Fix a couple comment typos. No changes to code.
[sqlite.git] / src / parse.y
blobc9dbc767cdddd189f87228ed28fdf9750d1a4d45
1 /*
2 ** 2001 September 15
3 **
4 ** The author disclaims copyright to this source code. In place of
5 ** a legal notice, here is a blessing:
6 **
7 ** May you do good and not evil.
8 ** May you find forgiveness for yourself and forgive others.
9 ** May you share freely, never taking more than you give.
11 *************************************************************************
12 ** This file contains SQLite's grammar for SQL. Process this file
13 ** using the lemon parser generator to generate C code that runs
14 ** the parser. Lemon will also generate a header file containing
15 ** numeric codes for all of the tokens.
18 // All token codes are small integers with #defines that begin with "TK_"
19 %token_prefix TK_
21 // The type of the data attached to each token is Token. This is also the
22 // default type for non-terminals.
24 %token_type {Token}
25 %default_type {Token}
27 // The generated parser function takes a 4th argument as follows:
28 %extra_argument {Parse *pParse}
30 // This code runs whenever there is a syntax error
32 %syntax_error {
33 UNUSED_PARAMETER(yymajor); /* Silence some compiler warnings */
34 assert( TOKEN.z[0] ); /* The tokenizer always gives us a token */
35 sqlite3ErrorMsg(pParse, "near \"%T\": syntax error", &TOKEN);
37 %stack_overflow {
38 sqlite3ErrorMsg(pParse, "parser stack overflow");
41 // The name of the generated procedure that implements the parser
42 // is as follows:
43 %name sqlite3Parser
45 // The following text is included near the beginning of the C source
46 // code file that implements the parser.
48 %include {
49 #include "sqliteInt.h"
52 ** Disable all error recovery processing in the parser push-down
53 ** automaton.
55 #define YYNOERRORRECOVERY 1
58 ** Make yytestcase() the same as testcase()
60 #define yytestcase(X) testcase(X)
63 ** Indicate that sqlite3ParserFree() will never be called with a null
64 ** pointer.
66 #define YYPARSEFREENEVERNULL 1
69 ** Alternative datatype for the argument to the malloc() routine passed
70 ** into sqlite3ParserAlloc(). The default is size_t.
72 #define YYMALLOCARGTYPE u64
75 ** An instance of this structure holds information about the
76 ** LIMIT clause of a SELECT statement.
78 struct LimitVal {
79 Expr *pLimit; /* The LIMIT expression. NULL if there is no limit */
80 Expr *pOffset; /* The OFFSET expression. NULL if there is none */
84 ** An instance of the following structure describes the event of a
85 ** TRIGGER. "a" is the event type, one of TK_UPDATE, TK_INSERT,
86 ** TK_DELETE, or TK_INSTEAD. If the event is of the form
88 ** UPDATE ON (a,b,c)
90 ** Then the "b" IdList records the list "a,b,c".
92 struct TrigEvent { int a; IdList * b; };
95 ** Disable lookaside memory allocation for objects that might be
96 ** shared across database connections.
98 static void disableLookaside(Parse *pParse){
99 pParse->disableLookaside++;
100 pParse->db->lookaside.bDisable++;
103 } // end %include
105 // Input is a single SQL command
106 input ::= cmdlist.
107 cmdlist ::= cmdlist ecmd.
108 cmdlist ::= ecmd.
109 ecmd ::= SEMI.
110 ecmd ::= explain cmdx SEMI.
111 explain ::= .
112 %ifndef SQLITE_OMIT_EXPLAIN
113 explain ::= EXPLAIN. { pParse->explain = 1; }
114 explain ::= EXPLAIN QUERY PLAN. { pParse->explain = 2; }
115 %endif SQLITE_OMIT_EXPLAIN
116 cmdx ::= cmd. { sqlite3FinishCoding(pParse); }
118 ///////////////////// Begin and end transactions. ////////////////////////////
121 cmd ::= BEGIN transtype(Y) trans_opt. {sqlite3BeginTransaction(pParse, Y);}
122 trans_opt ::= .
123 trans_opt ::= TRANSACTION.
124 trans_opt ::= TRANSACTION nm.
