drhe9cdcea2010-07-22 22:40:03 +00003723** IMPLEMENTATION-OF: R-24597-58655 No tests are done for terms that are
3724** completely satisfied by indices.
3725**
drh2ffb1182004-07-19 19:14:01 +00003726** Disabling a term causes that term to not be tested in the inner loop
drhb6fb62d2005-09-20 08:47:20 +00003727** of the join. Disabling is an optimization. When terms are satisfied
3728** by indices, we disable them to prevent redundant tests in the inner
3729** loop. We would get the correct results if nothing were ever disabled,
3730** but joins might run a little slower. The trick is to disable as much
3731** as we can without disabling too much. If we disabled in (1), we'd get
3732** the wrong answer. See ticket #813.
drh2ffb1182004-07-19 19:14:01 +00003733*/
drh0fcef5e2005-07-19 17:38:22 +00003734static void disableTerm(WhereLevel *pLevel, WhereTerm *pTerm){
3735 if( pTerm
drhbe837bd2010-04-30 21:03:24 +00003736 && (pTerm->wtFlags & TERM_CODED)==0
drh0fcef5e2005-07-19 17:38:22 +00003737 && (pLevel->iLeftJoin==0 || ExprHasProperty(pTerm->pExpr, EP_FromJoin))
3738 ){
drh165be382008-12-05 02:36:33 +00003739 pTerm->wtFlags |= TERM_CODED;
drh45b1ee42005-08-02 17:48:22 +00003740 if( pTerm->iParent>=0 ){
3741 WhereTerm *pOther = &pTerm->pWC->a[pTerm->iParent];
3742 if( (--pOther->nChild)==0 ){
drhed378002005-07-28 23:12:08 +00003743 disableTerm(pLevel, pOther);
3744 }
drh0fcef5e2005-07-19 17:38:22 +00003745 }
drh2ffb1182004-07-19 19:14:01 +00003746 }
3747}
3748
3749/*
dan69f8bb92009-08-13 19:21:16 +00003750** Code an OP_Affinity opcode to apply the column affinity string zAff
3751** to the n registers starting at base.
3752**
drh039fc322009-11-17 18:31:47 +00003753** As an optimization, SQLITE_AFF_NONE entries (which are no-ops) at the
3754** beginning and end of zAff are ignored. If all entries in zAff are
3755** SQLITE_AFF_NONE, then no code gets generated.
3756**
3757** This routine makes its own copy of zAff so that the caller is free
3758** to modify zAff after this routine returns.
drh94a11212004-09-25 13:12:14 +00003759*/
dan69f8bb92009-08-13 19:21:16 +00003760static void codeApplyAffinity(Parse *pParse, int base, int n, char *zAff){
3761 Vdbe *v = pParse->pVdbe;
drh039fc322009-11-17 18:31:47 +00003762 if( zAff==0 ){
3763 assert( pParse->db->mallocFailed );
3764 return;
3765 }
dan69f8bb92009-08-13 19:21:16 +00003766 assert( v!=0 );
drh039fc322009-11-17 18:31:47 +00003767
3768 /* Adjust base and n to skip over SQLITE_AFF_NONE entries at the beginning
3769 ** and end of the affinity string.
3770 */
3771 while( n>0 && zAff[0]==SQLITE_AFF_NONE ){
3772 n--;
3773 base++;
3774 zAff++;
3775 }
3776 while( n>1 && zAff[n-1]==SQLITE_AFF_NONE ){
3777 n--;
3778 }
3779
3780 /* Code the OP_Affinity opcode if there is anything left to do. */
3781 if( n>0 ){
3782 sqlite3VdbeAddOp2(v, OP_Affinity, base, n);
3783 sqlite3VdbeChangeP4(v, -1, zAff, n);
3784 sqlite3ExprCacheAffinityChange(pParse, base, n);
3785 }
drh94a11212004-09-25 13:12:14 +00003786}
3787
drhe8b97272005-07-19 22:22:12 +00003788
3789/*
drh51147ba2005-07-23 22:59:55 +00003790** Generate code for a single equality term of the WHERE clause. An equality
3791** term can be either X=expr or X IN (...). pTerm is the term to be
3792** coded.
3793**
drh1db639c2008-01-17 02:36:28 +00003794** The current value for the constraint is left in register iReg.
drh51147ba2005-07-23 22:59:55 +00003795**
3796** For a constraint of the form X=expr, the expression is evaluated and its
3797** result is left on the stack. For constraints of the form X IN (...)
3798** this routine sets up a loop that will iterate over all values of X.
drh94a11212004-09-25 13:12:14 +00003799*/
drh678ccce2008-03-31 18:19:54 +00003800static int codeEqualityTerm(
drh94a11212004-09-25 13:12:14 +00003801 Parse *pParse, /* The parsing context */
drhe23399f2005-07-22 00:31:39 +00003802 WhereTerm *pTerm, /* The term of the WHERE clause to be coded */
drh0fe456b2013-03-12 18:34:50 +00003803 WhereLevel *pLevel, /* The level of the FROM clause we are working on */
3804 int iEq, /* Index of the equality term within this level */
drh678ccce2008-03-31 18:19:54 +00003805 int iTarget /* Attempt to leave results in this register */
drh94a11212004-09-25 13:12:14 +00003806){
drh0fcef5e2005-07-19 17:38:22 +00003807 Expr *pX = pTerm->pExpr;
drh50b39962006-10-28 00:28:09 +00003808 Vdbe *v = pParse->pVdbe;
drh678ccce2008-03-31 18:19:54 +00003809 int iReg; /* Register holding results */
drh1db639c2008-01-17 02:36:28 +00003810
danielk19772d605492008-10-01 08:43:03 +00003811 assert( iTarget>0 );
drh50b39962006-10-28 00:28:09 +00003812 if( pX->op==TK_EQ ){
drh678ccce2008-03-31 18:19:54 +00003813 iReg = sqlite3ExprCodeTarget(pParse, pX->pRight, iTarget);
drh50b39962006-10-28 00:28:09 +00003814 }else if( pX->op==TK_ISNULL ){
drh678ccce2008-03-31 18:19:54 +00003815 iReg = iTarget;
drh1db639c2008-01-17 02:36:28 +00003816 sqlite3VdbeAddOp2(v, OP_Null, 0, iReg);
danielk1977b3bce662005-01-29 08:32:43 +00003817#ifndef SQLITE_OMIT_SUBQUERY
drh94a11212004-09-25 13:12:14 +00003818 }else{
danielk19779a96b662007-11-29 17:05:18 +00003819 int eType;
danielk1977b3bce662005-01-29 08:32:43 +00003820 int iTab;
drh72e8fa42007-03-28 14:30:06 +00003821 struct InLoop *pIn;
drhd3832162013-03-12 18:49:25 +00003822 u8 bRev = (pLevel->plan.wsFlags & WHERE_REVERSE)!=0;
danielk1977b3bce662005-01-29 08:32:43 +00003823
drhd3832162013-03-12 18:49:25 +00003824 if( (pLevel->plan.wsFlags & WHERE_INDEXED)!=0
3825 && pLevel->plan.u.pIdx->aSortOrder[iEq]
3826 ){
drh725e1ae2013-03-12 23:58:42 +00003827 testcase( iEq==0 );
3828 testcase( iEq==pLevel->plan.u.pIdx->nColumn-1 );
3829 testcase( iEq>0 && iEq+1<pLevel->plan.u.pIdx->nColumn );
3830 testcase( bRev );
drh1ccce442013-03-12 20:38:51 +00003831 bRev = !bRev;
drh0fe456b2013-03-12 18:34:50 +00003832 }
drh50b39962006-10-28 00:28:09 +00003833 assert( pX->op==TK_IN );
drh678ccce2008-03-31 18:19:54 +00003834 iReg = iTarget;
danielk19770cdc0222008-06-26 18:04:03 +00003835 eType = sqlite3FindInIndex(pParse, pX, 0);
drh725e1ae2013-03-12 23:58:42 +00003836 if( eType==IN_INDEX_INDEX_DESC ){
3837 testcase( bRev );
3838 bRev = !bRev;
3839 }
danielk1977b3bce662005-01-29 08:32:43 +00003840 iTab = pX->iTable;
drh2d96b932013-02-08 18:48:23 +00003841 sqlite3VdbeAddOp2(v, bRev ? OP_Last : OP_Rewind, iTab, 0);
drh111a6a72008-12-21 03:51:16 +00003842 assert( pLevel->plan.wsFlags & WHERE_IN_ABLE );
3843 if( pLevel->u.in.nIn==0 ){
drhb3190c12008-12-08 21:37:14 +00003844 pLevel->addrNxt = sqlite3VdbeMakeLabel(v);
drh72e8fa42007-03-28 14:30:06 +00003845 }
drh111a6a72008-12-21 03:51:16 +00003846 pLevel->u.in.nIn++;
3847 pLevel->u.in.aInLoop =
3848 sqlite3DbReallocOrFree(pParse->db, pLevel->u.in.aInLoop,
3849 sizeof(pLevel->u.in.aInLoop[0])*pLevel->u.in.nIn);
3850 pIn = pLevel->u.in.aInLoop;
drh72e8fa42007-03-28 14:30:06 +00003851 if( pIn ){
drh111a6a72008-12-21 03:51:16 +00003852 pIn += pLevel->u.in.nIn - 1;
drh72e8fa42007-03-28 14:30:06 +00003853 pIn->iCur = iTab;
drh1db639c2008-01-17 02:36:28 +00003854 if( eType==IN_INDEX_ROWID ){
drhb3190c12008-12-08 21:37:14 +00003855 pIn->addrInTop = sqlite3VdbeAddOp2(v, OP_Rowid, iTab, iReg);
drh1db639c2008-01-17 02:36:28 +00003856 }else{
drhb3190c12008-12-08 21:37:14 +00003857 pIn->addrInTop = sqlite3VdbeAddOp3(v, OP_Column, iTab, 0, iReg);
drh1db639c2008-01-17 02:36:28 +00003858 }
drh2d96b932013-02-08 18:48:23 +00003859 pIn->eEndLoopOp = bRev ? OP_Prev : OP_Next;
drh1db639c2008-01-17 02:36:28 +00003860 sqlite3VdbeAddOp1(v, OP_IsNull, iReg);
drha6110402005-07-28 20:51:19 +00003861 }else{
drh111a6a72008-12-21 03:51:16 +00003862 pLevel->u.in.nIn = 0;
drhe23399f2005-07-22 00:31:39 +00003863 }
danielk1977b3bce662005-01-29 08:32:43 +00003864#endif
drh94a11212004-09-25 13:12:14 +00003865 }
drh0fcef5e2005-07-19 17:38:22 +00003866 disableTerm(pLevel, pTerm);
drh678ccce2008-03-31 18:19:54 +00003867 return iReg;
drh94a11212004-09-25 13:12:14 +00003868}
3869
drh51147ba2005-07-23 22:59:55 +00003870/*
3871** Generate code that will evaluate all == and IN constraints for an
drh039fc322009-11-17 18:31:47 +00003872** index.
drh51147ba2005-07-23 22:59:55 +00003873**
3874** For example, consider table t1(a,b,c,d,e,f) with index i1(a,b,c).
3875** Suppose the WHERE clause is this: a==5 AND b IN (1,2,3) AND c>5 AND c<10
3876** The index has as many as three equality constraints, but in this
3877** example, the third "c" value is an inequality. So only two
3878** constraints are coded. This routine will generate code to evaluate
drh6df2acd2008-12-28 16:55:25 +00003879** a==5 and b IN (1,2,3). The current values for a and b will be stored
3880** in consecutive registers and the index of the first register is returned.
drh51147ba2005-07-23 22:59:55 +00003881**
3882** In the example above nEq==2. But this subroutine works for any value
3883** of nEq including 0. If nEq==0, this routine is nearly a no-op.
drh039fc322009-11-17 18:31:47 +00003884** The only thing it does is allocate the pLevel->iMem memory cell and
3885** compute the affinity string.
drh51147ba2005-07-23 22:59:55 +00003886**
drh700a2262008-12-17 19:22:15 +00003887** This routine always allocates at least one memory cell and returns
3888** the index of that memory cell. The code that
3889** calls this routine will use that memory cell to store the termination
drh51147ba2005-07-23 22:59:55 +00003890** key value of the loop. If one or more IN operators appear, then
3891** this routine allocates an additional nEq memory cells for internal
3892** use.
dan69f8bb92009-08-13 19:21:16 +00003893**
3894** Before returning, *pzAff is set to point to a buffer containing a
3895** copy of the column affinity string of the index allocated using
3896** sqlite3DbMalloc(). Except, entries in the copy of the string associated
3897** with equality constraints that use NONE affinity are set to
3898** SQLITE_AFF_NONE. This is to deal with SQL such as the following:
3899**
3900** CREATE TABLE t1(a TEXT PRIMARY KEY, b);
3901** SELECT ... FROM t1 AS t2, t1 WHERE t1.a = t2.b;
3902**
3903** In the example above, the index on t1(a) has TEXT affinity. But since
3904** the right hand side of the equality constraint (t2.b) has NONE affinity,
3905** no conversion should be attempted before using a t2.b value as part of
3906** a key to search the index. Hence the first byte in the returned affinity
3907** string in this example would be set to SQLITE_AFF_NONE.
drh51147ba2005-07-23 22:59:55 +00003908*/
drh1db639c2008-01-17 02:36:28 +00003909static int codeAllEqualityTerms(
drh51147ba2005-07-23 22:59:55 +00003910 Parse *pParse, /* Parsing context */
3911 WhereLevel *pLevel, /* Which nested loop of the FROM we are coding */
3912 WhereClause *pWC, /* The WHERE clause */
drh1db639c2008-01-17 02:36:28 +00003913 Bitmask notReady, /* Which parts of FROM have not yet been coded */
dan69f8bb92009-08-13 19:21:16 +00003914 int nExtraReg, /* Number of extra registers to allocate */
3915 char **pzAff /* OUT: Set to point to affinity string */
drh51147ba2005-07-23 22:59:55 +00003916){
drh111a6a72008-12-21 03:51:16 +00003917 int nEq = pLevel->plan.nEq; /* The number of == or IN constraints to code */
3918 Vdbe *v = pParse->pVdbe; /* The vm under construction */
3919 Index *pIdx; /* The index being used for this loop */
drh51147ba2005-07-23 22:59:55 +00003920 int iCur = pLevel->iTabCur; /* The cursor of the table */
3921 WhereTerm *pTerm; /* A single constraint term */
3922 int j; /* Loop counter */
drh1db639c2008-01-17 02:36:28 +00003923 int regBase; /* Base register */
drh6df2acd2008-12-28 16:55:25 +00003924 int nReg; /* Number of registers to allocate */
dan69f8bb92009-08-13 19:21:16 +00003925 char *zAff; /* Affinity string to return */
drh51147ba2005-07-23 22:59:55 +00003926
drh111a6a72008-12-21 03:51:16 +00003927 /* This module is only called on query plans that use an index. */
3928 assert( pLevel->plan.wsFlags & WHERE_INDEXED );
3929 pIdx = pLevel->plan.u.pIdx;
3930
drh51147ba2005-07-23 22:59:55 +00003931 /* Figure out how many memory cells we will need then allocate them.
drh51147ba2005-07-23 22:59:55 +00003932 */
drh700a2262008-12-17 19:22:15 +00003933 regBase = pParse->nMem + 1;
drh6df2acd2008-12-28 16:55:25 +00003934 nReg = pLevel->plan.nEq + nExtraReg;
3935 pParse->nMem += nReg;
drh51147ba2005-07-23 22:59:55 +00003936
dan69f8bb92009-08-13 19:21:16 +00003937 zAff = sqlite3DbStrDup(pParse->db, sqlite3IndexAffinityStr(v, pIdx));
3938 if( !zAff ){
3939 pParse->db->mallocFailed = 1;
3940 }
3941
drh51147ba2005-07-23 22:59:55 +00003942 /* Evaluate the equality constraints
3943 */
drhc49de5d2007-01-19 01:06:01 +00003944 assert( pIdx->nColumn>=nEq );
3945 for(j=0; j<nEq; j++){
drh678ccce2008-03-31 18:19:54 +00003946 int r1;
drh51147ba2005-07-23 22:59:55 +00003947 int k = pIdx->aiColumn[j];
drh111a6a72008-12-21 03:51:16 +00003948 pTerm = findTerm(pWC, iCur, k, notReady, pLevel->plan.wsFlags, pIdx);
drh7b36ba32012-08-24 21:54:11 +00003949 if( pTerm==0 ) break;
drhbe837bd2010-04-30 21:03:24 +00003950 /* The following true for indices with redundant columns.
3951 ** Ex: CREATE INDEX i1 ON t1(a,b,a); SELECT * FROM t1 WHERE a=0 AND b=0; */
3952 testcase( (pTerm->wtFlags & TERM_CODED)!=0 );
drhe9cdcea2010-07-22 22:40:03 +00003953 testcase( pTerm->wtFlags & TERM_VIRTUAL ); /* EV: R-30575-11662 */
drh0fe456b2013-03-12 18:34:50 +00003954 r1 = codeEqualityTerm(pParse, pTerm, pLevel, j, regBase+j);
drh678ccce2008-03-31 18:19:54 +00003955 if( r1!=regBase+j ){
drh6df2acd2008-12-28 16:55:25 +00003956 if( nReg==1 ){
3957 sqlite3ReleaseTempReg(pParse, regBase);
3958 regBase = r1;
3959 }else{
3960 sqlite3VdbeAddOp2(v, OP_SCopy, r1, regBase+j);
3961 }
drh678ccce2008-03-31 18:19:54 +00003962 }
drh981642f2008-04-19 14:40:43 +00003963 testcase( pTerm->eOperator & WO_ISNULL );
3964 testcase( pTerm->eOperator & WO_IN );
drh72e8fa42007-03-28 14:30:06 +00003965 if( (pTerm->eOperator & (WO_ISNULL|WO_IN))==0 ){
drh039fc322009-11-17 18:31:47 +00003966 Expr *pRight = pTerm->pExpr->pRight;
drh2f2855b2009-11-18 01:25:26 +00003967 sqlite3ExprCodeIsNullJump(v, pRight, regBase+j, pLevel->addrBrk);
drh039fc322009-11-17 18:31:47 +00003968 if( zAff ){
3969 if( sqlite3CompareAffinity(pRight, zAff[j])==SQLITE_AFF_NONE ){
3970 zAff[j] = SQLITE_AFF_NONE;
3971 }
3972 if( sqlite3ExprNeedsNoAffinityChange(pRight, zAff[j]) ){
3973 zAff[j] = SQLITE_AFF_NONE;
3974 }
dan69f8bb92009-08-13 19:21:16 +00003975 }
drh51147ba2005-07-23 22:59:55 +00003976 }
3977 }
dan69f8bb92009-08-13 19:21:16 +00003978 *pzAff = zAff;
drh1db639c2008-01-17 02:36:28 +00003979 return regBase;
drh51147ba2005-07-23 22:59:55 +00003980}
3981
dan2ce22452010-11-08 19:01:16 +00003982#ifndef SQLITE_OMIT_EXPLAIN
dan17c0bc02010-11-09 17:35:19 +00003983/*
drh69174c42010-11-12 15:35:59 +00003984** This routine is a helper for explainIndexRange() below
3985**
3986** pStr holds the text of an expression that we are building up one term
3987** at a time. This routine adds a new term to the end of the expression.