125 %type transtype {int}
126 transtype(A) ::= . {A = TK_DEFERRED;}
127 transtype(A) ::= DEFERRED(X). {A = @X; /*A-overwrites-X*/}
128 transtype(A) ::= IMMEDIATE(X). {A = @X; /*A-overwrites-X*/}
129 transtype(A) ::= EXCLUSIVE(X). {A = @X; /*A-overwrites-X*/}
130 cmd ::= COMMIT trans_opt. {sqlite3CommitTransaction(pParse);}
131 cmd ::= END trans_opt. {sqlite3CommitTransaction(pParse);}
132 cmd ::= ROLLBACK trans_opt. {sqlite3RollbackTransaction(pParse);}
134 savepoint_opt ::= SAVEPOINT.
135 savepoint_opt ::= .
136 cmd ::= SAVEPOINT nm(X). {
137 sqlite3Savepoint(pParse, SAVEPOINT_BEGIN, &X);
139 cmd ::= RELEASE savepoint_opt nm(X). {
140 sqlite3Savepoint(pParse, SAVEPOINT_RELEASE, &X);
142 cmd ::= ROLLBACK trans_opt TO savepoint_opt nm(X). {
143 sqlite3Savepoint(pParse, SAVEPOINT_ROLLBACK, &X);
146 ///////////////////// The CREATE TABLE statement ////////////////////////////
148 cmd ::= create_table create_table_args.
149 create_table ::= createkw temp(T) TABLE ifnotexists(E) nm(Y) dbnm(Z). {
150 sqlite3StartTable(pParse,&Y,&Z,T,0,0,E);
152 createkw(A) ::= CREATE(A). {disableLookaside(pParse);}
154 %type ifnotexists {int}
155 ifnotexists(A) ::= . {A = 0;}
156 ifnotexists(A) ::= IF NOT EXISTS. {A = 1;}
157 %type temp {int}
158 %ifndef SQLITE_OMIT_TEMPDB
159 temp(A) ::= TEMP. {A = 1;}
160 %endif SQLITE_OMIT_TEMPDB
161 temp(A) ::= . {A = 0;}
162 create_table_args ::= LP columnlist conslist_opt(X) RP(E) table_options(F). {
163 sqlite3EndTable(pParse,&X,&E,F,0);
165 create_table_args ::= AS select(S). {
166 sqlite3EndTable(pParse,0,0,0,S);
167 sqlite3SelectDelete(pParse->db, S);
169 %type table_options {int}
170 table_options(A) ::= . {A = 0;}
171 table_options(A) ::= WITHOUT nm(X). {
172 if( X.n==5 && sqlite3_strnicmp(X.z,"rowid",5)==0 ){
173 A = TF_WithoutRowid | TF_NoVisibleRowid;
174 }else{
175 A = 0;
176 sqlite3ErrorMsg(pParse, "unknown table option: %.*s", X.n, X.z);
179 columnlist ::= columnlist COMMA columnname carglist.
180 columnlist ::= columnname carglist.
181 columnname(A) ::= nm(A) typetoken(Y). {sqlite3AddColumn(pParse,&A,&Y);}
183 // Define operator precedence early so that this is the first occurrence
184 // of the operator tokens in the grammer. Keeping the operators together
185 // causes them to be assigned integer values that are close together,
186 // which keeps parser tables smaller.
188 // The token values assigned to these symbols is determined by the order
189 // in which lemon first sees them. It must be the case that ISNULL/NOTNULL,
190 // NE/EQ, GT/LE, and GE/LT are separated by only a single value. See
191 // the sqlite3ExprIfFalse() routine for additional information on this
192 // constraint.
194 %left OR.
195 %left AND.
196 %right NOT.
197 %left IS MATCH LIKE_KW BETWEEN IN ISNULL NOTNULL NE EQ.
198 %left GT LE LT GE.
199 %right ESCAPE.
200 %left BITAND BITOR LSHIFT RSHIFT.
201 %left PLUS MINUS.
202 %left STAR SLASH REM.
203 %left CONCAT.
204 %left COLLATE.
205 %right BITNOT.
207 // An IDENTIFIER can be a generic identifier, or one of several
208 // keywords. Any non-standard keyword can also be an identifier.
210 %token_class id ID|INDEXED.
212 // The following directive causes tokens ABORT, AFTER, ASC, etc. to
213 // fallback to ID if they will not parse as their original value.
214 // This obviates the need for the "id" nonterminal.
216 %fallback ID
217 ABORT ACTION AFTER ANALYZE ASC ATTACH BEFORE BEGIN BY CASCADE CAST COLUMNKW
218 CONFLICT DATABASE DEFERRED DESC DETACH EACH END EXCLUSIVE EXPLAIN FAIL FOR
219 IGNORE IMMEDIATE INITIALLY INSTEAD LIKE_KW MATCH NO PLAN
220 QUERY KEY OF OFFSET PRAGMA RAISE RECURSIVE RELEASE REPLACE RESTRICT ROW
221 ROLLBACK SAVEPOINT TEMP TRIGGER VACUUM VIEW VIRTUAL WITH WITHOUT
222 %ifdef SQLITE_OMIT_COMPOUND_SELECT
223 EXCEPT INTERSECT UNION
224 %endif SQLITE_OMIT_COMPOUND_SELECT
225 REINDEX RENAME CTIME_KW IF
227 %wildcard ANY.
230 // And "ids" is an identifer-or-string.
232 %token_class ids ID|STRING.
234 // The name of a column or table can be any of the following:
236 %type nm {Token}
237 nm(A) ::= id(A).
238 nm(A) ::= STRING(A).
239 nm(A) ::= JOIN_KW(A).
241 // A typetoken is really zero or more tokens that form a type name such
242 // as can be found after the column name in a CREATE TABLE statement.
243 // Multiple tokens are concatenated to form the value of the typetoken.
245 %type typetoken {Token}
246 typetoken(A) ::= . {A.n = 0; A.z = 0;}
247 typetoken(A) ::= typename(A).
248 typetoken(A) ::= typename(A) LP signed RP(Y). {
249 A.n = (int)(&Y.z[Y.n] - A.z);
251 typetoken(A) ::= typename(A) LP signed COMMA signed RP(Y). {
252 A.n = (int)(&Y.z[Y.n] - A.z);
254 %type typename {Token}
255 typename(A) ::= ids(A).
256 typename(A) ::= typename(A) ids(Y). {A.n=Y.n+(int)(Y.z-A.z);}
257 signed ::= plus_num.
258 signed ::= minus_num.
260 // "carglist" is a list of additional constraints that come after the
261 // column name and column type in a CREATE TABLE statement.
263 carglist ::= carglist ccons.
264 carglist ::= .
265 ccons ::= CONSTRAINT nm(X). {pParse->constraintName = X;}
266 ccons ::= DEFAULT term(X). {sqlite3AddDefaultValue(pParse,&X);}
267 ccons ::= DEFAULT LP expr(X) RP. {sqlite3AddDefaultValue(pParse,&X);}
268 ccons ::= DEFAULT PLUS term(X). {sqlite3AddDefaultValue(pParse,&X);}
269 ccons ::= DEFAULT MINUS(A) term(X). {
270 ExprSpan v;
271 v.pExpr = sqlite3PExpr(pParse, TK_UMINUS, X.pExpr, 0);
272 v.zStart = A.z;
273 v.zEnd = X.zEnd;
274 sqlite3AddDefaultValue(pParse,&v);
276 ccons ::= DEFAULT id(X). {
277 ExprSpan v;
278 spanExpr(&v, pParse, TK_STRING, X);
279 sqlite3AddDefaultValue(pParse,&v);
282 // In addition to the type name, we also care about the primary key and
283 // UNIQUE constraints.
285 ccons ::= NULL onconf.
286 ccons ::= NOT NULL onconf(R). {sqlite3AddNotNull(pParse, R);}
287 ccons ::= PRIMARY KEY sortorder(Z) onconf(R) autoinc(I).
288 {sqlite3AddPrimaryKey(pParse,0,R,I,Z);}
289 ccons ::= UNIQUE onconf(R). {sqlite3CreateIndex(pParse,0,0,0,0,R,0,0,0,0,
290 SQLITE_IDXTYPE_UNIQUE);}
291 ccons ::= CHECK LP expr(X) RP. {sqlite3AddCheckConstraint(pParse,X.pExpr);}
292 ccons ::= REFERENCES nm(T) eidlist_opt(TA) refargs(R).
293 {sqlite3CreateForeignKey(pParse,0,&T,TA,R);}
294 ccons ::= defer_subclause(D). {sqlite3DeferForeignKey(pParse,D);}
295 ccons ::= COLLATE ids(C). {sqlite3AddCollateType(pParse, &C);}
297 // The optional AUTOINCREMENT keyword
298 %type autoinc {int}
299 autoinc(X) ::= . {X = 0;}
300 autoinc(X) ::= AUTOINCR. {X = 1;}
302 // The next group of rules parses the arguments to a REFERENCES clause
303 // that determine if the referential integrity checking is deferred or
304 // or immediate and which determine what action to take if a ref-integ
305 // check fails.