3988** Terms are separated by AND so add the "AND" text for second and subsequent
3989** terms only.
3990*/
3991static void explainAppendTerm(
3992 StrAccum *pStr, /* The text expression being built */
3993 int iTerm, /* Index of this term. First is zero */
3994 const char *zColumn, /* Name of the column */
3995 const char *zOp /* Name of the operator */
3996){
3997 if( iTerm ) sqlite3StrAccumAppend(pStr, " AND ", 5);
3998 sqlite3StrAccumAppend(pStr, zColumn, -1);
3999 sqlite3StrAccumAppend(pStr, zOp, 1);
4000 sqlite3StrAccumAppend(pStr, "?", 1);
4001}
4002
4003/*
dan17c0bc02010-11-09 17:35:19 +00004004** Argument pLevel describes a strategy for scanning table pTab. This
4005** function returns a pointer to a string buffer containing a description
4006** of the subset of table rows scanned by the strategy in the form of an
4007** SQL expression. Or, if all rows are scanned, NULL is returned.
4008**
4009** For example, if the query:
4010**
4011** SELECT * FROM t1 WHERE a=1 AND b>2;
4012**
4013** is run and there is an index on (a, b), then this function returns a
4014** string similar to:
4015**
4016** "a=? AND b>?"
4017**
4018** The returned pointer points to memory obtained from sqlite3DbMalloc().
4019** It is the responsibility of the caller to free the buffer when it is
4020** no longer required.
4021*/
4022static char *explainIndexRange(sqlite3 *db, WhereLevel *pLevel, Table *pTab){
dan2ce22452010-11-08 19:01:16 +00004023 WherePlan *pPlan = &pLevel->plan;
4024 Index *pIndex = pPlan->u.pIdx;
4025 int nEq = pPlan->nEq;
drh69174c42010-11-12 15:35:59 +00004026 int i, j;
4027 Column *aCol = pTab->aCol;
4028 int *aiColumn = pIndex->aiColumn;
4029 StrAccum txt;
dan2ce22452010-11-08 19:01:16 +00004030
drh69174c42010-11-12 15:35:59 +00004031 if( nEq==0 && (pPlan->wsFlags & (WHERE_BTM_LIMIT|WHERE_TOP_LIMIT))==0 ){
4032 return 0;
4033 }
4034 sqlite3StrAccumInit(&txt, 0, 0, SQLITE_MAX_LENGTH);
drh03b6df12010-11-15 16:29:30 +00004035 txt.db = db;
drh69174c42010-11-12 15:35:59 +00004036 sqlite3StrAccumAppend(&txt, " (", 2);
dan2ce22452010-11-08 19:01:16 +00004037 for(i=0; i<nEq; i++){
drh69174c42010-11-12 15:35:59 +00004038 explainAppendTerm(&txt, i, aCol[aiColumn[i]].zName, "=");
dan2ce22452010-11-08 19:01:16 +00004039 }
4040
drh69174c42010-11-12 15:35:59 +00004041 j = i;
dan2ce22452010-11-08 19:01:16 +00004042 if( pPlan->wsFlags&WHERE_BTM_LIMIT ){
dan0c733f62011-11-16 15:27:09 +00004043 char *z = (j==pIndex->nColumn ) ? "rowid" : aCol[aiColumn[j]].zName;
4044 explainAppendTerm(&txt, i++, z, ">");
dan2ce22452010-11-08 19:01:16 +00004045 }
4046 if( pPlan->wsFlags&WHERE_TOP_LIMIT ){
dan0c733f62011-11-16 15:27:09 +00004047 char *z = (j==pIndex->nColumn ) ? "rowid" : aCol[aiColumn[j]].zName;
4048 explainAppendTerm(&txt, i, z, "<");
dan2ce22452010-11-08 19:01:16 +00004049 }
drh69174c42010-11-12 15:35:59 +00004050 sqlite3StrAccumAppend(&txt, ")", 1);
4051 return sqlite3StrAccumFinish(&txt);
dan2ce22452010-11-08 19:01:16 +00004052}
4053
dan17c0bc02010-11-09 17:35:19 +00004054/*
4055** This function is a no-op unless currently processing an EXPLAIN QUERY PLAN
4056** command. If the query being compiled is an EXPLAIN QUERY PLAN, a single
4057** record is added to the output to describe the table scan strategy in
4058** pLevel.
4059*/
4060static void explainOneScan(
dan2ce22452010-11-08 19:01:16 +00004061 Parse *pParse, /* Parse context */
4062 SrcList *pTabList, /* Table list this loop refers to */
4063 WhereLevel *pLevel, /* Scan to write OP_Explain opcode for */
4064 int iLevel, /* Value for "level" column of output */
dan4a07e3d2010-11-09 14:48:59 +00004065 int iFrom, /* Value for "from" column of output */
4066 u16 wctrlFlags /* Flags passed to sqlite3WhereBegin() */
dan2ce22452010-11-08 19:01:16 +00004067){
4068 if( pParse->explain==2 ){
4069 u32 flags = pLevel->plan.wsFlags;
4070 struct SrcList_item *pItem = &pTabList->a[pLevel->iFrom];
dan17c0bc02010-11-09 17:35:19 +00004071 Vdbe *v = pParse->pVdbe; /* VM being constructed */
4072 sqlite3 *db = pParse->db; /* Database handle */
4073 char *zMsg; /* Text to add to EQP output */
dan4a07e3d2010-11-09 14:48:59 +00004074 sqlite3_int64 nRow; /* Expected number of rows visited by scan */
4075 int iId = pParse->iSelectId; /* Select id (left-most output column) */
dan4bc39fa2010-11-13 16:42:27 +00004076 int isSearch; /* True for a SEARCH. False for SCAN. */
dan2ce22452010-11-08 19:01:16 +00004077
dan4a07e3d2010-11-09 14:48:59 +00004078 if( (flags&WHERE_MULTI_OR) || (wctrlFlags&WHERE_ONETABLE_ONLY) ) return;
dan2ce22452010-11-08 19:01:16 +00004079
drh04098e62010-11-15 21:50:19 +00004080 isSearch = (pLevel->plan.nEq>0)
4081 || (flags&(WHERE_BTM_LIMIT|WHERE_TOP_LIMIT))!=0
4082 || (wctrlFlags&(WHERE_ORDERBY_MIN|WHERE_ORDERBY_MAX));
dan4bc39fa2010-11-13 16:42:27 +00004083
4084 zMsg = sqlite3MPrintf(db, "%s", isSearch?"SEARCH":"SCAN");
dan4a07e3d2010-11-09 14:48:59 +00004085 if( pItem->pSelect ){
dan4bc39fa2010-11-13 16:42:27 +00004086 zMsg = sqlite3MAppendf(db, zMsg, "%s SUBQUERY %d", zMsg,pItem->iSelectId);
dan4a07e3d2010-11-09 14:48:59 +00004087 }else{
dan4bc39fa2010-11-13 16:42:27 +00004088 zMsg = sqlite3MAppendf(db, zMsg, "%s TABLE %s", zMsg, pItem->zName);
dan4a07e3d2010-11-09 14:48:59 +00004089 }
4090
dan2ce22452010-11-08 19:01:16 +00004091 if( pItem->zAlias ){
4092 zMsg = sqlite3MAppendf(db, zMsg, "%s AS %s", zMsg, pItem->zAlias);
4093 }
4094 if( (flags & WHERE_INDEXED)!=0 ){
dan17c0bc02010-11-09 17:35:19 +00004095 char *zWhere = explainIndexRange(db, pLevel, pItem->pTab);
dan4bc39fa2010-11-13 16:42:27 +00004096 zMsg = sqlite3MAppendf(db, zMsg, "%s USING %s%sINDEX%s%s%s", zMsg,
dan2ce22452010-11-08 19:01:16 +00004097 ((flags & WHERE_TEMP_INDEX)?"AUTOMATIC ":""),
4098 ((flags & WHERE_IDX_ONLY)?"COVERING ":""),
4099 ((flags & WHERE_TEMP_INDEX)?"":" "),
4100 ((flags & WHERE_TEMP_INDEX)?"": pLevel->plan.u.pIdx->zName),
4101 zWhere
4102 );
4103 sqlite3DbFree(db, zWhere);
4104 }else if( flags & (WHERE_ROWID_EQ|WHERE_ROWID_RANGE) ){
dan4bc39fa2010-11-13 16:42:27 +00004105 zMsg = sqlite3MAppendf(db, zMsg, "%s USING INTEGER PRIMARY KEY", zMsg);
dan2ce22452010-11-08 19:01:16 +00004106
4107 if( flags&WHERE_ROWID_EQ ){
4108 zMsg = sqlite3MAppendf(db, zMsg, "%s (rowid=?)", zMsg);
drh04098e62010-11-15 21:50:19 +00004109 }else if( (flags&WHERE_BOTH_LIMIT)==WHERE_BOTH_LIMIT ){
dan2ce22452010-11-08 19:01:16 +00004110 zMsg = sqlite3MAppendf(db, zMsg, "%s (rowid>? AND rowid<?)", zMsg);
4111 }else if( flags&WHERE_BTM_LIMIT ){
4112 zMsg = sqlite3MAppendf(db, zMsg, "%s (rowid>?)", zMsg);
4113 }else if( flags&WHERE_TOP_LIMIT ){
4114 zMsg = sqlite3MAppendf(db, zMsg, "%s (rowid<?)", zMsg);
4115 }
4116 }
4117#ifndef SQLITE_OMIT_VIRTUALTABLE
4118 else if( (flags & WHERE_VIRTUALTABLE)!=0 ){
4119 sqlite3_index_info *pVtabIdx = pLevel->plan.u.pVtabIdx;
4120 zMsg = sqlite3MAppendf(db, zMsg, "%s VIRTUAL TABLE INDEX %d:%s", zMsg,
4121 pVtabIdx->idxNum, pVtabIdx->idxStr);
4122 }
4123#endif
dan4a07e3d2010-11-09 14:48:59 +00004124 if( wctrlFlags&(WHERE_ORDERBY_MIN|WHERE_ORDERBY_MAX) ){
drh04098e62010-11-15 21:50:19 +00004125 testcase( wctrlFlags & WHERE_ORDERBY_MIN );
dan4a07e3d2010-11-09 14:48:59 +00004126 nRow = 1;
4127 }else{
4128 nRow = (sqlite3_int64)pLevel->plan.nRow;
4129 }
4130 zMsg = sqlite3MAppendf(db, zMsg, "%s (~%lld rows)", zMsg, nRow);
4131 sqlite3VdbeAddOp4(v, OP_Explain, iId, iLevel, iFrom, zMsg, P4_DYNAMIC);
dan2ce22452010-11-08 19:01:16 +00004132 }
4133}
4134#else
dan17c0bc02010-11-09 17:35:19 +00004135# define explainOneScan(u,v,w,x,y,z)
dan2ce22452010-11-08 19:01:16 +00004136#endif /* SQLITE_OMIT_EXPLAIN */
4137
4138
drh111a6a72008-12-21 03:51:16 +00004139/*
4140** Generate code for the start of the iLevel-th loop in the WHERE clause
4141** implementation described by pWInfo.
4142*/
4143static Bitmask codeOneLoopStart(
4144 WhereInfo *pWInfo, /* Complete information about the WHERE clause */
4145 int iLevel, /* Which level of pWInfo->a[] should be coded */
drh336a5302009-04-24 15:46:21 +00004146 u16 wctrlFlags, /* One of the WHERE_* flags defined in sqliteInt.h */
drh7a484802012-03-16 00:28:11 +00004147 Bitmask notReady /* Which tables are currently available */
drh111a6a72008-12-21 03:51:16 +00004148){
4149 int j, k; /* Loop counters */
4150 int iCur; /* The VDBE cursor for the table */
4151 int addrNxt; /* Where to jump to continue with the next IN case */
4152 int omitTable; /* True if we use the index only */
4153 int bRev; /* True if we need to scan in reverse order */
4154 WhereLevel *pLevel; /* The where level to be coded */
4155 WhereClause *pWC; /* Decomposition of the entire WHERE clause */
4156 WhereTerm *pTerm; /* A WHERE clause term */
4157 Parse *pParse; /* Parsing context */
4158 Vdbe *v; /* The prepared stmt under constructions */
4159 struct SrcList_item *pTabItem; /* FROM clause term being coded */
drh23d04d52008-12-23 23:56:22 +00004160 int addrBrk; /* Jump here to break out of the loop */
4161 int addrCont; /* Jump here to continue with next cycle */
drh61495262009-04-22 15:32:59 +00004162 int iRowidReg = 0; /* Rowid is stored in this register, if not zero */
4163 int iReleaseReg = 0; /* Temp register to free before returning */
drh0c41d222013-04-22 02:39:10 +00004164 Bitmask newNotReady; /* Return value */
drh111a6a72008-12-21 03:51:16 +00004165
4166 pParse = pWInfo->pParse;
4167 v = pParse->pVdbe;
4168 pWC = pWInfo->pWC;
4169 pLevel = &pWInfo->a[iLevel];
4170 pTabItem = &pWInfo->pTabList->a[pLevel->iFrom];
4171 iCur = pTabItem->iCursor;
4172 bRev = (pLevel->plan.wsFlags & WHERE_REVERSE)!=0;
danielk19771d461462009-04-21 09:02:45 +00004173 omitTable = (pLevel->plan.wsFlags & WHERE_IDX_ONLY)!=0
drh336a5302009-04-24 15:46:21 +00004174 && (wctrlFlags & WHERE_FORCE_TABLE)==0;
drh0c41d222013-04-22 02:39:10 +00004175 VdbeNoopComment((v, "Begin Join Loop %d", iLevel));
drh111a6a72008-12-21 03:51:16 +00004176
4177 /* Create labels for the "break" and "continue" instructions
4178 ** for the current loop. Jump to addrBrk to break out of a loop.
4179 ** Jump to cont to go immediately to the next iteration of the
4180 ** loop.
4181 **
4182 ** When there is an IN operator, we also have a "addrNxt" label that
4183 ** means to continue with the next IN value combination. When
4184 ** there are no IN operators in the constraints, the "addrNxt" label
4185 ** is the same as "addrBrk".
4186 */
4187 addrBrk = pLevel->addrBrk = pLevel->addrNxt = sqlite3VdbeMakeLabel(v);
4188 addrCont = pLevel->addrCont = sqlite3VdbeMakeLabel(v);
4189
4190 /* If this is the right table of a LEFT OUTER JOIN, allocate and
4191 ** initialize a memory cell that records if this table matches any
4192 ** row of the left table of the join.
4193 */
4194 if( pLevel->iFrom>0 && (pTabItem[0].jointype & JT_LEFT)!=0 ){
4195 pLevel->iLeftJoin = ++pParse->nMem;
4196 sqlite3VdbeAddOp2(v, OP_Integer, 0, pLevel->iLeftJoin);
4197 VdbeComment((v, "init LEFT JOIN no-match flag"));
4198 }
4199
drh21172c42012-10-30 00:29:07 +00004200 /* Special case of a FROM clause subquery implemented as a co-routine */
4201 if( pTabItem->viaCoroutine ){
4202 int regYield = pTabItem->regReturn;
4203 sqlite3VdbeAddOp2(v, OP_Integer, pTabItem->addrFillSub-1, regYield);
4204 pLevel->p2 = sqlite3VdbeAddOp1(v, OP_Yield, regYield);
4205 VdbeComment((v, "next row of co-routine %s", pTabItem->pTab->zName));
4206 sqlite3VdbeAddOp2(v, OP_If, regYield+1, addrBrk);
4207 pLevel->op = OP_Goto;
4208 }else
4209
drh111a6a72008-12-21 03:51:16 +00004210#ifndef SQLITE_OMIT_VIRTUALTABLE
4211 if( (pLevel->plan.wsFlags & WHERE_VIRTUALTABLE)!=0 ){
4212 /* Case 0: The table is a virtual-table. Use the VFilter and VNext
4213 ** to access the data.
4214 */
4215 int iReg; /* P3 Value for OP_VFilter */
drh281bbe22012-10-16 23:17:14 +00004216 int addrNotFound;
drh111a6a72008-12-21 03:51:16 +00004217 sqlite3_index_info *pVtabIdx = pLevel->plan.u.pVtabIdx;
4218 int nConstraint = pVtabIdx->nConstraint;
4219 struct sqlite3_index_constraint_usage *aUsage =
4220 pVtabIdx->aConstraintUsage;
4221 const struct sqlite3_index_constraint *aConstraint =
4222 pVtabIdx->aConstraint;
4223
drha62bb8d2009-11-23 21:23:45 +00004224 sqlite3ExprCachePush(pParse);
drh111a6a72008-12-21 03:51:16 +00004225 iReg = sqlite3GetTempRange(pParse, nConstraint+2);
drh281bbe22012-10-16 23:17:14 +00004226 addrNotFound = pLevel->addrBrk;
drh111a6a72008-12-21 03:51:16 +00004227 for(j=1; j<=nConstraint; j++){
4228 for(k=0; k<nConstraint; k++){
4229 if( aUsage[k].argvIndex==j ){
drh281bbe22012-10-16 23:17:14 +00004230 int iTarget = iReg+j+1;
drh928d9c62013-02-07 09:33:56 +00004231 pTerm = &pWC->a[aConstraint[k].iTermOffset];
drh281bbe22012-10-16 23:17:14 +00004232 if( pTerm->eOperator & WO_IN ){
drh0fe456b2013-03-12 18:34:50 +00004233 codeEqualityTerm(pParse, pTerm, pLevel, k, iTarget);
drh281bbe22012-10-16 23:17:14 +00004234 addrNotFound = pLevel->addrNxt;
4235 }else{
4236 sqlite3ExprCode(pParse, pTerm->pExpr->pRight, iTarget);
4237 }
drh111a6a72008-12-21 03:51:16 +00004238 break;
4239 }
4240 }
4241 if( k==nConstraint ) break;
4242 }
drh111a6a72008-12-21 03:51:16 +00004243 sqlite3VdbeAddOp2(v, OP_Integer, pVtabIdx->idxNum, iReg);
4244 sqlite3VdbeAddOp2(v, OP_Integer, j-1, iReg+1);
drh281bbe22012-10-16 23:17:14 +00004245 sqlite3VdbeAddOp4(v, OP_VFilter, iCur, addrNotFound, iReg, pVtabIdx->idxStr,
drh111a6a72008-12-21 03:51:16 +00004246 pVtabIdx->needToFreeIdxStr ? P4_MPRINTF : P4_STATIC);
drh111a6a72008-12-21 03:51:16 +00004247 pVtabIdx->needToFreeIdxStr = 0;
4248 for(j=0; j<nConstraint; j++){
4249 if( aUsage[j].omit ){
4250 int iTerm = aConstraint[j].iTermOffset;
4251 disableTerm(pLevel, &pWC->a[iTerm]);
4252 }
4253 }
4254 pLevel->op = OP_VNext;
4255 pLevel->p1 = iCur;
4256 pLevel->p2 = sqlite3VdbeCurrentAddr(v);
drh23d04d52008-12-23 23:56:22 +00004257 sqlite3ReleaseTempRange(pParse, iReg, nConstraint+2);
drha62bb8d2009-11-23 21:23:45 +00004258 sqlite3ExprCachePop(pParse, 1);
drh111a6a72008-12-21 03:51:16 +00004259 }else
4260#endif /* SQLITE_OMIT_VIRTUALTABLE */
4261
4262 if( pLevel->plan.wsFlags & WHERE_ROWID_EQ ){
4263 /* Case 1: We can directly reference a single row using an
4264 ** equality comparison against the ROWID field. Or
4265 ** we reference multiple rows using a "rowid IN (...)"
4266 ** construct.
4267 */
danielk19771d461462009-04-21 09:02:45 +00004268 iReleaseReg = sqlite3GetTempReg(pParse);
drh111a6a72008-12-21 03:51:16 +00004269 pTerm = findTerm(pWC, iCur, -1, notReady, WO_EQ|WO_IN, 0);
4270 assert( pTerm!=0 );
4271 assert( pTerm->pExpr!=0 );
drh111a6a72008-12-21 03:51:16 +00004272 assert( omitTable==0 );
drhe9cdcea2010-07-22 22:40:03 +00004273 testcase( pTerm->wtFlags & TERM_VIRTUAL ); /* EV: R-30575-11662 */
drh0fe456b2013-03-12 18:34:50 +00004274 iRowidReg = codeEqualityTerm(pParse, pTerm, pLevel, 0, iReleaseReg);
drh111a6a72008-12-21 03:51:16 +00004275 addrNxt = pLevel->addrNxt;
danielk19771d461462009-04-21 09:02:45 +00004276 sqlite3VdbeAddOp2(v, OP_MustBeInt, iRowidReg, addrNxt);
4277 sqlite3VdbeAddOp3(v, OP_NotExists, iCur, addrNxt, iRowidReg);
drh459f63e2013-03-06 01:55:27 +00004278 sqlite3ExprCacheAffinityChange(pParse, iRowidReg, 1);
drhceea3322009-04-23 13:22:42 +00004279 sqlite3ExprCacheStore(pParse, iCur, -1, iRowidReg);
drh111a6a72008-12-21 03:51:16 +00004280 VdbeComment((v, "pk"));
4281 pLevel->op = OP_Noop;
4282 }else if( pLevel->plan.wsFlags & WHERE_ROWID_RANGE ){
4283 /* Case 2: We have an inequality comparison against the ROWID field.
4284 */
4285 int testOp = OP_Noop;
4286 int start;
4287 int memEndValue = 0;
4288 WhereTerm *pStart, *pEnd;
4289
4290 assert( omitTable==0 );
4291 pStart = findTerm(pWC, iCur, -1, notReady, WO_GT|WO_GE, 0);
4292 pEnd = findTerm(pWC, iCur, -1, notReady, WO_LT|WO_LE, 0);
4293 if( bRev ){
4294 pTerm = pStart;
4295 pStart = pEnd;
4296 pEnd = pTerm;
4297 }
4298 if( pStart ){
4299 Expr *pX; /* The expression that defines the start bound */
4300 int r1, rTemp; /* Registers for holding the start boundary */
4301
4302 /* The following constant maps TK_xx codes into corresponding
4303 ** seek opcodes. It depends on a particular ordering of TK_xx
4304 */
4305 const u8 aMoveOp[] = {
4306 /* TK_GT */ OP_SeekGt,
4307 /* TK_LE */ OP_SeekLe,
4308 /* TK_LT */ OP_SeekLt,
4309 /* TK_GE */ OP_SeekGe
4310 };
4311 assert( TK_LE==TK_GT+1 ); /* Make sure the ordering.. */
4312 assert( TK_LT==TK_GT+2 ); /* ... of the TK_xx values... */
4313 assert( TK_GE==TK_GT+3 ); /* ... is correcct. */
4314
drhe9cdcea2010-07-22 22:40:03 +00004315 testcase( pStart->wtFlags & TERM_VIRTUAL ); /* EV: R-30575-11662 */
drh111a6a72008-12-21 03:51:16 +00004316 pX = pStart->pExpr;
4317 assert( pX!=0 );
4318 assert( pStart->leftCursor==iCur );
4319 r1 = sqlite3ExprCodeTemp(pParse, pX->pRight, &rTemp);
4320 sqlite3VdbeAddOp3(v, aMoveOp[pX->op-TK_GT], iCur, addrBrk, r1);
4321 VdbeComment((v, "pk"));
4322 sqlite3ExprCacheAffinityChange(pParse, r1, 1);
4323 sqlite3ReleaseTempReg(pParse, rTemp);
4324 disableTerm(pLevel, pStart);
4325 }else{
4326 sqlite3VdbeAddOp2(v, bRev ? OP_Last : OP_Rewind, iCur, addrBrk);
4327 }
4328 if( pEnd ){
4329 Expr *pX;
4330 pX = pEnd->pExpr;
4331 assert( pX!=0 );
4332 assert( pEnd->leftCursor==iCur );
drhe9cdcea2010-07-22 22:40:03 +00004333 testcase( pEnd->wtFlags & TERM_VIRTUAL ); /* EV: R-30575-11662 */
drh111a6a72008-12-21 03:51:16 +00004334 memEndValue = ++pParse->nMem;
4335 sqlite3ExprCode(pParse, pX->pRight, memEndValue);
4336 if( pX->op==TK_LT || pX->op==TK_GT ){
4337 testOp = bRev ? OP_Le : OP_Ge;
4338 }else{
4339 testOp = bRev ? OP_Lt : OP_Gt;
4340 }
4341 disableTerm(pLevel, pEnd);
4342 }
4343 start = sqlite3VdbeCurrentAddr(v);
4344 pLevel->op = bRev ? OP_Prev : OP_Next;
4345 pLevel->p1 = iCur;
4346 pLevel->p2 = start;
drhafc266a2010-03-31 17:47:44 +00004347 if( pStart==0 && pEnd==0 ){
4348 pLevel->p5 = SQLITE_STMTSTATUS_FULLSCAN_STEP;
4349 }else{
4350 assert( pLevel->p5==0 );
4351 }
danielk19771d461462009-04-21 09:02:45 +00004352 if( testOp!=OP_Noop ){
4353 iRowidReg = iReleaseReg = sqlite3GetTempReg(pParse);
4354 sqlite3VdbeAddOp2(v, OP_Rowid, iCur, iRowidReg);
drhceea3322009-04-23 13:22:42 +00004355 sqlite3ExprCacheStore(pParse, iCur, -1, iRowidReg);
danielk19771d461462009-04-21 09:02:45 +00004356 sqlite3VdbeAddOp3(v, testOp, memEndValue, addrBrk, iRowidReg);
4357 sqlite3VdbeChangeP5(v, SQLITE_AFF_NUMERIC | SQLITE_JUMPIFNULL);
drh111a6a72008-12-21 03:51:16 +00004358 }
4359 }else if( pLevel->plan.wsFlags & (WHERE_COLUMN_RANGE|WHERE_COLUMN_EQ) ){
4360 /* Case 3: A scan using an index.
4361 **
4362 ** The WHERE clause may contain zero or more equality
4363 ** terms ("==" or "IN" operators) that refer to the N
4364 ** left-most columns of the index. It may also contain
4365 ** inequality constraints (>, <, >= or <=) on the indexed
4366 ** column that immediately follows the N equalities. Only
4367 ** the right-most column can be an inequality - the rest must
4368 ** use the "==" and "IN" operators. For example, if the
4369 ** index is on (x,y,z), then the following clauses are all
4370 ** optimized:
4371 **
4372 ** x=5
4373 ** x=5 AND y=10
4374 ** x=5 AND y<10
4375 ** x=5 AND y>5 AND y<10
4376 ** x=5 AND y=5 AND z<=10
4377 **
4378 ** The z<10 term of the following cannot be used, only
4379 ** the x=5 term:
4380 **
4381 ** x=5 AND z<10
4382 **
4383 ** N may be zero if there are inequality constraints.
4384 ** If there are no inequality constraints, then N is at
4385 ** least one.
4386 **
4387 ** This case is also used when there are no WHERE clause
4388 ** constraints but an index is selected anyway, in order
4389 ** to force the output order to conform to an ORDER BY.
4390 */
drh3bb9b932010-08-06 02:10:00 +00004391 static const u8 aStartOp[] = {
drh111a6a72008-12-21 03:51:16 +00004392 0,
4393 0,
4394 OP_Rewind, /* 2: (!start_constraints && startEq && !bRev) */
4395 OP_Last, /* 3: (!start_constraints && startEq && bRev) */
4396 OP_SeekGt, /* 4: (start_constraints && !startEq && !bRev) */
4397 OP_SeekLt, /* 5: (start_constraints && !startEq && bRev) */
4398 OP_SeekGe, /* 6: (start_constraints && startEq && !bRev) */
4399 OP_SeekLe /* 7: (start_constraints && startEq && bRev) */
4400 };
drh3bb9b932010-08-06 02:10:00 +00004401 static const u8 aEndOp[] = {
drh111a6a72008-12-21 03:51:16 +00004402 OP_Noop, /* 0: (!end_constraints) */
4403 OP_IdxGE, /* 1: (end_constraints && !bRev) */
4404 OP_IdxLT /* 2: (end_constraints && bRev) */
4405 };
drh3bb9b932010-08-06 02:10:00 +00004406 int nEq = pLevel->plan.nEq; /* Number of == or IN terms */
drh111a6a72008-12-21 03:51:16 +00004407 int isMinQuery = 0; /* If this is an optimized SELECT min(x).. */
4408 int regBase; /* Base register holding constraint values */
4409 int r1; /* Temp register */
4410 WhereTerm *pRangeStart = 0; /* Inequality constraint at range start */
4411 WhereTerm *pRangeEnd = 0; /* Inequality constraint at range end */
4412 int startEq; /* True if range start uses ==, >= or <= */
4413 int endEq; /* True if range end uses ==, >= or <= */
4414 int start_constraints; /* Start of range is constrained */
4415 int nConstraint; /* Number of constraint terms */
drh3bb9b932010-08-06 02:10:00 +00004416 Index *pIdx; /* The index we will be using */
4417 int iIdxCur; /* The VDBE cursor for the index */
4418 int nExtraReg = 0; /* Number of extra registers needed */
4419 int op; /* Instruction opcode */
dan6ac43392010-06-09 15:47:11 +00004420 char *zStartAff; /* Affinity for start of range constraint */
4421 char *zEndAff; /* Affinity for end of range constraint */
drh111a6a72008-12-21 03:51:16 +00004422
4423 pIdx = pLevel->plan.u.pIdx;
4424 iIdxCur = pLevel->iIdxCur;
dan0c733f62011-11-16 15:27:09 +00004425 k = (nEq==pIdx->nColumn ? -1 : pIdx->aiColumn[nEq]);
drh111a6a72008-12-21 03:51:16 +00004426
drh111a6a72008-12-21 03:51:16 +00004427 /* If this loop satisfies a sort order (pOrderBy) request that
4428 ** was passed to this function to implement a "SELECT min(x) ..."
4429 ** query, then the caller will only allow the loop to run for
4430 ** a single iteration. This means that the first row returned
4431 ** should not have a NULL value stored in 'x'. If column 'x' is
4432 ** the first one after the nEq equality constraints in the index,
4433 ** this requires some special handling.
4434 */
4435 if( (wctrlFlags&WHERE_ORDERBY_MIN)!=0
drhd663b5b2012-10-03 00:25:54 +00004436 && (pLevel->plan.wsFlags&WHERE_ORDERED)
drh111a6a72008-12-21 03:51:16 +00004437 && (pIdx->nColumn>nEq)
4438 ){
4439 /* assert( pOrderBy->nExpr==1 ); */
4440 /* assert( pOrderBy->a[0].pExpr->iColumn==pIdx->aiColumn[nEq] ); */
4441 isMinQuery = 1;
drh6df2acd2008-12-28 16:55:25 +00004442 nExtraReg = 1;
drh111a6a72008-12-21 03:51:16 +00004443 }
4444
4445 /* Find any inequality constraint terms for the start and end
4446 ** of the range.
4447 */
4448 if( pLevel->plan.wsFlags & WHERE_TOP_LIMIT ){
4449 pRangeEnd = findTerm(pWC, iCur, k, notReady, (WO_LT|WO_LE), pIdx);
drh6df2acd2008-12-28 16:55:25 +00004450 nExtraReg = 1;
drh111a6a72008-12-21 03:51:16 +00004451 }
4452 if( pLevel->plan.wsFlags & WHERE_BTM_LIMIT ){
4453 pRangeStart = findTerm(pWC, iCur, k, notReady, (WO_GT|WO_GE), pIdx);
drh6df2acd2008-12-28 16:55:25 +00004454 nExtraReg = 1;
drh111a6a72008-12-21 03:51:16 +00004455 }
4456
drh6df2acd2008-12-28 16:55:25 +00004457 /* Generate code to evaluate all constraint terms using == or IN
4458 ** and store the values of those terms in an array of registers
4459 ** starting at regBase.
4460 */
dan69f8bb92009-08-13 19:21:16 +00004461 regBase = codeAllEqualityTerms(
dan6ac43392010-06-09 15:47:11 +00004462 pParse, pLevel, pWC, notReady, nExtraReg, &zStartAff
dan69f8bb92009-08-13 19:21:16 +00004463 );
dan6ac43392010-06-09 15:47:11 +00004464 zEndAff = sqlite3DbStrDup(pParse->db, zStartAff);
drh6df2acd2008-12-28 16:55:25 +00004465 addrNxt = pLevel->addrNxt;
4466
drh111a6a72008-12-21 03:51:16 +00004467 /* If we are doing a reverse order scan on an ascending index, or
4468 ** a forward order scan on a descending index, interchange the
4469 ** start and end terms (pRangeStart and pRangeEnd).
4470 */
dan0c733f62011-11-16 15:27:09 +00004471 if( (nEq<pIdx->nColumn && bRev==(pIdx->aSortOrder[nEq]==SQLITE_SO_ASC))
4472 || (bRev && pIdx->nColumn==nEq)
4473 ){
drh111a6a72008-12-21 03:51:16 +00004474 SWAP(WhereTerm *, pRangeEnd, pRangeStart);
4475 }
4476
4477 testcase( pRangeStart && pRangeStart->eOperator & WO_LE );
4478 testcase( pRangeStart && pRangeStart->eOperator & WO_GE );
4479 testcase( pRangeEnd && pRangeEnd->eOperator & WO_LE );
4480 testcase( pRangeEnd && pRangeEnd->eOperator & WO_GE );
4481 startEq = !pRangeStart || pRangeStart->eOperator & (WO_LE|WO_GE);
4482 endEq = !pRangeEnd || pRangeEnd->eOperator & (WO_LE|WO_GE);
4483 start_constraints = pRangeStart || nEq>0;
4484
4485 /* Seek the index cursor to the start of the range. */
4486 nConstraint = nEq;
4487 if( pRangeStart ){
dan69f8bb92009-08-13 19:21:16 +00004488 Expr *pRight = pRangeStart->pExpr->pRight;
4489 sqlite3ExprCode(pParse, pRight, regBase+nEq);
drh534230c2011-01-22 00:10:45 +00004490 if( (pRangeStart->wtFlags & TERM_VNULL)==0 ){
4491 sqlite3ExprCodeIsNullJump(v, pRight, regBase+nEq, addrNxt);
4492 }
dan6ac43392010-06-09 15:47:11 +00004493 if( zStartAff ){
4494 if( sqlite3CompareAffinity(pRight, zStartAff[nEq])==SQLITE_AFF_NONE){
drh039fc322009-11-17 18:31:47 +00004495 /* Since the comparison is to be performed with no conversions
4496 ** applied to the operands, set the affinity to apply to pRight to
4497 ** SQLITE_AFF_NONE. */
dan6ac43392010-06-09 15:47:11 +00004498 zStartAff[nEq] = SQLITE_AFF_NONE;
drh039fc322009-11-17 18:31:47 +00004499 }
dan6ac43392010-06-09 15:47:11 +00004500 if( sqlite3ExprNeedsNoAffinityChange(pRight, zStartAff[nEq]) ){
4501 zStartAff[nEq] = SQLITE_AFF_NONE;
drh039fc322009-11-17 18:31:47 +00004502 }
4503 }
drh111a6a72008-12-21 03:51:16 +00004504 nConstraint++;
drhe9cdcea2010-07-22 22:40:03 +00004505 testcase( pRangeStart->wtFlags & TERM_VIRTUAL ); /* EV: R-30575-11662 */
drh111a6a72008-12-21 03:51:16 +00004506 }else if( isMinQuery ){
4507 sqlite3VdbeAddOp2(v, OP_Null, 0, regBase+nEq);
4508 nConstraint++;
4509 startEq = 0;
4510 start_constraints = 1;
4511 }
dan6ac43392010-06-09 15:47:11 +00004512 codeApplyAffinity(pParse, regBase, nConstraint, zStartAff);
drh111a6a72008-12-21 03:51:16 +00004513 op = aStartOp[(start_constraints<<2) + (startEq<<1) + bRev];
4514 assert( op!=0 );
4515 testcase( op==OP_Rewind );
4516 testcase( op==OP_Last );
4517 testcase( op==OP_SeekGt );
4518 testcase( op==OP_SeekGe );
4519 testcase( op==OP_SeekLe );
4520 testcase( op==OP_SeekLt );
drh8cff69d2009-11-12 19:59:44 +00004521 sqlite3VdbeAddOp4Int(v, op, iIdxCur, addrNxt, regBase, nConstraint);
drh111a6a72008-12-21 03:51:16 +00004522
4523 /* Load the value for the inequality constraint at the end of the
4524 ** range (if any).