307 %type refargs {int}
308 refargs(A) ::= . { A = OE_None*0x0101; /* EV: R-19803-45884 */}
309 refargs(A) ::= refargs(A) refarg(Y). { A = (A & ~Y.mask) | Y.value; }
310 %type refarg {struct {int value; int mask;}}
311 refarg(A) ::= MATCH nm. { A.value = 0; A.mask = 0x000000; }
312 refarg(A) ::= ON INSERT refact. { A.value = 0; A.mask = 0x000000; }
313 refarg(A) ::= ON DELETE refact(X). { A.value = X; A.mask = 0x0000ff; }
314 refarg(A) ::= ON UPDATE refact(X). { A.value = X<<8; A.mask = 0x00ff00; }
315 %type refact {int}
316 refact(A) ::= SET NULL. { A = OE_SetNull; /* EV: R-33326-45252 */}
317 refact(A) ::= SET DEFAULT. { A = OE_SetDflt; /* EV: R-33326-45252 */}
318 refact(A) ::= CASCADE. { A = OE_Cascade; /* EV: R-33326-45252 */}
319 refact(A) ::= RESTRICT. { A = OE_Restrict; /* EV: R-33326-45252 */}
320 refact(A) ::= NO ACTION. { A = OE_None; /* EV: R-33326-45252 */}
321 %type defer_subclause {int}
322 defer_subclause(A) ::= NOT DEFERRABLE init_deferred_pred_opt. {A = 0;}
323 defer_subclause(A) ::= DEFERRABLE init_deferred_pred_opt(X). {A = X;}
324 %type init_deferred_pred_opt {int}
325 init_deferred_pred_opt(A) ::= . {A = 0;}
326 init_deferred_pred_opt(A) ::= INITIALLY DEFERRED. {A = 1;}
327 init_deferred_pred_opt(A) ::= INITIALLY IMMEDIATE. {A = 0;}
329 conslist_opt(A) ::= . {A.n = 0; A.z = 0;}
330 conslist_opt(A) ::= COMMA(A) conslist.
331 conslist ::= conslist tconscomma tcons.
332 conslist ::= tcons.
333 tconscomma ::= COMMA. {pParse->constraintName.n = 0;}
334 tconscomma ::= .
335 tcons ::= CONSTRAINT nm(X). {pParse->constraintName = X;}
336 tcons ::= PRIMARY KEY LP sortlist(X) autoinc(I) RP onconf(R).
337 {sqlite3AddPrimaryKey(pParse,X,R,I,0);}
338 tcons ::= UNIQUE LP sortlist(X) RP onconf(R).
339 {sqlite3CreateIndex(pParse,0,0,0,X,R,0,0,0,0,
340 SQLITE_IDXTYPE_UNIQUE);}
341 tcons ::= CHECK LP expr(E) RP onconf.
342 {sqlite3AddCheckConstraint(pParse,E.pExpr);}
343 tcons ::= FOREIGN KEY LP eidlist(FA) RP
344 REFERENCES nm(T) eidlist_opt(TA) refargs(R) defer_subclause_opt(D). {
345 sqlite3CreateForeignKey(pParse, FA, &T, TA, R);
346 sqlite3DeferForeignKey(pParse, D);
348 %type defer_subclause_opt {int}
349 defer_subclause_opt(A) ::= . {A = 0;}
350 defer_subclause_opt(A) ::= defer_subclause(A).
352 // The following is a non-standard extension that allows us to declare the
353 // default behavior when there is a constraint conflict.
355 %type onconf {int}
356 %type orconf {int}
357 %type resolvetype {int}
358 onconf(A) ::= . {A = OE_Default;}
359 onconf(A) ::= ON CONFLICT resolvetype(X). {A = X;}
360 orconf(A) ::= . {A = OE_Default;}
361 orconf(A) ::= OR resolvetype(X). {A = X;}
362 resolvetype(A) ::= raisetype(A).