4525 */
4526 nConstraint = nEq;
4527 if( pRangeEnd ){
dan69f8bb92009-08-13 19:21:16 +00004528 Expr *pRight = pRangeEnd->pExpr->pRight;
drhf49f3522009-12-30 14:12:38 +00004529 sqlite3ExprCacheRemove(pParse, regBase+nEq, 1);
dan69f8bb92009-08-13 19:21:16 +00004530 sqlite3ExprCode(pParse, pRight, regBase+nEq);
drh534230c2011-01-22 00:10:45 +00004531 if( (pRangeEnd->wtFlags & TERM_VNULL)==0 ){
4532 sqlite3ExprCodeIsNullJump(v, pRight, regBase+nEq, addrNxt);
4533 }
dan6ac43392010-06-09 15:47:11 +00004534 if( zEndAff ){
4535 if( sqlite3CompareAffinity(pRight, zEndAff[nEq])==SQLITE_AFF_NONE){
drh039fc322009-11-17 18:31:47 +00004536 /* Since the comparison is to be performed with no conversions
4537 ** applied to the operands, set the affinity to apply to pRight to
4538 ** SQLITE_AFF_NONE. */
dan6ac43392010-06-09 15:47:11 +00004539 zEndAff[nEq] = SQLITE_AFF_NONE;
drh039fc322009-11-17 18:31:47 +00004540 }
dan6ac43392010-06-09 15:47:11 +00004541 if( sqlite3ExprNeedsNoAffinityChange(pRight, zEndAff[nEq]) ){
4542 zEndAff[nEq] = SQLITE_AFF_NONE;
drh039fc322009-11-17 18:31:47 +00004543 }
4544 }
dan6ac43392010-06-09 15:47:11 +00004545 codeApplyAffinity(pParse, regBase, nEq+1, zEndAff);
drh111a6a72008-12-21 03:51:16 +00004546 nConstraint++;
drhe9cdcea2010-07-22 22:40:03 +00004547 testcase( pRangeEnd->wtFlags & TERM_VIRTUAL ); /* EV: R-30575-11662 */
drh111a6a72008-12-21 03:51:16 +00004548 }
dan6ac43392010-06-09 15:47:11 +00004549 sqlite3DbFree(pParse->db, zStartAff);
4550 sqlite3DbFree(pParse->db, zEndAff);
drh111a6a72008-12-21 03:51:16 +00004551
4552 /* Top of the loop body */
4553 pLevel->p2 = sqlite3VdbeCurrentAddr(v);
4554
4555 /* Check if the index cursor is past the end of the range. */
4556 op = aEndOp[(pRangeEnd || nEq) * (1 + bRev)];
4557 testcase( op==OP_Noop );
4558 testcase( op==OP_IdxGE );
4559 testcase( op==OP_IdxLT );
drh6df2acd2008-12-28 16:55:25 +00004560 if( op!=OP_Noop ){
drh8cff69d2009-11-12 19:59:44 +00004561 sqlite3VdbeAddOp4Int(v, op, iIdxCur, addrNxt, regBase, nConstraint);
drh6df2acd2008-12-28 16:55:25 +00004562 sqlite3VdbeChangeP5(v, endEq!=bRev ?1:0);
4563 }
drh111a6a72008-12-21 03:51:16 +00004564
4565 /* If there are inequality constraints, check that the value
4566 ** of the table column that the inequality contrains is not NULL.
4567 ** If it is, jump to the next iteration of the loop.
4568 */
4569 r1 = sqlite3GetTempReg(pParse);
4570 testcase( pLevel->plan.wsFlags & WHERE_BTM_LIMIT );
4571 testcase( pLevel->plan.wsFlags & WHERE_TOP_LIMIT );
drh04098e62010-11-15 21:50:19 +00004572 if( (pLevel->plan.wsFlags & (WHERE_BTM_LIMIT|WHERE_TOP_LIMIT))!=0 ){
drh111a6a72008-12-21 03:51:16 +00004573 sqlite3VdbeAddOp3(v, OP_Column, iIdxCur, nEq, r1);
4574 sqlite3VdbeAddOp2(v, OP_IsNull, r1, addrCont);
4575 }
danielk19771d461462009-04-21 09:02:45 +00004576 sqlite3ReleaseTempReg(pParse, r1);
drh111a6a72008-12-21 03:51:16 +00004577
4578 /* Seek the table cursor, if required */
drh23d04d52008-12-23 23:56:22 +00004579 disableTerm(pLevel, pRangeStart);
4580 disableTerm(pLevel, pRangeEnd);
danielk19771d461462009-04-21 09:02:45 +00004581 if( !omitTable ){
4582 iRowidReg = iReleaseReg = sqlite3GetTempReg(pParse);
4583 sqlite3VdbeAddOp2(v, OP_IdxRowid, iIdxCur, iRowidReg);
drhceea3322009-04-23 13:22:42 +00004584 sqlite3ExprCacheStore(pParse, iCur, -1, iRowidReg);
danielk19771d461462009-04-21 09:02:45 +00004585 sqlite3VdbeAddOp2(v, OP_Seek, iCur, iRowidReg); /* Deferred seek */
drh111a6a72008-12-21 03:51:16 +00004586 }
drh111a6a72008-12-21 03:51:16 +00004587
4588 /* Record the instruction used to terminate the loop. Disable
4589 ** WHERE clause terms made redundant by the index range scan.
4590 */
drh95e037b2011-03-09 21:02:31 +00004591 if( pLevel->plan.wsFlags & WHERE_UNIQUE ){
4592 pLevel->op = OP_Noop;
4593 }else if( bRev ){
4594 pLevel->op = OP_Prev;
4595 }else{
4596 pLevel->op = OP_Next;
4597 }
drh111a6a72008-12-21 03:51:16 +00004598 pLevel->p1 = iIdxCur;
drh3f4d1d12012-09-15 18:45:54 +00004599 if( pLevel->plan.wsFlags & WHERE_COVER_SCAN ){
4600 pLevel->p5 = SQLITE_STMTSTATUS_FULLSCAN_STEP;
4601 }else{
4602 assert( pLevel->p5==0 );
4603 }
drhdd5f5a62008-12-23 13:35:23 +00004604 }else
4605
drh23d04d52008-12-23 23:56:22 +00004606#ifndef SQLITE_OMIT_OR_OPTIMIZATION
drhdd5f5a62008-12-23 13:35:23 +00004607 if( pLevel->plan.wsFlags & WHERE_MULTI_OR ){
drh111a6a72008-12-21 03:51:16 +00004608 /* Case 4: Two or more separately indexed terms connected by OR
4609 **
4610 ** Example:
4611 **
4612 ** CREATE TABLE t1(a,b,c,d);
4613 ** CREATE INDEX i1 ON t1(a);
4614 ** CREATE INDEX i2 ON t1(b);
4615 ** CREATE INDEX i3 ON t1(c);
4616 **
4617 ** SELECT * FROM t1 WHERE a=5 OR b=7 OR (c=11 AND d=13)
4618 **
4619 ** In the example, there are three indexed terms connected by OR.
danielk19771d461462009-04-21 09:02:45 +00004620 ** The top of the loop looks like this:
drh111a6a72008-12-21 03:51:16 +00004621 **
drh1b26c7c2009-04-22 02:15:47 +00004622 ** Null 1 # Zero the rowset in reg 1
drh111a6a72008-12-21 03:51:16 +00004623 **
danielk19771d461462009-04-21 09:02:45 +00004624 ** Then, for each indexed term, the following. The arguments to
drh1b26c7c2009-04-22 02:15:47 +00004625 ** RowSetTest are such that the rowid of the current row is inserted
4626 ** into the RowSet. If it is already present, control skips the
danielk19771d461462009-04-21 09:02:45 +00004627 ** Gosub opcode and jumps straight to the code generated by WhereEnd().
drh111a6a72008-12-21 03:51:16 +00004628 **
danielk19771d461462009-04-21 09:02:45 +00004629 ** sqlite3WhereBegin(<term>)
drh1b26c7c2009-04-22 02:15:47 +00004630 ** RowSetTest # Insert rowid into rowset
danielk19771d461462009-04-21 09:02:45 +00004631 ** Gosub 2 A
4632 ** sqlite3WhereEnd()
4633 **
4634 ** Following the above, code to terminate the loop. Label A, the target
4635 ** of the Gosub above, jumps to the instruction right after the Goto.
4636 **
drh1b26c7c2009-04-22 02:15:47 +00004637 ** Null 1 # Zero the rowset in reg 1
danielk19771d461462009-04-21 09:02:45 +00004638 ** Goto B # The loop is finished.
4639 **
4640 ** A: <loop body> # Return data, whatever.
4641 **
4642 ** Return 2 # Jump back to the Gosub
4643 **
4644 ** B: <after the loop>
4645 **
drh111a6a72008-12-21 03:51:16 +00004646 */
drh111a6a72008-12-21 03:51:16 +00004647 WhereClause *pOrWc; /* The OR-clause broken out into subterms */
drhc01a3c12009-12-16 22:10:49 +00004648 SrcList *pOrTab; /* Shortened table list or OR-clause generation */
dan0efb72c2012-08-24 18:44:56 +00004649 Index *pCov = 0; /* Potential covering index (or NULL) */
4650 int iCovCur = pParse->nTab++; /* Cursor used for index scans (if any) */
danielk19771d461462009-04-21 09:02:45 +00004651
4652 int regReturn = ++pParse->nMem; /* Register used with OP_Gosub */
shane85095702009-06-15 16:27:08 +00004653 int regRowset = 0; /* Register for RowSet object */
4654 int regRowid = 0; /* Register holding rowid */
danielk19771d461462009-04-21 09:02:45 +00004655 int iLoopBody = sqlite3VdbeMakeLabel(v); /* Start of loop body */
4656 int iRetInit; /* Address of regReturn init */
drhc01a3c12009-12-16 22:10:49 +00004657 int untestedTerms = 0; /* Some terms not completely tested */
drh8871ef52011-10-07 13:33:10 +00004658 int ii; /* Loop counter */
4659 Expr *pAndExpr = 0; /* An ".. AND (...)" expression */
drh111a6a72008-12-21 03:51:16 +00004660
4661 pTerm = pLevel->plan.u.pTerm;
4662 assert( pTerm!=0 );
drh7a5bcc02013-01-16 17:08:58 +00004663 assert( pTerm->eOperator & WO_OR );
drh111a6a72008-12-21 03:51:16 +00004664 assert( (pTerm->wtFlags & TERM_ORINFO)!=0 );
4665 pOrWc = &pTerm->u.pOrInfo->wc;
drhc01a3c12009-12-16 22:10:49 +00004666 pLevel->op = OP_Return;
4667 pLevel->p1 = regReturn;
drh23d04d52008-12-23 23:56:22 +00004668
danbfca6a42012-08-24 10:52:35 +00004669 /* Set up a new SrcList in pOrTab containing the table being scanned
drhc01a3c12009-12-16 22:10:49 +00004670 ** by this loop in the a[0] slot and all notReady tables in a[1..] slots.
4671 ** This becomes the SrcList in the recursive call to sqlite3WhereBegin().
4672 */
4673 if( pWInfo->nLevel>1 ){
4674 int nNotReady; /* The number of notReady tables */
4675 struct SrcList_item *origSrc; /* Original list of tables */
4676 nNotReady = pWInfo->nLevel - iLevel - 1;
4677 pOrTab = sqlite3StackAllocRaw(pParse->db,
4678 sizeof(*pOrTab)+ nNotReady*sizeof(pOrTab->a[0]));
4679 if( pOrTab==0 ) return notReady;
shaneh46aae3c2009-12-31 19:06:23 +00004680 pOrTab->nAlloc = (i16)(nNotReady + 1);
4681 pOrTab->nSrc = pOrTab->nAlloc;
drhc01a3c12009-12-16 22:10:49 +00004682 memcpy(pOrTab->a, pTabItem, sizeof(*pTabItem));
4683 origSrc = pWInfo->pTabList->a;
4684 for(k=1; k<=nNotReady; k++){
4685 memcpy(&pOrTab->a[k], &origSrc[pLevel[k].iFrom], sizeof(pOrTab->a[k]));
4686 }
4687 }else{
4688 pOrTab = pWInfo->pTabList;
4689 }
danielk19771d461462009-04-21 09:02:45 +00004690
drh1b26c7c2009-04-22 02:15:47 +00004691 /* Initialize the rowset register to contain NULL. An SQL NULL is
4692 ** equivalent to an empty rowset.
danielk19771d461462009-04-21 09:02:45 +00004693 **
4694 ** Also initialize regReturn to contain the address of the instruction
4695 ** immediately following the OP_Return at the bottom of the loop. This
4696 ** is required in a few obscure LEFT JOIN cases where control jumps
4697 ** over the top of the loop into the body of it. In this case the
4698 ** correct response for the end-of-loop code (the OP_Return) is to
4699 ** fall through to the next instruction, just as an OP_Next does if
4700 ** called on an uninitialized cursor.
4701 */
drh336a5302009-04-24 15:46:21 +00004702 if( (wctrlFlags & WHERE_DUPLICATES_OK)==0 ){
4703 regRowset = ++pParse->nMem;
4704 regRowid = ++pParse->nMem;
4705 sqlite3VdbeAddOp2(v, OP_Null, 0, regRowset);
4706 }
danielk19771d461462009-04-21 09:02:45 +00004707 iRetInit = sqlite3VdbeAddOp2(v, OP_Integer, 0, regReturn);
4708
drh8871ef52011-10-07 13:33:10 +00004709 /* If the original WHERE clause is z of the form: (x1 OR x2 OR ...) AND y
4710 ** Then for every term xN, evaluate as the subexpression: xN AND z
4711 ** That way, terms in y that are factored into the disjunction will
4712 ** be picked up by the recursive calls to sqlite3WhereBegin() below.
drh331b67c2012-03-09 22:02:08 +00004713 **
4714 ** Actually, each subexpression is converted to "xN AND w" where w is
4715 ** the "interesting" terms of z - terms that did not originate in the
4716 ** ON or USING clause of a LEFT JOIN, and terms that are usable as
4717 ** indices.
drh8871ef52011-10-07 13:33:10 +00004718 */
4719 if( pWC->nTerm>1 ){
drh7a484802012-03-16 00:28:11 +00004720 int iTerm;
4721 for(iTerm=0; iTerm<pWC->nTerm; iTerm++){
4722 Expr *pExpr = pWC->a[iTerm].pExpr;
drh331b67c2012-03-09 22:02:08 +00004723 if( ExprHasProperty(pExpr, EP_FromJoin) ) continue;
drh7a484802012-03-16 00:28:11 +00004724 if( pWC->a[iTerm].wtFlags & (TERM_VIRTUAL|TERM_ORINFO) ) continue;
4725 if( (pWC->a[iTerm].eOperator & WO_ALL)==0 ) continue;
drh331b67c2012-03-09 22:02:08 +00004726 pExpr = sqlite3ExprDup(pParse->db, pExpr, 0);
4727 pAndExpr = sqlite3ExprAnd(pParse->db, pAndExpr, pExpr);
4728 }
4729 if( pAndExpr ){
4730 pAndExpr = sqlite3PExpr(pParse, TK_AND, 0, pAndExpr, 0);
4731 }
drh8871ef52011-10-07 13:33:10 +00004732 }
4733
danielk19771d461462009-04-21 09:02:45 +00004734 for(ii=0; ii<pOrWc->nTerm; ii++){
4735 WhereTerm *pOrTerm = &pOrWc->a[ii];
drh7a5bcc02013-01-16 17:08:58 +00004736 if( pOrTerm->leftCursor==iCur || (pOrTerm->eOperator & WO_AND)!=0 ){
danielk19771d461462009-04-21 09:02:45 +00004737 WhereInfo *pSubWInfo; /* Info for single OR-term scan */
drh8871ef52011-10-07 13:33:10 +00004738 Expr *pOrExpr = pOrTerm->pExpr;
4739 if( pAndExpr ){
4740 pAndExpr->pLeft = pOrExpr;
4741 pOrExpr = pAndExpr;
4742 }
danielk19771d461462009-04-21 09:02:45 +00004743 /* Loop through table entries that match term pOrTerm. */
drh8871ef52011-10-07 13:33:10 +00004744 pSubWInfo = sqlite3WhereBegin(pParse, pOrTab, pOrExpr, 0, 0,
drh9ef61f42011-10-07 14:40:59 +00004745 WHERE_OMIT_OPEN_CLOSE | WHERE_AND_ONLY |
dan0efb72c2012-08-24 18:44:56 +00004746 WHERE_FORCE_TABLE | WHERE_ONETABLE_ONLY, iCovCur);
danbfca6a42012-08-24 10:52:35 +00004747 assert( pSubWInfo || pParse->nErr || pParse->db->mallocFailed );
danielk19771d461462009-04-21 09:02:45 +00004748 if( pSubWInfo ){
danbfca6a42012-08-24 10:52:35 +00004749 WhereLevel *pLvl;
dan17c0bc02010-11-09 17:35:19 +00004750 explainOneScan(
dan4a07e3d2010-11-09 14:48:59 +00004751 pParse, pOrTab, &pSubWInfo->a[0], iLevel, pLevel->iFrom, 0
dan2ce22452010-11-08 19:01:16 +00004752 );
drh336a5302009-04-24 15:46:21 +00004753 if( (wctrlFlags & WHERE_DUPLICATES_OK)==0 ){
4754 int iSet = ((ii==pOrWc->nTerm-1)?-1:ii);
4755 int r;
4756 r = sqlite3ExprCodeGetColumn(pParse, pTabItem->pTab, -1, iCur,
drha748fdc2012-03-28 01:34:47 +00004757 regRowid, 0);
drh8cff69d2009-11-12 19:59:44 +00004758 sqlite3VdbeAddOp4Int(v, OP_RowSetTest, regRowset,
4759 sqlite3VdbeCurrentAddr(v)+2, r, iSet);
drh336a5302009-04-24 15:46:21 +00004760 }
danielk19771d461462009-04-21 09:02:45 +00004761 sqlite3VdbeAddOp2(v, OP_Gosub, regReturn, iLoopBody);
4762
drhc01a3c12009-12-16 22:10:49 +00004763 /* The pSubWInfo->untestedTerms flag means that this OR term
4764 ** contained one or more AND term from a notReady table. The
4765 ** terms from the notReady table could not be tested and will
4766 ** need to be tested later.
4767 */
4768 if( pSubWInfo->untestedTerms ) untestedTerms = 1;
4769
danbfca6a42012-08-24 10:52:35 +00004770 /* If all of the OR-connected terms are optimized using the same
4771 ** index, and the index is opened using the same cursor number
4772 ** by each call to sqlite3WhereBegin() made by this loop, it may
4773 ** be possible to use that index as a covering index.
4774 **
4775 ** If the call to sqlite3WhereBegin() above resulted in a scan that
4776 ** uses an index, and this is either the first OR-connected term
4777 ** processed or the index is the same as that used by all previous
dan0efb72c2012-08-24 18:44:56 +00004778 ** terms, set pCov to the candidate covering index. Otherwise, set
4779 ** pCov to NULL to indicate that no candidate covering index will
4780 ** be available.
danbfca6a42012-08-24 10:52:35 +00004781 */
4782 pLvl = &pSubWInfo->a[0];
4783 if( (pLvl->plan.wsFlags & WHERE_INDEXED)!=0
4784 && (pLvl->plan.wsFlags & WHERE_TEMP_INDEX)==0
dan0efb72c2012-08-24 18:44:56 +00004785 && (ii==0 || pLvl->plan.u.pIdx==pCov)
danbfca6a42012-08-24 10:52:35 +00004786 ){
dan0efb72c2012-08-24 18:44:56 +00004787 assert( pLvl->iIdxCur==iCovCur );
danbfca6a42012-08-24 10:52:35 +00004788 pCov = pLvl->plan.u.pIdx;
danbfca6a42012-08-24 10:52:35 +00004789 }else{
4790 pCov = 0;
4791 }
4792
danielk19771d461462009-04-21 09:02:45 +00004793 /* Finish the loop through table entries that match term pOrTerm. */
4794 sqlite3WhereEnd(pSubWInfo);
4795 }
drhdd5f5a62008-12-23 13:35:23 +00004796 }
4797 }
drhd40e2082012-08-24 23:24:15 +00004798 pLevel->u.pCovidx = pCov;
drh90abfd02012-10-09 21:07:23 +00004799 if( pCov ) pLevel->iIdxCur = iCovCur;
drh331b67c2012-03-09 22:02:08 +00004800 if( pAndExpr ){
4801 pAndExpr->pLeft = 0;
4802 sqlite3ExprDelete(pParse->db, pAndExpr);
4803 }
danielk19771d461462009-04-21 09:02:45 +00004804 sqlite3VdbeChangeP1(v, iRetInit, sqlite3VdbeCurrentAddr(v));
danielk19771d461462009-04-21 09:02:45 +00004805 sqlite3VdbeAddOp2(v, OP_Goto, 0, pLevel->addrBrk);
4806 sqlite3VdbeResolveLabel(v, iLoopBody);
4807
drhc01a3c12009-12-16 22:10:49 +00004808 if( pWInfo->nLevel>1 ) sqlite3StackFree(pParse->db, pOrTab);
4809 if( !untestedTerms ) disableTerm(pLevel, pTerm);
drhdd5f5a62008-12-23 13:35:23 +00004810 }else
drh23d04d52008-12-23 23:56:22 +00004811#endif /* SQLITE_OMIT_OR_OPTIMIZATION */
drhdd5f5a62008-12-23 13:35:23 +00004812
4813 {
drh111a6a72008-12-21 03:51:16 +00004814 /* Case 5: There is no usable index. We must do a complete
4815 ** scan of the entire table.
4816 */
drh699b3d42009-02-23 16:52:07 +00004817 static const u8 aStep[] = { OP_Next, OP_Prev };
4818 static const u8 aStart[] = { OP_Rewind, OP_Last };
4819 assert( bRev==0 || bRev==1 );
drh111a6a72008-12-21 03:51:16 +00004820 assert( omitTable==0 );
drh699b3d42009-02-23 16:52:07 +00004821 pLevel->op = aStep[bRev];
drh111a6a72008-12-21 03:51:16 +00004822 pLevel->p1 = iCur;
drh699b3d42009-02-23 16:52:07 +00004823 pLevel->p2 = 1 + sqlite3VdbeAddOp2(v, aStart[bRev], iCur, addrBrk);
drh111a6a72008-12-21 03:51:16 +00004824 pLevel->p5 = SQLITE_STMTSTATUS_FULLSCAN_STEP;
4825 }
drh0c41d222013-04-22 02:39:10 +00004826 newNotReady = notReady & ~getMask(pWC->pMaskSet, iCur);
drh111a6a72008-12-21 03:51:16 +00004827
4828 /* Insert code to test every subexpression that can be completely
4829 ** computed using the current set of tables.
drhe9cdcea2010-07-22 22:40:03 +00004830 **
4831 ** IMPLEMENTATION-OF: R-49525-50935 Terms that cannot be satisfied through
4832 ** the use of indices become tests that are evaluated against each row of
4833 ** the relevant input tables.
drh111a6a72008-12-21 03:51:16 +00004834 */
drh111a6a72008-12-21 03:51:16 +00004835 for(pTerm=pWC->a, j=pWC->nTerm; j>0; j--, pTerm++){
4836 Expr *pE;
drhe9cdcea2010-07-22 22:40:03 +00004837 testcase( pTerm->wtFlags & TERM_VIRTUAL ); /* IMP: R-30575-11662 */
drh111a6a72008-12-21 03:51:16 +00004838 testcase( pTerm->wtFlags & TERM_CODED );
4839 if( pTerm->wtFlags & (TERM_VIRTUAL|TERM_CODED) ) continue;
drh0c41d222013-04-22 02:39:10 +00004840 if( (pTerm->prereqAll & newNotReady)!=0 ){
drhc01a3c12009-12-16 22:10:49 +00004841 testcase( pWInfo->untestedTerms==0
4842 && (pWInfo->wctrlFlags & WHERE_ONETABLE_ONLY)!=0 );
4843 pWInfo->untestedTerms = 1;
4844 continue;
4845 }
drh111a6a72008-12-21 03:51:16 +00004846 pE = pTerm->pExpr;
4847 assert( pE!=0 );
4848 if( pLevel->iLeftJoin && !ExprHasProperty(pE, EP_FromJoin) ){
4849 continue;
4850 }
drh111a6a72008-12-21 03:51:16 +00004851 sqlite3ExprIfFalse(pParse, pE, addrCont, SQLITE_JUMPIFNULL);
drh111a6a72008-12-21 03:51:16 +00004852 pTerm->wtFlags |= TERM_CODED;
4853 }
4854
drh0c41d222013-04-22 02:39:10 +00004855 /* Insert code to test for implied constraints based on transitivity
4856 ** of the "==" operator.
4857 **
4858 ** Example: If the WHERE clause contains "t1.a=t2.b" and "t2.b=123"
4859 ** and we are coding the t1 loop and the t2 loop has not yet coded,
4860 ** then we cannot use the "t1.a=t2.b" constraint, but we can code
4861 ** the implied "t1.a=123" constraint.
4862 */
4863 for(pTerm=pWC->a, j=pWC->nTerm; j>0; j--, pTerm++){
4864 Expr *pE;
4865 WhereTerm *pAlt;
4866 Expr sEq;
4867 if( pTerm->wtFlags & (TERM_VIRTUAL|TERM_CODED) ) continue;
4868 if( pTerm->eOperator!=(WO_EQUIV|WO_EQ) ) continue;
4869 if( pTerm->leftCursor!=iCur ) continue;
4870 pE = pTerm->pExpr;
4871 assert( !ExprHasProperty(pE, EP_FromJoin) );
4872 assert( (pTerm->prereqRight & newNotReady)!=0 );
4873 pAlt = findTerm(pWC, iCur, pTerm->u.leftColumn, notReady, WO_EQ|WO_IN, 0);
4874 if( pAlt==0 ) continue;
4875 VdbeNoopComment((v, "begin transitive constraint"));
4876 sEq = *pAlt->pExpr;
4877 sEq.pLeft = pE->pLeft;
4878 sqlite3ExprIfFalse(pParse, &sEq, addrCont, SQLITE_JUMPIFNULL);
4879 }
4880
drh111a6a72008-12-21 03:51:16 +00004881 /* For a LEFT OUTER JOIN, generate code that will record the fact that
4882 ** at least one row of the right table has matched the left table.
4883 */
4884 if( pLevel->iLeftJoin ){
4885 pLevel->addrFirst = sqlite3VdbeCurrentAddr(v);
4886 sqlite3VdbeAddOp2(v, OP_Integer, 1, pLevel->iLeftJoin);
4887 VdbeComment((v, "record LEFT JOIN hit"));
drhceea3322009-04-23 13:22:42 +00004888 sqlite3ExprCacheClear(pParse);
drh111a6a72008-12-21 03:51:16 +00004889 for(pTerm=pWC->a, j=0; j<pWC->nTerm; j++, pTerm++){
drhe9cdcea2010-07-22 22:40:03 +00004890 testcase( pTerm->wtFlags & TERM_VIRTUAL ); /* IMP: R-30575-11662 */
drh111a6a72008-12-21 03:51:16 +00004891 testcase( pTerm->wtFlags & TERM_CODED );
4892 if( pTerm->wtFlags & (TERM_VIRTUAL|TERM_CODED) ) continue;
drh0c41d222013-04-22 02:39:10 +00004893 if( (pTerm->prereqAll & newNotReady)!=0 ){
drhb057e562009-12-16 23:43:55 +00004894 assert( pWInfo->untestedTerms );
drhc01a3c12009-12-16 22:10:49 +00004895 continue;
4896 }
drh111a6a72008-12-21 03:51:16 +00004897 assert( pTerm->pExpr );
4898 sqlite3ExprIfFalse(pParse, pTerm->pExpr, addrCont, SQLITE_JUMPIFNULL);
4899 pTerm->wtFlags |= TERM_CODED;
4900 }
4901 }
danielk19771d461462009-04-21 09:02:45 +00004902 sqlite3ReleaseTempReg(pParse, iReleaseReg);
drh23d04d52008-12-23 23:56:22 +00004903
drh0c41d222013-04-22 02:39:10 +00004904 return newNotReady;
drh111a6a72008-12-21 03:51:16 +00004905}
4906
drh549c8b62005-09-19 13:15:23 +00004907#if defined(SQLITE_TEST)
drh84bfda42005-07-15 13:05:21 +00004908/*
4909** The following variable holds a text description of query plan generated
4910** by the most recent call to sqlite3WhereBegin(). Each call to WhereBegin
4911** overwrites the previous. This information is used for testing and
4912** analysis only.
4913*/
4914char sqlite3_query_plan[BMS*2*40]; /* Text of the join */
4915static int nQPlan = 0; /* Next free slow in _query_plan[] */
4916
4917#endif /* SQLITE_TEST */
4918
4919
drh9eff6162006-06-12 21:59:13 +00004920/*
4921** Free a WhereInfo structure
4922*/
drh10fe8402008-10-11 16:47:35 +00004923static void whereInfoFree(sqlite3 *db, WhereInfo *pWInfo){
drh52ff8ea2010-04-08 14:15:56 +00004924 if( ALWAYS(pWInfo) ){
drh9eff6162006-06-12 21:59:13 +00004925 int i;
4926 for(i=0; i<pWInfo->nLevel; i++){
drh4be8b512006-06-13 23:51:34 +00004927 sqlite3_index_info *pInfo = pWInfo->a[i].pIdxInfo;
4928 if( pInfo ){
danielk19771d461462009-04-21 09:02:45 +00004929 /* assert( pInfo->needToFreeIdxStr==0 || db->mallocFailed ); */
danielk197780442942008-12-24 11:25:39 +00004930 if( pInfo->needToFreeIdxStr ){
4931 sqlite3_free(pInfo->idxStr);
danielk1977be229652009-03-20 14:18:51 +00004932 }
drh633e6d52008-07-28 19:34:53 +00004933 sqlite3DbFree(db, pInfo);
danielk1977be8a7832006-06-13 15:00:54 +00004934 }
drh8b307fb2010-04-06 15:57:05 +00004935 if( pWInfo->a[i].plan.wsFlags & WHERE_TEMP_INDEX ){
drha21a64d2010-04-06 22:33:55 +00004936 Index *pIdx = pWInfo->a[i].plan.u.pIdx;
4937 if( pIdx ){
4938 sqlite3DbFree(db, pIdx->zColAff);
4939 sqlite3DbFree(db, pIdx);
4940 }
drh8b307fb2010-04-06 15:57:05 +00004941 }
drh9eff6162006-06-12 21:59:13 +00004942 }
drh111a6a72008-12-21 03:51:16 +00004943 whereClauseClear(pWInfo->pWC);
drh633e6d52008-07-28 19:34:53 +00004944 sqlite3DbFree(db, pWInfo);
drh9eff6162006-06-12 21:59:13 +00004945 }
4946}
4947
drh94a11212004-09-25 13:12:14 +00004948
4949/*
drhe3184742002-06-19 14:27:05 +00004950** Generate the beginning of the loop used for WHERE clause processing.
drhacf3b982005-01-03 01:27:18 +00004951** The return value is a pointer to an opaque structure that contains
drh75897232000-05-29 14:26:00 +00004952** information needed to terminate the loop. Later, the calling routine
danielk19774adee202004-05-08 08:23:19 +00004953** should invoke sqlite3WhereEnd() with the return value of this function
drh75897232000-05-29 14:26:00 +00004954** in order to complete the WHERE clause processing.
4955**
4956** If an error occurs, this routine returns NULL.
drhc27a1ce2002-06-14 20:58:45 +00004957**
4958** The basic idea is to do a nested loop, one loop for each table in
4959** the FROM clause of a select. (INSERT and UPDATE statements are the
4960** same as a SELECT with only a single table in the FROM clause.) For
4961** example, if the SQL is this:
4962**
4963** SELECT * FROM t1, t2, t3 WHERE ...;
4964**
4965** Then the code generated is conceptually like the following:
4966**
4967** foreach row1 in t1 do \ Code generated
danielk19774adee202004-05-08 08:23:19 +00004968** foreach row2 in t2 do |-- by sqlite3WhereBegin()
drhc27a1ce2002-06-14 20:58:45 +00004969** foreach row3 in t3 do /
4970** ...
4971** end \ Code generated
danielk19774adee202004-05-08 08:23:19 +00004972** end |-- by sqlite3WhereEnd()
drhc27a1ce2002-06-14 20:58:45 +00004973** end /
4974**
drh29dda4a2005-07-21 18:23:20 +00004975** Note that the loops might not be nested in the order in which they
4976** appear in the FROM clause if a different order is better able to make
drh51147ba2005-07-23 22:59:55 +00004977** use of indices. Note also that when the IN operator appears in
4978** the WHERE clause, it might result in additional nested loops for
4979** scanning through all values on the right-hand side of the IN.
drh29dda4a2005-07-21 18:23:20 +00004980**
drhc27a1ce2002-06-14 20:58:45 +00004981** There are Btree cursors associated with each table. t1 uses cursor
drh6a3ea0e2003-05-02 14:32:12 +00004982** number pTabList->a[0].iCursor. t2 uses the cursor pTabList->a[1].iCursor.
4983** And so forth. This routine generates code to open those VDBE cursors
danielk19774adee202004-05-08 08:23:19 +00004984** and sqlite3WhereEnd() generates the code to close them.
drhc27a1ce2002-06-14 20:58:45 +00004985**
drhe6f85e72004-12-25 01:03:13 +00004986** The code that sqlite3WhereBegin() generates leaves the cursors named
4987** in pTabList pointing at their appropriate entries. The [...] code
drhf0863fe2005-06-12 21:35:51 +00004988** can use OP_Column and OP_Rowid opcodes on these cursors to extract
drhe6f85e72004-12-25 01:03:13 +00004989** data from the various tables of the loop.
4990**
drhc27a1ce2002-06-14 20:58:45 +00004991** If the WHERE clause is empty, the foreach loops must each scan their
4992** entire tables. Thus a three-way join is an O(N^3) operation. But if
4993** the tables have indices and there are terms in the WHERE clause that
4994** refer to those indices, a complete table scan can be avoided and the
4995** code will run much faster. Most of the work of this routine is checking
4996** to see if there are indices that can be used to speed up the loop.
4997**
4998** Terms of the WHERE clause are also used to limit which rows actually
4999** make it to the "..." in the middle of the loop. After each "foreach",
5000** terms of the WHERE clause that use only terms in that loop and outer
5001** loops are evaluated and if false a jump is made around all subsequent
5002** inner loops (or around the "..." if the test occurs within the inner-
5003** most loop)
5004**
5005** OUTER JOINS
5006**
5007** An outer join of tables t1 and t2 is conceptally coded as follows:
5008**
5009** foreach row1 in t1 do
5010** flag = 0
5011** foreach row2 in t2 do
5012** start:
5013** ...
5014** flag = 1
5015** end
drhe3184742002-06-19 14:27:05 +00005016** if flag==0 then
5017** move the row2 cursor to a null row
5018** goto start
5019** fi
drhc27a1ce2002-06-14 20:58:45 +00005020** end
5021**
drhe3184742002-06-19 14:27:05 +00005022** ORDER BY CLAUSE PROCESSING
5023**
drh46ec5b62012-09-24 15:30:54 +00005024** pOrderBy is a pointer to the ORDER BY clause of a SELECT statement,
drhe3184742002-06-19 14:27:05 +00005025** if there is one. If there is no ORDER BY clause or if this routine
drh46ec5b62012-09-24 15:30:54 +00005026** is called from an UPDATE or DELETE statement, then pOrderBy is NULL.
drhe3184742002-06-19 14:27:05 +00005027**
5028** If an index can be used so that the natural output order of the table
5029** scan is correct for the ORDER BY clause, then that index is used and
drh46ec5b62012-09-24 15:30:54 +00005030** the returned WhereInfo.nOBSat field is set to pOrderBy->nExpr. This
5031** is an optimization that prevents an unnecessary sort of the result set
5032** if an index appropriate for the ORDER BY clause already exists.
drhe3184742002-06-19 14:27:05 +00005033**
5034** If the where clause loops cannot be arranged to provide the correct
drh46ec5b62012-09-24 15:30:54 +00005035** output order, then WhereInfo.nOBSat is 0.
drh75897232000-05-29 14:26:00 +00005036*/
danielk19774adee202004-05-08 08:23:19 +00005037WhereInfo *sqlite3WhereBegin(
danielk1977ed326d72004-11-16 15:50:19 +00005038 Parse *pParse, /* The parser context */
5039 SrcList *pTabList, /* A list of all tables to be scanned */
5040 Expr *pWhere, /* The WHERE clause */
drh46ec5b62012-09-24 15:30:54 +00005041 ExprList *pOrderBy, /* An ORDER BY clause, or NULL */
dan38cc40c2011-06-30 20:17:15 +00005042 ExprList *pDistinct, /* The select-list for DISTINCT queries - or NULL */
dan0efb72c2012-08-24 18:44:56 +00005043 u16 wctrlFlags, /* One of the WHERE_* flags defined in sqliteInt.h */
5044 int iIdxCur /* If WHERE_ONETABLE_ONLY is set, index cursor number */
drh75897232000-05-29 14:26:00 +00005045){
danielk1977be229652009-03-20 14:18:51 +00005046 int nByteWInfo; /* Num. bytes allocated for WhereInfo struct */
drhc01a3c12009-12-16 22:10:49 +00005047 int nTabList; /* Number of elements in pTabList */
drh75897232000-05-29 14:26:00 +00005048 WhereInfo *pWInfo; /* Will become the return value of this function */
5049 Vdbe *v = pParse->pVdbe; /* The virtual database engine */
drhfe05af82005-07-21 03:14:59 +00005050 Bitmask notReady; /* Cursors that are not yet positioned */
drh56f1b992012-09-25 14:29:39 +00005051 WhereBestIdx sWBI; /* Best index search context */
drh111a6a72008-12-21 03:51:16 +00005052 WhereMaskSet *pMaskSet; /* The expression mask set */
drh56f1b992012-09-25 14:29:39 +00005053 WhereLevel *pLevel; /* A single level in pWInfo->a[] */
5054 int iFrom; /* First unused FROM clause element */
drh111a6a72008-12-21 03:51:16 +00005055 int andFlags; /* AND-ed combination of all pWC->a[].wtFlags */
drh9cd1c992012-09-25 20:43:35 +00005056 int ii; /* Loop counter */
drh17435752007-08-16 04:30:38 +00005057 sqlite3 *db; /* Database connection */
drh75897232000-05-29 14:26:00 +00005058
drh56f1b992012-09-25 14:29:39 +00005059
5060 /* Variable initialization */
5061 memset(&sWBI, 0, sizeof(sWBI));
5062 sWBI.pParse = pParse;
5063
drh29dda4a2005-07-21 18:23:20 +00005064 /* The number of tables in the FROM clause is limited by the number of
drh1398ad32005-01-19 23:24:50 +00005065 ** bits in a Bitmask
5066 */
drh67ae0cb2010-04-08 14:38:51 +00005067 testcase( pTabList->nSrc==BMS );
drh29dda4a2005-07-21 18:23:20 +00005068 if( pTabList->nSrc>BMS ){
5069 sqlite3ErrorMsg(pParse, "at most %d tables in a join", BMS);
drh1398ad32005-01-19 23:24:50 +00005070 return 0;
5071 }
5072
drhc01a3c12009-12-16 22:10:49 +00005073 /* This function normally generates a nested loop for all tables in
5074 ** pTabList. But if the WHERE_ONETABLE_ONLY flag is set, then we should
5075 ** only generate code for the first table in pTabList and assume that
5076 ** any cursors associated with subsequent tables are uninitialized.
5077 */
5078 nTabList = (wctrlFlags & WHERE_ONETABLE_ONLY) ? 1 : pTabList->nSrc;
5079
drh75897232000-05-29 14:26:00 +00005080 /* Allocate and initialize the WhereInfo structure that will become the
danielk1977be229652009-03-20 14:18:51 +00005081 ** return value. A single allocation is used to store the WhereInfo
5082 ** struct, the contents of WhereInfo.a[], the WhereClause structure
5083 ** and the WhereMaskSet structure. Since WhereClause contains an 8-byte
5084 ** field (type Bitmask) it must be aligned on an 8-byte boundary on
5085 ** some architectures. Hence the ROUND8() below.
drh75897232000-05-29 14:26:00 +00005086 */
drh17435752007-08-16 04:30:38 +00005087 db = pParse->db;
drhc01a3c12009-12-16 22:10:49 +00005088 nByteWInfo = ROUND8(sizeof(WhereInfo)+(nTabList-1)*sizeof(WhereLevel));
danielk1977be229652009-03-20 14:18:51 +00005089 pWInfo = sqlite3DbMallocZero(db,
5090 nByteWInfo +
5091 sizeof(WhereClause) +
5092 sizeof(WhereMaskSet)
5093 );
drh17435752007-08-16 04:30:38 +00005094 if( db->mallocFailed ){
drh8b307fb2010-04-06 15:57:05 +00005095 sqlite3DbFree(db, pWInfo);
5096 pWInfo = 0;
danielk197785574e32008-10-06 05:32:18 +00005097 goto whereBeginError;
drh75897232000-05-29 14:26:00 +00005098 }
drhc01a3c12009-12-16 22:10:49 +00005099 pWInfo->nLevel = nTabList;
drh75897232000-05-29 14:26:00 +00005100 pWInfo->pParse = pParse;
5101 pWInfo->pTabList = pTabList;
danielk19774adee202004-05-08 08:23:19 +00005102 pWInfo->iBreak = sqlite3VdbeMakeLabel(v);
drh56f1b992012-09-25 14:29:39 +00005103 pWInfo->pWC = sWBI.pWC = (WhereClause *)&((u8 *)pWInfo)[nByteWInfo];
drh6df2acd2008-12-28 16:55:25 +00005104 pWInfo->wctrlFlags = wctrlFlags;
drh8b307fb2010-04-06 15:57:05 +00005105 pWInfo->savedNQueryLoop = pParse->nQueryLoop;
drh56f1b992012-09-25 14:29:39 +00005106 pMaskSet = (WhereMaskSet*)&sWBI.pWC[1];
drh46c35f92012-09-26 23:17:01 +00005107 sWBI.aLevel = pWInfo->a;
drh08192d52002-04-30 19:20:28 +00005108
drha9b1b912011-07-08 13:07:02 +00005109 /* Disable the DISTINCT optimization if SQLITE_DistinctOpt is set via
5110 ** sqlite3_test_ctrl(SQLITE_TESTCTRL_OPTIMIZATIONS,...) */
drh7e5418e2012-09-27 15:05:54 +00005111 if( OptimizationDisabled(db, SQLITE_DistinctOpt) ) pDistinct = 0;
drha9b1b912011-07-08 13:07:02 +00005112
drh111a6a72008-12-21 03:51:16 +00005113 /* Split the WHERE clause into separate subexpressions where each
5114 ** subexpression is separated by an AND operator.
5115 */
5116 initMaskSet(pMaskSet);
drh56f1b992012-09-25 14:29:39 +00005117 whereClauseInit(sWBI.pWC, pParse, pMaskSet, wctrlFlags);
drh111a6a72008-12-21 03:51:16 +00005118 sqlite3ExprCodeConstants(pParse, pWhere);
drh56f1b992012-09-25 14:29:39 +00005119 whereSplit(sWBI.pWC, pWhere, TK_AND); /* IMP: R-15842-53296 */
drh111a6a72008-12-21 03:51:16 +00005120
drh08192d52002-04-30 19:20:28 +00005121 /* Special case: a WHERE clause that is constant. Evaluate the
5122 ** expression and either jump over all of the code or fall thru.
5123 */
drhc01a3c12009-12-16 22:10:49 +00005124 if( pWhere && (nTabList==0 || sqlite3ExprIsConstantNotJoin(pWhere)) ){
drh35573352008-01-08 23:54:25 +00005125 sqlite3ExprIfFalse(pParse, pWhere, pWInfo->iBreak, SQLITE_JUMPIFNULL);
drhdf199a22002-06-14 22:38:41 +00005126 pWhere = 0;
drh08192d52002-04-30 19:20:28 +00005127 }
drh75897232000-05-29 14:26:00 +00005128
drh42165be2008-03-26 14:56:34 +00005129 /* Assign a bit from the bitmask to every term in the FROM clause.
5130 **
5131 ** When assigning bitmask values to FROM clause cursors, it must be
5132 ** the case that if X is the bitmask for the N-th FROM clause term then
5133 ** the bitmask for all FROM clause terms to the left of the N-th term
5134 ** is (X-1). An expression from the ON clause of a LEFT JOIN can use
5135 ** its Expr.iRightJoinTable value to find the bitmask of the right table
5136 ** of the join. Subtracting one from the right table bitmask gives a
5137 ** bitmask for all tables to the left of the join. Knowing the bitmask
5138 ** for all tables to the left of a left join is important. Ticket #3015.
danielk1977e672c8e2009-05-22 15:43:26 +00005139 **
drhc01a3c12009-12-16 22:10:49 +00005140 ** Note that bitmasks are created for all pTabList->nSrc tables in
5141 ** pTabList, not just the first nTabList tables. nTabList is normally
5142 ** equal to pTabList->nSrc but might be shortened to 1 if the
5143 ** WHERE_ONETABLE_ONLY flag is set.
drh42165be2008-03-26 14:56:34 +00005144 */
drh9cd1c992012-09-25 20:43:35 +00005145 for(ii=0; ii<pTabList->nSrc; ii++){
5146 createMask(pMaskSet, pTabList->a[ii].iCursor);
drh42165be2008-03-26 14:56:34 +00005147 }
5148#ifndef NDEBUG
5149 {
5150 Bitmask toTheLeft = 0;
drh9cd1c992012-09-25 20:43:35 +00005151 for(ii=0; ii<pTabList->nSrc; ii++){
5152 Bitmask m = getMask(pMaskSet, pTabList->a[ii].iCursor);
drh42165be2008-03-26 14:56:34 +00005153 assert( (m-1)==toTheLeft );
5154 toTheLeft |= m;
5155 }
5156 }
5157#endif
5158
drh29dda4a2005-07-21 18:23:20 +00005159 /* Analyze all of the subexpressions. Note that exprAnalyze() might
5160 ** add new virtual terms onto the end of the WHERE clause. We do not
5161 ** want to analyze these virtual terms, so start analyzing at the end
drhb6fb62d2005-09-20 08:47:20 +00005162 ** and work forward so that the added virtual terms are never processed.
drh75897232000-05-29 14:26:00 +00005163 */
drh56f1b992012-09-25 14:29:39 +00005164 exprAnalyzeAll(pTabList, sWBI.pWC);
drh17435752007-08-16 04:30:38 +00005165 if( db->mallocFailed ){
danielk197785574e32008-10-06 05:32:18 +00005166 goto whereBeginError;
drh0bbaa1b2005-08-19 19:14:12 +00005167 }
drh75897232000-05-29 14:26:00 +00005168
dan38cc40c2011-06-30 20:17:15 +00005169 /* Check if the DISTINCT qualifier, if there is one, is redundant.
5170 ** If it is, then set pDistinct to NULL and WhereInfo.eDistinct to
5171 ** WHERE_DISTINCT_UNIQUE to tell the caller to ignore the DISTINCT.
5172 */
drh56f1b992012-09-25 14:29:39 +00005173 if( pDistinct && isDistinctRedundant(pParse, pTabList, sWBI.pWC, pDistinct) ){
dan38cc40c2011-06-30 20:17:15 +00005174 pDistinct = 0;
5175 pWInfo->eDistinct = WHERE_DISTINCT_UNIQUE;
5176 }
5177
drh29dda4a2005-07-21 18:23:20 +00005178 /* Chose the best index to use for each table in the FROM clause.
5179 **
drh51147ba2005-07-23 22:59:55 +00005180 ** This loop fills in the following fields:
5181 **
5182 ** pWInfo->a[].pIdx The index to use for this level of the loop.
drh165be382008-12-05 02:36:33 +00005183 ** pWInfo->a[].wsFlags WHERE_xxx flags associated with pIdx
drh51147ba2005-07-23 22:59:55 +00005184 ** pWInfo->a[].nEq The number of == and IN constraints
danielk197785574e32008-10-06 05:32:18 +00005185 ** pWInfo->a[].iFrom Which term of the FROM clause is being coded
drh51147ba2005-07-23 22:59:55 +00005186 ** pWInfo->a[].iTabCur The VDBE cursor for the database table
5187 ** pWInfo->a[].iIdxCur The VDBE cursor for the index
drh111a6a72008-12-21 03:51:16 +00005188 ** pWInfo->a[].pTerm When wsFlags==WO_OR, the OR-clause term
drh51147ba2005-07-23 22:59:55 +00005189 **
5190 ** This loop also figures out the nesting order of tables in the FROM
5191 ** clause.
drh75897232000-05-29 14:26:00 +00005192 */
drh9cd1c992012-09-25 20:43:35 +00005193 sWBI.notValid = ~(Bitmask)0;
5194 sWBI.pOrderBy = pOrderBy;
5195 sWBI.n = nTabList;
5196 sWBI.pDistinct = pDistinct;
drh943af3c2005-07-29 19:43:58 +00005197 andFlags = ~0;
drh4f0c5872007-03-26 22:05:01 +00005198 WHERETRACE(("*** Optimizer Start ***\n"));
drh9cd1c992012-09-25 20:43:35 +00005199 for(sWBI.i=iFrom=0, pLevel=pWInfo->a; sWBI.i<nTabList; sWBI.i++, pLevel++){
drh111a6a72008-12-21 03:51:16 +00005200 WhereCost bestPlan; /* Most efficient plan seen so far */
drh29dda4a2005-07-21 18:23:20 +00005201 Index *pIdx; /* Index for FROM table at pTabItem */
drh29dda4a2005-07-21 18:23:20 +00005202 int j; /* For looping over FROM tables */
dan5236ac12009-08-13 07:09:33 +00005203 int bestJ = -1; /* The value of j */
drh29dda4a2005-07-21 18:23:20 +00005204 Bitmask m; /* Bitmask value for j or bestJ */
dan5236ac12009-08-13 07:09:33 +00005205 int isOptimal; /* Iterator for optimal/non-optimal search */
drh3bd5ab82013-01-16 00:46:09 +00005206 int ckOptimal; /* Do the optimal scan check */
drh5e377d92010-08-04 21:17:16 +00005207 int nUnconstrained; /* Number tables without INDEXED BY */
drhaa0ba432010-08-05 02:52:32 +00005208 Bitmask notIndexed; /* Mask of tables that cannot use an index */
drh29dda4a2005-07-21 18:23:20 +00005209
drh111a6a72008-12-21 03:51:16 +00005210 memset(&bestPlan, 0, sizeof(bestPlan));
5211 bestPlan.rCost = SQLITE_BIG_DBL;
drh9cd1c992012-09-25 20:43:35 +00005212 WHERETRACE(("*** Begin search for loop %d ***\n", sWBI.i));
drhdf26fd52006-06-06 11:45:54 +00005213
dan5236ac12009-08-13 07:09:33 +00005214 /* Loop through the remaining entries in the FROM clause to find the
drhed754ce2010-04-15 01:04:54 +00005215 ** next nested loop. The loop tests all FROM clause entries
dan5236ac12009-08-13 07:09:33 +00005216 ** either once or twice.
5217 **
drhed754ce2010-04-15 01:04:54 +00005218 ** The first test is always performed if there are two or more entries
5219 ** remaining and never performed if there is only one FROM clause entry
5220 ** to choose from. The first test looks for an "optimal" scan. In
dan5236ac12009-08-13 07:09:33 +00005221 ** this context an optimal scan is one that uses the same strategy
5222 ** for the given FROM clause entry as would be selected if the entry
drhd0015162009-08-21 13:22:25 +00005223 ** were used as the innermost nested loop. In other words, a table
5224 ** is chosen such that the cost of running that table cannot be reduced
drhed754ce2010-04-15 01:04:54 +00005225 ** by waiting for other tables to run first. This "optimal" test works
5226 ** by first assuming that the FROM clause is on the inner loop and finding
5227 ** its query plan, then checking to see if that query plan uses any
drh9cd1c992012-09-25 20:43:35 +00005228 ** other FROM clause terms that are sWBI.notValid. If no notValid terms
5229 ** are used then the "optimal" query plan works.
dan5236ac12009-08-13 07:09:33 +00005230 **
drh547caad2010-10-04 23:55:50 +00005231 ** Note that the WhereCost.nRow parameter for an optimal scan might
5232 ** not be as small as it would be if the table really were the innermost
5233 ** join. The nRow value can be reduced by WHERE clause constraints
5234 ** that do not use indices. But this nRow reduction only happens if the
5235 ** table really is the innermost join.
5236 **
drhed754ce2010-04-15 01:04:54 +00005237 ** The second loop iteration is only performed if no optimal scan
drh547caad2010-10-04 23:55:50 +00005238 ** strategies were found by the first iteration. This second iteration
5239 ** is used to search for the lowest cost scan overall.
dan5236ac12009-08-13 07:09:33 +00005240 **
drh5d5cf012013-01-15 16:15:28 +00005241 ** Without the optimal scan step (the first iteration) a suboptimal
5242 ** plan might be chosen for queries like this:
dan5236ac12009-08-13 07:09:33 +00005243 **
5244 ** CREATE TABLE t1(a, b);
5245 ** CREATE TABLE t2(c, d);
5246 ** SELECT * FROM t2, t1 WHERE t2.rowid = t1.a;
5247 **
5248 ** The best strategy is to iterate through table t1 first. However it
5249 ** is not possible to determine this with a simple greedy algorithm.
drh15564052010-09-25 22:32:56 +00005250 ** Since the cost of a linear scan through table t2 is the same
dan5236ac12009-08-13 07:09:33 +00005251 ** as the cost of a linear scan through table t1, a simple greedy
5252 ** algorithm may choose to use t2 for the outer loop, which is a much
5253 ** costlier approach.
5254 */
drh5e377d92010-08-04 21:17:16 +00005255 nUnconstrained = 0;
drhaa0ba432010-08-05 02:52:32 +00005256 notIndexed = 0;
drh3bd5ab82013-01-16 00:46:09 +00005257
5258 /* The optimal scan check only occurs if there are two or more tables
5259 ** available to be reordered */
5260 if( iFrom==nTabList-1 ){
5261 ckOptimal = 0; /* Common case of just one table in the FROM clause */
5262 }else{
5263 ckOptimal = -1;
drh56f1b992012-09-25 14:29:39 +00005264 for(j=iFrom, sWBI.pSrc=&pTabList->a[j]; j<nTabList; j++, sWBI.pSrc++){
drh56f1b992012-09-25 14:29:39 +00005265 m = getMask(pMaskSet, sWBI.pSrc->iCursor);
drh9cd1c992012-09-25 20:43:35 +00005266 if( (m & sWBI.notValid)==0 ){
dan5236ac12009-08-13 07:09:33 +00005267 if( j==iFrom ) iFrom++;
5268 continue;
5269 }
drh3bd5ab82013-01-16 00:46:09 +00005270 if( j>iFrom && (sWBI.pSrc->jointype & (JT_LEFT|JT_CROSS))!=0 ) break;
5271 if( ++ckOptimal ) break;
5272 if( (sWBI.pSrc->jointype & JT_LEFT)!=0 ) break;
5273 }
5274 }
5275 assert( ckOptimal==0 || ckOptimal==1 );
5276
5277 for(isOptimal=ckOptimal; isOptimal>=0 && bestJ<0; isOptimal--){
5278 for(j=iFrom, sWBI.pSrc=&pTabList->a[j]; j<nTabList; j++, sWBI.pSrc++){
5279 if( j>iFrom && (sWBI.pSrc->jointype & (JT_LEFT|JT_CROSS))!=0 ){
5280 /* This break and one like it in the ckOptimal computation loop
5281 ** above prevent table reordering across LEFT and CROSS JOINs.
5282 ** The LEFT JOIN case is necessary for correctness. The prohibition
5283 ** against reordering across a CROSS JOIN is an SQLite feature that
5284 ** allows the developer to control table reordering */
5285 break;
5286 }
5287 m = getMask(pMaskSet, sWBI.pSrc->iCursor);
5288 if( (m & sWBI.notValid)==0 ){
5289 assert( j>iFrom );
5290 continue;
5291 }
drh9cd1c992012-09-25 20:43:35 +00005292 sWBI.notReady = (isOptimal ? m : sWBI.notValid);
drh56f1b992012-09-25 14:29:39 +00005293 if( sWBI.pSrc->pIndex==0 ) nUnconstrained++;
dan5236ac12009-08-13 07:09:33 +00005294
drh8e4af1b2012-10-08 18:23:51 +00005295 WHERETRACE((" === trying table %d (%s) with isOptimal=%d ===\n",
drh1afcaae2012-10-02 01:10:00 +00005296 j, sWBI.pSrc->pTab->zName, isOptimal));
drh56f1b992012-09-25 14:29:39 +00005297 assert( sWBI.pSrc->pTab );
drh9eff6162006-06-12 21:59:13 +00005298#ifndef SQLITE_OMIT_VIRTUALTABLE
drh56f1b992012-09-25 14:29:39 +00005299 if( IsVirtual(sWBI.pSrc->pTab) ){
5300 sWBI.ppIdxInfo = &pWInfo->a[j].pIdxInfo;
5301 bestVirtualIndex(&sWBI);
dan5236ac12009-08-13 07:09:33 +00005302 }else
drh9eff6162006-06-12 21:59:13 +00005303#endif
dan5236ac12009-08-13 07:09:33 +00005304 {
drh56f1b992012-09-25 14:29:39 +00005305 bestBtreeIndex(&sWBI);
dan5236ac12009-08-13 07:09:33 +00005306 }
drh9cd1c992012-09-25 20:43:35 +00005307 assert( isOptimal || (sWBI.cost.used&sWBI.notValid)==0 );
dan5236ac12009-08-13 07:09:33 +00005308
drhaa0ba432010-08-05 02:52:32 +00005309 /* If an INDEXED BY clause is present, then the plan must use that
5310 ** index if it uses any index at all */
drh56f1b992012-09-25 14:29:39 +00005311 assert( sWBI.pSrc->pIndex==0
5312 || (sWBI.cost.plan.wsFlags & WHERE_NOT_FULLSCAN)==0
5313 || sWBI.cost.plan.u.pIdx==sWBI.pSrc->pIndex );
drhaa0ba432010-08-05 02:52:32 +00005314
drh56f1b992012-09-25 14:29:39 +00005315 if( isOptimal && (sWBI.cost.plan.wsFlags & WHERE_NOT_FULLSCAN)==0 ){
drhaa0ba432010-08-05 02:52:32 +00005316 notIndexed |= m;
5317 }
drh782d68a2012-11-09 17:59:26 +00005318 if( isOptimal ){
5319 pWInfo->a[j].rOptCost = sWBI.cost.rCost;
drh3bd5ab82013-01-16 00:46:09 +00005320 }else if( ckOptimal ){
drhea84a652013-01-15 18:49:07 +00005321 /* If two or more tables have nearly the same outer loop cost, but
drh782d68a2012-11-09 17:59:26 +00005322 ** very different inner loop (optimal) cost, we want to choose
5323 ** for the outer loop that table which benefits the least from
5324 ** being in the inner loop. The following code scales the
5325 ** outer loop cost estimate to accomplish that. */
5326 WHERETRACE((" scaling cost from %.1f to %.1f\n",
5327 sWBI.cost.rCost,
5328 sWBI.cost.rCost/pWInfo->a[j].rOptCost));
5329 sWBI.cost.rCost /= pWInfo->a[j].rOptCost;
5330 }
drhaa0ba432010-08-05 02:52:32 +00005331
drh5e377d92010-08-04 21:17:16 +00005332 /* Conditions under which this table becomes the best so far:
5333 **
5334 ** (1) The table must not depend on other tables that have not
drh9cd1c992012-09-25 20:43:35 +00005335 ** yet run. (In other words, it must not depend on tables
5336 ** in inner loops.)
drh5e377d92010-08-04 21:17:16 +00005337 **
drhada796b2012-11-09 18:22:26 +00005338 ** (2) (This rule was removed on 2012-11-09. The scaling of the
5339 ** cost using the optimal scan cost made this rule obsolete.)
drh5e377d92010-08-04 21:17:16 +00005340 **
drhaa0ba432010-08-05 02:52:32 +00005341 ** (3) All tables have an INDEXED BY clause or this table lacks an
drh5e377d92010-08-04 21:17:16 +00005342 ** INDEXED BY clause or this table uses the specific
drhaa0ba432010-08-05 02:52:32 +00005343 ** index specified by its INDEXED BY clause. This rule ensures
5344 ** that a best-so-far is always selected even if an impossible
5345 ** combination of INDEXED BY clauses are given. The error
5346 ** will be detected and relayed back to the application later.
5347 ** The NEVER() comes about because rule (2) above prevents
5348 ** An indexable full-table-scan from reaching rule (3).
5349 **
drhd663b5b2012-10-03 00:25:54 +00005350 ** (4) The plan cost must be lower than prior plans, where "cost"
5351 ** is defined by the compareCost() function above.
drh5e377d92010-08-04 21:17:16 +00005352 */
drh9cd1c992012-09-25 20:43:35 +00005353 if( (sWBI.cost.used&sWBI.notValid)==0 /* (1) */
drh56f1b992012-09-25 14:29:39 +00005354 && (nUnconstrained==0 || sWBI.pSrc->pIndex==0 /* (3) */
5355 || NEVER((sWBI.cost.plan.wsFlags & WHERE_NOT_FULLSCAN)!=0))
drhd663b5b2012-10-03 00:25:54 +00005356 && (bestJ<0 || compareCost(&sWBI.cost, &bestPlan)) /* (4) */
dan5236ac12009-08-13 07:09:33 +00005357 ){
drh8e4af1b2012-10-08 18:23:51 +00005358 WHERETRACE((" === table %d (%s) is best so far\n"
5359 " cost=%.1f, nRow=%.1f, nOBSat=%d, wsFlags=%08x\n",
drh1afcaae2012-10-02 01:10:00 +00005360 j, sWBI.pSrc->pTab->zName,
5361 sWBI.cost.rCost, sWBI.cost.plan.nRow,
drhd663b5b2012-10-03 00:25:54 +00005362 sWBI.cost.plan.nOBSat, sWBI.cost.plan.wsFlags));
drh56f1b992012-09-25 14:29:39 +00005363 bestPlan = sWBI.cost;
dan5236ac12009-08-13 07:09:33 +00005364 bestJ = j;
5365 }
drh3bd5ab82013-01-16 00:46:09 +00005366
5367 /* In a join like "w JOIN x LEFT JOIN y JOIN z" make sure that
5368 ** table y (and not table z) is always the next inner loop inside
5369 ** of table x. */
5370 if( (sWBI.pSrc->jointype & JT_LEFT)!=0 ) break;
drh9eff6162006-06-12 21:59:13 +00005371 }
drh29dda4a2005-07-21 18:23:20 +00005372 }
dan5236ac12009-08-13 07:09:33 +00005373 assert( bestJ>=0 );
drh9cd1c992012-09-25 20:43:35 +00005374 assert( sWBI.notValid & getMask(pMaskSet, pTabList->a[bestJ].iCursor) );
drh3bd5ab82013-01-16 00:46:09 +00005375 assert( bestJ==iFrom || (pTabList->a[iFrom].jointype & JT_LEFT)==0 );
5376 testcase( bestJ>iFrom && (pTabList->a[iFrom].jointype & JT_CROSS)!=0 );
5377 testcase( bestJ>iFrom && bestJ<nTabList-1
5378 && (pTabList->a[bestJ+1].jointype & JT_LEFT)!=0 );
drh1afcaae2012-10-02 01:10:00 +00005379 WHERETRACE(("*** Optimizer selects table %d (%s) for loop %d with:\n"
drhd663b5b2012-10-03 00:25:54 +00005380 " cost=%.1f, nRow=%.1f, nOBSat=%d, wsFlags=0x%08x\n",
drh1afcaae2012-10-02 01:10:00 +00005381 bestJ, pTabList->a[bestJ].pTab->zName,
5382 pLevel-pWInfo->a, bestPlan.rCost, bestPlan.plan.nRow,
drh5343b2d2012-09-27 19:53:38 +00005383 bestPlan.plan.nOBSat, bestPlan.plan.wsFlags));
dan38cc40c2011-06-30 20:17:15 +00005384 if( (bestPlan.plan.wsFlags & WHERE_DISTINCT)!=0 ){
5385 assert( pWInfo->eDistinct==0 );
5386 pWInfo->eDistinct = WHERE_DISTINCT_ORDERED;
5387 }
drh111a6a72008-12-21 03:51:16 +00005388 andFlags &= bestPlan.plan.wsFlags;
5389 pLevel->plan = bestPlan.plan;
drha578d042012-10-02 01:25:16 +00005390 pLevel->iTabCur = pTabList->a[bestJ].iCursor;
drh8b307fb2010-04-06 15:57:05 +00005391 testcase( bestPlan.plan.wsFlags & WHERE_INDEXED );
5392 testcase( bestPlan.plan.wsFlags & WHERE_TEMP_INDEX );
5393 if( bestPlan.plan.wsFlags & (WHERE_INDEXED|WHERE_TEMP_INDEX) ){
dan0efb72c2012-08-24 18:44:56 +00005394 if( (wctrlFlags & WHERE_ONETABLE_ONLY)
5395 && (bestPlan.plan.wsFlags & WHERE_TEMP_INDEX)==0
5396 ){
5397 pLevel->iIdxCur = iIdxCur;
5398 }else{
5399 pLevel->iIdxCur = pParse->nTab++;
5400 }
drhfe05af82005-07-21 03:14:59 +00005401 }else{
5402 pLevel->iIdxCur = -1;
drh6b563442001-11-07 16:48:26 +00005403 }
drh9cd1c992012-09-25 20:43:35 +00005404 sWBI.notValid &= ~getMask(pMaskSet, pTabList->a[bestJ].iCursor);
shaned87897d2009-01-30 05:40:27 +00005405 pLevel->iFrom = (u8)bestJ;
dan2ce22452010-11-08 19:01:16 +00005406 if( bestPlan.plan.nRow>=(double)1 ){
5407 pParse->nQueryLoop *= bestPlan.plan.nRow;
5408 }
danielk197785574e32008-10-06 05:32:18 +00005409
5410 /* Check that if the table scanned by this loop iteration had an
5411 ** INDEXED BY clause attached to it, that the named index is being
5412 ** used for the scan. If not, then query compilation has failed.
5413 ** Return an error.
5414 */
5415 pIdx = pTabList->a[bestJ].pIndex;
drh171256c2009-01-08 03:11:19 +00005416 if( pIdx ){
5417 if( (bestPlan.plan.wsFlags & WHERE_INDEXED)==0 ){
5418 sqlite3ErrorMsg(pParse, "cannot use index: %s", pIdx->zName);
5419 goto whereBeginError;
5420 }else{
5421 /* If an INDEXED BY clause is used, the bestIndex() function is
5422 ** guaranteed to find the index specified in the INDEXED BY clause
5423 ** if it find an index at all. */
5424 assert( bestPlan.plan.u.pIdx==pIdx );
5425 }
danielk197785574e32008-10-06 05:32:18 +00005426 }
drh75897232000-05-29 14:26:00 +00005427 }
drh4f0c5872007-03-26 22:05:01 +00005428 WHERETRACE(("*** Optimizer Finished ***\n"));
danielk19771d461462009-04-21 09:02:45 +00005429 if( pParse->nErr || db->mallocFailed ){
danielk197780442942008-12-24 11:25:39 +00005430 goto whereBeginError;
5431 }
drhd663b5b2012-10-03 00:25:54 +00005432 if( nTabList ){
5433 pLevel--;
5434 pWInfo->nOBSat = pLevel->plan.nOBSat;
5435 }else{
5436 pWInfo->nOBSat = 0;
5437 }
drh75897232000-05-29 14:26:00 +00005438
drh943af3c2005-07-29 19:43:58 +00005439 /* If the total query only selects a single row, then the ORDER BY
5440 ** clause is irrelevant.
5441 */
drh46ec5b62012-09-24 15:30:54 +00005442 if( (andFlags & WHERE_UNIQUE)!=0 && pOrderBy ){
drhd663b5b2012-10-03 00:25:54 +00005443 assert( nTabList==0 || (pLevel->plan.wsFlags & WHERE_ALL_UNIQUE)!=0 );
drh46ec5b62012-09-24 15:30:54 +00005444 pWInfo->nOBSat = pOrderBy->nExpr;
drh943af3c2005-07-29 19:43:58 +00005445 }
5446
drh08c88eb2008-04-10 13:33:18 +00005447 /* If the caller is an UPDATE or DELETE statement that is requesting
5448 ** to use a one-pass algorithm, determine if this is appropriate.
5449 ** The one-pass algorithm only works if the WHERE clause constraints
5450 ** the statement to update a single row.
5451 */
drh165be382008-12-05 02:36:33 +00005452 assert( (wctrlFlags & WHERE_ONEPASS_DESIRED)==0 || pWInfo->nLevel==1 );
5453 if( (wctrlFlags & WHERE_ONEPASS_DESIRED)!=0 && (andFlags & WHERE_UNIQUE)!=0 ){
drh08c88eb2008-04-10 13:33:18 +00005454 pWInfo->okOnePass = 1;
drh111a6a72008-12-21 03:51:16 +00005455 pWInfo->a[0].plan.wsFlags &= ~WHERE_IDX_ONLY;
drh08c88eb2008-04-10 13:33:18 +00005456 }
5457
drh9012bcb2004-12-19 00:11:35 +00005458 /* Open all tables in the pTabList and any indices selected for
5459 ** searching those tables.
5460 */
5461 sqlite3CodeVerifySchema(pParse, -1); /* Insert the cookie verifier Goto */
drh8b307fb2010-04-06 15:57:05 +00005462 notReady = ~(Bitmask)0;
drh95aa47b2010-11-16 02:49:15 +00005463 pWInfo->nRowOut = (double)1;
drh9cd1c992012-09-25 20:43:35 +00005464 for(ii=0, pLevel=pWInfo->a; ii<nTabList; ii++, pLevel++){
danielk1977da184232006-01-05 11:34:32 +00005465 Table *pTab; /* Table to open */
danielk1977da184232006-01-05 11:34:32 +00005466 int iDb; /* Index of database containing table/index */
drh56f1b992012-09-25 14:29:39 +00005467 struct SrcList_item *pTabItem;
drh9012bcb2004-12-19 00:11:35 +00005468
drh29dda4a2005-07-21 18:23:20 +00005469 pTabItem = &pTabList->a[pLevel->iFrom];
drh9012bcb2004-12-19 00:11:35 +00005470 pTab = pTabItem->pTab;
drh95aa47b2010-11-16 02:49:15 +00005471 pWInfo->nRowOut *= pLevel->plan.nRow;
danielk1977595a5232009-07-24 17:58:53 +00005472 iDb = sqlite3SchemaToIndex(db, pTab->pSchema);
drh424aab82010-04-06 18:28:20 +00005473 if( (pTab->tabFlags & TF_Ephemeral)!=0 || pTab->pSelect ){
drh75bb9f52010-04-06 18:51:42 +00005474 /* Do nothing */
5475 }else
drh9eff6162006-06-12 21:59:13 +00005476#ifndef SQLITE_OMIT_VIRTUALTABLE
drh111a6a72008-12-21 03:51:16 +00005477 if( (pLevel->plan.wsFlags & WHERE_VIRTUALTABLE)!=0 ){
danielk1977595a5232009-07-24 17:58:53 +00005478 const char *pVTab = (const char *)sqlite3GetVTable(db, pTab);
danielk197793626f42006-06-20 13:07:27 +00005479 int iCur = pTabItem->iCursor;
danielk1977595a5232009-07-24 17:58:53 +00005480 sqlite3VdbeAddOp4(v, OP_VOpen, iCur, 0, 0, pVTab, P4_VTAB);
drhfc5e5462012-12-03 17:04:40 +00005481 }else if( IsVirtual(pTab) ){
5482 /* noop */
drh9eff6162006-06-12 21:59:13 +00005483 }else
5484#endif
drh6df2acd2008-12-28 16:55:25 +00005485 if( (pLevel->plan.wsFlags & WHERE_IDX_ONLY)==0
drh9ef61f42011-10-07 14:40:59 +00005486 && (wctrlFlags & WHERE_OMIT_OPEN_CLOSE)==0 ){
drh08c88eb2008-04-10 13:33:18 +00005487 int op = pWInfo->okOnePass ? OP_OpenWrite : OP_OpenRead;
5488 sqlite3OpenTable(pParse, pTabItem->iCursor, iDb, pTab, op);
drh67ae0cb2010-04-08 14:38:51 +00005489 testcase( pTab->nCol==BMS-1 );
5490 testcase( pTab->nCol==BMS );
danielk197723432972008-11-17 16:42:00 +00005491 if( !pWInfo->okOnePass && pTab->nCol<BMS ){
danielk19779792eef2006-01-13 15:58:43 +00005492 Bitmask b = pTabItem->colUsed;
5493 int n = 0;
drh74161702006-02-24 02:53:49 +00005494 for(; b; b=b>>1, n++){}
drh8cff69d2009-11-12 19:59:44 +00005495 sqlite3VdbeChangeP4(v, sqlite3VdbeCurrentAddr(v)-1,
5496 SQLITE_INT_TO_PTR(n), P4_INT32);
danielk19779792eef2006-01-13 15:58:43 +00005497 assert( n<=pTab->nCol );
5498 }
danielk1977c00da102006-01-07 13:21:04 +00005499 }else{
5500 sqlite3TableLock(pParse, iDb, pTab->tnum, 0, pTab->zName);
drh9012bcb2004-12-19 00:11:35 +00005501 }
drhc6339082010-04-07 16:54:58 +00005502#ifndef SQLITE_OMIT_AUTOMATIC_INDEX
drh8b307fb2010-04-06 15:57:05 +00005503 if( (pLevel->plan.wsFlags & WHERE_TEMP_INDEX)!=0 ){
drh56f1b992012-09-25 14:29:39 +00005504 constructAutomaticIndex(pParse, sWBI.pWC, pTabItem, notReady, pLevel);
drhc6339082010-04-07 16:54:58 +00005505 }else
5506#endif
5507 if( (pLevel->plan.wsFlags & WHERE_INDEXED)!=0 ){
drh111a6a72008-12-21 03:51:16 +00005508 Index *pIx = pLevel->plan.u.pIdx;
danielk1977b3bf5562006-01-10 17:58:23 +00005509 KeyInfo *pKey = sqlite3IndexKeyinfo(pParse, pIx);
drhb0367fb2012-08-25 02:11:13 +00005510 int iIndexCur = pLevel->iIdxCur;
danielk1977da184232006-01-05 11:34:32 +00005511 assert( pIx->pSchema==pTab->pSchema );
drhb0367fb2012-08-25 02:11:13 +00005512 assert( iIndexCur>=0 );
5513 sqlite3VdbeAddOp4(v, OP_OpenRead, iIndexCur, pIx->tnum, iDb,
drh66a51672008-01-03 00:01:23 +00005514 (char*)pKey, P4_KEYINFO_HANDOFF);
danielk1977207872a2008-01-03 07:54:23 +00005515 VdbeComment((v, "%s", pIx->zName));
drh9012bcb2004-12-19 00:11:35 +00005516 }
danielk1977da184232006-01-05 11:34:32 +00005517 sqlite3CodeVerifySchema(pParse, iDb);
drh56f1b992012-09-25 14:29:39 +00005518 notReady &= ~getMask(sWBI.pWC->pMaskSet, pTabItem->iCursor);
drh9012bcb2004-12-19 00:11:35 +00005519 }
5520 pWInfo->iTop = sqlite3VdbeCurrentAddr(v);
drha21a64d2010-04-06 22:33:55 +00005521 if( db->mallocFailed ) goto whereBeginError;
drh9012bcb2004-12-19 00:11:35 +00005522
drh29dda4a2005-07-21 18:23:20 +00005523 /* Generate the code to do the search. Each iteration of the for
5524 ** loop below generates code for a single nested loop of the VM
5525 ** program.
drh75897232000-05-29 14:26:00 +00005526 */
drhfe05af82005-07-21 03:14:59 +00005527 notReady = ~(Bitmask)0;
drh9cd1c992012-09-25 20:43:35 +00005528 for(ii=0; ii<nTabList; ii++){
5529 pLevel = &pWInfo->a[ii];
5530 explainOneScan(pParse, pTabList, pLevel, ii, pLevel->iFrom, wctrlFlags);
5531 notReady = codeOneLoopStart(pWInfo, ii, wctrlFlags, notReady);
dan4a07e3d2010-11-09 14:48:59 +00005532 pWInfo->iContinue = pLevel->addrCont;
drh75897232000-05-29 14:26:00 +00005533 }
drh7ec764a2005-07-21 03:48:20 +00005534
5535#ifdef SQLITE_TEST /* For testing and debugging use only */
5536 /* Record in the query plan information about the current table
5537 ** and the index used to access it (if any). If the table itself
5538 ** is not used, its name is just '{}'. If no index is used
5539 ** the index is listed as "{}". If the primary key is used the
5540 ** index name is '*'.
5541 */
drh9cd1c992012-09-25 20:43:35 +00005542 for(ii=0; ii<nTabList; ii++){
drh7ec764a2005-07-21 03:48:20 +00005543 char *z;
5544 int n;
drh3f4d1d12012-09-15 18:45:54 +00005545 int w;
drh56f1b992012-09-25 14:29:39 +00005546 struct SrcList_item *pTabItem;
5547
drh9cd1c992012-09-25 20:43:35 +00005548 pLevel = &pWInfo->a[ii];
drh3f4d1d12012-09-15 18:45:54 +00005549 w = pLevel->plan.wsFlags;
drh29dda4a2005-07-21 18:23:20 +00005550 pTabItem = &pTabList->a[pLevel->iFrom];
drh7ec764a2005-07-21 03:48:20 +00005551 z = pTabItem->zAlias;
5552 if( z==0 ) z = pTabItem->pTab->zName;
drhea678832008-12-10 19:26:22 +00005553 n = sqlite3Strlen30(z);
drh7ec764a2005-07-21 03:48:20 +00005554 if( n+nQPlan < sizeof(sqlite3_query_plan)-10 ){
drh3f4d1d12012-09-15 18:45:54 +00005555 if( (w & WHERE_IDX_ONLY)!=0 && (w & WHERE_COVER_SCAN)==0 ){
drh5bb3eb92007-05-04 13:15:55 +00005556 memcpy(&sqlite3_query_plan[nQPlan], "{}", 2);
drh7ec764a2005-07-21 03:48:20 +00005557 nQPlan += 2;
5558 }else{
drh5bb3eb92007-05-04 13:15:55 +00005559 memcpy(&sqlite3_query_plan[nQPlan], z, n);
drh7ec764a2005-07-21 03:48:20 +00005560 nQPlan += n;
5561 }
5562 sqlite3_query_plan[nQPlan++] = ' ';
5563 }
drh3f4d1d12012-09-15 18:45:54 +00005564 testcase( w & WHERE_ROWID_EQ );
5565 testcase( w & WHERE_ROWID_RANGE );
5566 if( w & (WHERE_ROWID_EQ|WHERE_ROWID_RANGE) ){
drh5bb3eb92007-05-04 13:15:55 +00005567 memcpy(&sqlite3_query_plan[nQPlan], "* ", 2);
drh7ec764a2005-07-21 03:48:20 +00005568 nQPlan += 2;
drh3f4d1d12012-09-15 18:45:54 +00005569 }else if( (w & WHERE_INDEXED)!=0 && (w & WHERE_COVER_SCAN)==0 ){
drh111a6a72008-12-21 03:51:16 +00005570 n = sqlite3Strlen30(pLevel->plan.u.pIdx->zName);
drh7ec764a2005-07-21 03:48:20 +00005571 if( n+nQPlan < sizeof(sqlite3_query_plan)-2 ){
drh111a6a72008-12-21 03:51:16 +00005572 memcpy(&sqlite3_query_plan[nQPlan], pLevel->plan.u.pIdx->zName, n);
drh7ec764a2005-07-21 03:48:20 +00005573 nQPlan += n;
5574 sqlite3_query_plan[nQPlan++] = ' ';
5575 }
drh111a6a72008-12-21 03:51:16 +00005576 }else{
5577 memcpy(&sqlite3_query_plan[nQPlan], "{} ", 3);
5578 nQPlan += 3;
drh7ec764a2005-07-21 03:48:20 +00005579 }
5580 }
5581 while( nQPlan>0 && sqlite3_query_plan[nQPlan-1]==' ' ){
5582 sqlite3_query_plan[--nQPlan] = 0;
5583 }
5584 sqlite3_query_plan[nQPlan] = 0;
5585 nQPlan = 0;
5586#endif /* SQLITE_TEST // Testing and debugging use only */
5587
drh29dda4a2005-07-21 18:23:20 +00005588 /* Record the continuation address in the WhereInfo structure. Then
5589 ** clean up and return.
5590 */
drh75897232000-05-29 14:26:00 +00005591 return pWInfo;
drhe23399f2005-07-22 00:31:39 +00005592
5593 /* Jump here if malloc fails */
danielk197785574e32008-10-06 05:32:18 +00005594whereBeginError:
drh8b307fb2010-04-06 15:57:05 +00005595 if( pWInfo ){
5596 pParse->nQueryLoop = pWInfo->savedNQueryLoop;
5597 whereInfoFree(db, pWInfo);
5598 }
drhe23399f2005-07-22 00:31:39 +00005599 return 0;
drh75897232000-05-29 14:26:00 +00005600}
5601
5602/*
drhc27a1ce2002-06-14 20:58:45 +00005603** Generate the end of the WHERE loop. See comments on
danielk19774adee202004-05-08 08:23:19 +00005604** sqlite3WhereBegin() for additional information.
drh75897232000-05-29 14:26:00 +00005605*/
danielk19774adee202004-05-08 08:23:19 +00005606void sqlite3WhereEnd(WhereInfo *pWInfo){
drh633e6d52008-07-28 19:34:53 +00005607 Parse *pParse = pWInfo->pParse;
5608 Vdbe *v = pParse->pVdbe;
drh19a775c2000-06-05 18:54:46 +00005609 int i;
drh6b563442001-11-07 16:48:26 +00005610 WhereLevel *pLevel;
drhad3cab52002-05-24 02:04:32 +00005611 SrcList *pTabList = pWInfo->pTabList;
drh633e6d52008-07-28 19:34:53 +00005612 sqlite3 *db = pParse->db;
drh19a775c2000-06-05 18:54:46 +00005613
drh9012bcb2004-12-19 00:11:35 +00005614 /* Generate loop termination code.
5615 */
drhceea3322009-04-23 13:22:42 +00005616 sqlite3ExprCacheClear(pParse);
drhc01a3c12009-12-16 22:10:49 +00005617 for(i=pWInfo->nLevel-1; i>=0; i--){
drh6b563442001-11-07 16:48:26 +00005618 pLevel = &pWInfo->a[i];
drhb3190c12008-12-08 21:37:14 +00005619 sqlite3VdbeResolveLabel(v, pLevel->addrCont);
drh6b563442001-11-07 16:48:26 +00005620 if( pLevel->op!=OP_Noop ){
drh66a51672008-01-03 00:01:23 +00005621 sqlite3VdbeAddOp2(v, pLevel->op, pLevel->p1, pLevel->p2);
drhd1d38482008-10-07 23:46:38 +00005622 sqlite3VdbeChangeP5(v, pLevel->p5);
drh19a775c2000-06-05 18:54:46 +00005623 }
drh111a6a72008-12-21 03:51:16 +00005624 if( pLevel->plan.wsFlags & WHERE_IN_ABLE && pLevel->u.in.nIn>0 ){
drh72e8fa42007-03-28 14:30:06 +00005625 struct InLoop *pIn;
drhe23399f2005-07-22 00:31:39 +00005626 int j;
drhb3190c12008-12-08 21:37:14 +00005627 sqlite3VdbeResolveLabel(v, pLevel->addrNxt);
drh111a6a72008-12-21 03:51:16 +00005628 for(j=pLevel->u.in.nIn, pIn=&pLevel->u.in.aInLoop[j-1]; j>0; j--, pIn--){
drhb3190c12008-12-08 21:37:14 +00005629 sqlite3VdbeJumpHere(v, pIn->addrInTop+1);
drh2d96b932013-02-08 18:48:23 +00005630 sqlite3VdbeAddOp2(v, pIn->eEndLoopOp, pIn->iCur, pIn->addrInTop);
drhb3190c12008-12-08 21:37:14 +00005631 sqlite3VdbeJumpHere(v, pIn->addrInTop-1);
drhe23399f2005-07-22 00:31:39 +00005632 }
drh111a6a72008-12-21 03:51:16 +00005633 sqlite3DbFree(db, pLevel->u.in.aInLoop);
drhd99f7062002-06-08 23:25:08 +00005634 }
drhb3190c12008-12-08 21:37:14 +00005635 sqlite3VdbeResolveLabel(v, pLevel->addrBrk);
drhad2d8302002-05-24 20:31:36 +00005636 if( pLevel->iLeftJoin ){
5637 int addr;
drh3c84ddf2008-01-09 02:15:38 +00005638 addr = sqlite3VdbeAddOp1(v, OP_IfPos, pLevel->iLeftJoin);
drh35451c62009-11-12 04:26:39 +00005639 assert( (pLevel->plan.wsFlags & WHERE_IDX_ONLY)==0
5640 || (pLevel->plan.wsFlags & WHERE_INDEXED)!=0 );
5641 if( (pLevel->plan.wsFlags & WHERE_IDX_ONLY)==0 ){
5642 sqlite3VdbeAddOp1(v, OP_NullRow, pTabList->a[i].iCursor);
5643 }
drh9012bcb2004-12-19 00:11:35 +00005644 if( pLevel->iIdxCur>=0 ){
drh3c84ddf2008-01-09 02:15:38 +00005645 sqlite3VdbeAddOp1(v, OP_NullRow, pLevel->iIdxCur);
drh7f09b3e2002-08-13 13:15:49 +00005646 }
drh336a5302009-04-24 15:46:21 +00005647 if( pLevel->op==OP_Return ){
5648 sqlite3VdbeAddOp2(v, OP_Gosub, pLevel->p1, pLevel->addrFirst);
5649 }else{
5650 sqlite3VdbeAddOp2(v, OP_Goto, 0, pLevel->addrFirst);
5651 }
drhd654be82005-09-20 17:42:23 +00005652 sqlite3VdbeJumpHere(v, addr);
drhad2d8302002-05-24 20:31:36 +00005653 }
drh19a775c2000-06-05 18:54:46 +00005654 }
drh9012bcb2004-12-19 00:11:35 +00005655
5656 /* The "break" point is here, just past the end of the outer loop.
5657 ** Set it.
5658 */
danielk19774adee202004-05-08 08:23:19 +00005659 sqlite3VdbeResolveLabel(v, pWInfo->iBreak);
drh9012bcb2004-12-19 00:11:35 +00005660
drh29dda4a2005-07-21 18:23:20 +00005661 /* Close all of the cursors that were opened by sqlite3WhereBegin.
drh9012bcb2004-12-19 00:11:35 +00005662 */
drhc01a3c12009-12-16 22:10:49 +00005663 assert( pWInfo->nLevel==1 || pWInfo->nLevel==pTabList->nSrc );
5664 for(i=0, pLevel=pWInfo->a; i<pWInfo->nLevel; i++, pLevel++){
danbfca6a42012-08-24 10:52:35 +00005665 Index *pIdx = 0;
drh29dda4a2005-07-21 18:23:20 +00005666 struct SrcList_item *pTabItem = &pTabList->a[pLevel->iFrom];
drh9012bcb2004-12-19 00:11:35 +00005667 Table *pTab = pTabItem->pTab;
drh5cf590c2003-04-24 01:45:04 +00005668 assert( pTab!=0 );
drh4139c992010-04-07 14:59:45 +00005669 if( (pTab->tabFlags & TF_Ephemeral)==0
5670 && pTab->pSelect==0
drh9ef61f42011-10-07 14:40:59 +00005671 && (pWInfo->wctrlFlags & WHERE_OMIT_OPEN_CLOSE)==0
drh4139c992010-04-07 14:59:45 +00005672 ){
drh8b307fb2010-04-06 15:57:05 +00005673 int ws = pLevel->plan.wsFlags;
5674 if( !pWInfo->okOnePass && (ws & WHERE_IDX_ONLY)==0 ){
drh6df2acd2008-12-28 16:55:25 +00005675 sqlite3VdbeAddOp1(v, OP_Close, pTabItem->iCursor);
5676 }
drhf12cde52010-04-08 17:28:00 +00005677 if( (ws & WHERE_INDEXED)!=0 && (ws & WHERE_TEMP_INDEX)==0 ){
drh6df2acd2008-12-28 16:55:25 +00005678 sqlite3VdbeAddOp1(v, OP_Close, pLevel->iIdxCur);
5679 }
drh9012bcb2004-12-19 00:11:35 +00005680 }
5681
danielk197721de2e72007-11-29 17:43:27 +00005682 /* If this scan uses an index, make code substitutions to read data
5683 ** from the index in preference to the table. Sometimes, this means
5684 ** the table need never be read from. This is a performance boost,
5685 ** as the vdbe level waits until the table is read before actually
5686 ** seeking the table cursor to the record corresponding to the current
5687 ** position in the index.
drh9012bcb2004-12-19 00:11:35 +00005688 **
5689 ** Calls to the code generator in between sqlite3WhereBegin and
5690 ** sqlite3WhereEnd will have created code that references the table
5691 ** directly. This loop scans all that code looking for opcodes
5692 ** that reference the table and converts them into opcodes that
5693 ** reference the index.
5694 */
danbfca6a42012-08-24 10:52:35 +00005695 if( pLevel->plan.wsFlags & WHERE_INDEXED ){
5696 pIdx = pLevel->plan.u.pIdx;
5697 }else if( pLevel->plan.wsFlags & WHERE_MULTI_OR ){
drhd40e2082012-08-24 23:24:15 +00005698 pIdx = pLevel->u.pCovidx;
danbfca6a42012-08-24 10:52:35 +00005699 }
5700 if( pIdx && !db->mallocFailed){
danielk1977f0113002006-01-24 12:09:17 +00005701 int k, j, last;
drh9012bcb2004-12-19 00:11:35 +00005702 VdbeOp *pOp;
drh9012bcb2004-12-19 00:11:35 +00005703
drh9012bcb2004-12-19 00:11:35 +00005704 pOp = sqlite3VdbeGetOp(v, pWInfo->iTop);
5705 last = sqlite3VdbeCurrentAddr(v);
danielk1977f0113002006-01-24 12:09:17 +00005706 for(k=pWInfo->iTop; k<last; k++, pOp++){
drh9012bcb2004-12-19 00:11:35 +00005707 if( pOp->p1!=pLevel->iTabCur ) continue;
5708 if( pOp->opcode==OP_Column ){
drh9012bcb2004-12-19 00:11:35 +00005709 for(j=0; j<pIdx->nColumn; j++){
5710 if( pOp->p2==pIdx->aiColumn[j] ){
5711 pOp->p2 = j;
danielk197721de2e72007-11-29 17:43:27 +00005712 pOp->p1 = pLevel->iIdxCur;
drh9012bcb2004-12-19 00:11:35 +00005713 break;
5714 }
5715 }
drh35451c62009-11-12 04:26:39 +00005716 assert( (pLevel->plan.wsFlags & WHERE_IDX_ONLY)==0
5717 || j<pIdx->nColumn );
drhf0863fe2005-06-12 21:35:51 +00005718 }else if( pOp->opcode==OP_Rowid ){
drh9012bcb2004-12-19 00:11:35 +00005719 pOp->p1 = pLevel->iIdxCur;
drhf0863fe2005-06-12 21:35:51 +00005720 pOp->opcode = OP_IdxRowid;
drh9012bcb2004-12-19 00:11:35 +00005721 }
5722 }
drh6b563442001-11-07 16:48:26 +00005723 }
drh19a775c2000-06-05 18:54:46 +00005724 }
drh9012bcb2004-12-19 00:11:35 +00005725
5726 /* Final cleanup
5727 */
drhf12cde52010-04-08 17:28:00 +00005728 pParse->nQueryLoop = pWInfo->savedNQueryLoop;
5729 whereInfoFree(db, pWInfo);
drh75897232000-05-29 14:26:00 +00005730 return;
5731}