363 resolvetype(A) ::= IGNORE. {A = OE_Ignore;}
364 resolvetype(A) ::= REPLACE. {A = OE_Replace;}
366 ////////////////////////// The DROP TABLE /////////////////////////////////////
368 cmd ::= DROP TABLE ifexists(E) fullname(X). {
369 sqlite3DropTable(pParse, X, 0, E);
371 %type ifexists {int}
372 ifexists(A) ::= IF EXISTS. {A = 1;}
373 ifexists(A) ::= . {A = 0;}
375 ///////////////////// The CREATE VIEW statement /////////////////////////////
377 %ifndef SQLITE_OMIT_VIEW
378 cmd ::= createkw(X) temp(T) VIEW ifnotexists(E) nm(Y) dbnm(Z) eidlist_opt(C)
379 AS select(S). {
380 sqlite3CreateView(pParse, &X, &Y, &Z, C, S, T, E);
382 cmd ::= DROP VIEW ifexists(E) fullname(X). {
383 sqlite3DropTable(pParse, X, 1, E);
385 %endif SQLITE_OMIT_VIEW
387 //////////////////////// The SELECT statement /////////////////////////////////
389 cmd ::= select(X). {
390 SelectDest dest = {SRT_Output, 0, 0, 0, 0, 0};
391 sqlite3Select(pParse, X, &dest);
392 sqlite3SelectDelete(pParse->db, X);
395 %type select {Select*}
396 %destructor select {sqlite3SelectDelete(pParse->db, $$);}
397 %type selectnowith {Select*}
398 %destructor selectnowith {sqlite3SelectDelete(pParse->db, $$);}
399 %type oneselect {Select*}
400 %destructor oneselect {sqlite3SelectDelete(pParse->db, $$);}
402 %include {
404 ** For a compound SELECT statement, make sure p->pPrior->pNext==p for
405 ** all elements in the list. And make sure list length does not exceed
406 ** SQLITE_LIMIT_COMPOUND_SELECT.
408 static void parserDoubleLinkSelect(Parse *pParse, Select *p){
409 if( p->pPrior ){
410 Select *pNext = 0, *pLoop;
411 int mxSelect, cnt = 0;
412 for(pLoop=p; pLoop; pNext=pLoop, pLoop=pLoop->pPrior, cnt++){
413 pLoop->pNext = pNext;
414 pLoop->selFlags |= SF_Compound;
416 if( (p->selFlags & SF_MultiValue)==0 &&
417 (mxSelect = pParse->db->aLimit[SQLITE_LIMIT_COMPOUND_SELECT])>0 &&
418 cnt>mxSelect
420 sqlite3ErrorMsg(pParse, "too many terms in compound SELECT");
426 select(A) ::= with(W) selectnowith(X). {
427 Select *p = X;
428 if( p ){
429 p->pWith = W;
430 parserDoubleLinkSelect(pParse, p);
431 }else{
432 sqlite3WithDelete(pParse->db, W);
434 A = p; /*A-overwrites-W*/
437 selectnowith(A) ::= oneselect(A).
438 %ifndef SQLITE_OMIT_COMPOUND_SELECT
439 selectnowith(A) ::= selectnowith(A) multiselect_op(Y) oneselect(Z). {
440 Select *pRhs = Z;
441 Select *pLhs = A;
442 if( pRhs && pRhs->pPrior ){
443 SrcList *pFrom;
444 Token x;
445 x.n = 0;
446 parserDoubleLinkSelect(pParse, pRhs);
447 pFrom = sqlite3SrcListAppendFromTerm(pParse,0,0,0,&x,pRhs,0,0);
448 pRhs = sqlite3SelectNew(pParse,0,pFrom,0,0,0,0,0,0,0);
450 if( pRhs ){
451 pRhs->op = (u8)Y;
452 pRhs->pPrior = pLhs;
453 if( ALWAYS(pLhs) ) pLhs->selFlags &= ~SF_MultiValue;
454 pRhs->selFlags &= ~SF_MultiValue;
455 if( Y!=TK_ALL ) pParse->hasCompound = 1;
456 }else{
457 sqlite3SelectDelete(pParse->db, pLhs);
459 A = pRhs;
461 %type multiselect_op {int}
462 multiselect_op(A) ::= UNION(OP). {A = @OP; /*A-overwrites-OP*/}
463 multiselect_op(A) ::= UNION ALL. {A = TK_ALL;}
464 multiselect_op(A) ::= EXCEPT|INTERSECT(OP). {A = @OP; /*A-overwrites-OP*/}
465 %endif SQLITE_OMIT_COMPOUND_SELECT
466 oneselect(A) ::= SELECT(S) distinct(D) selcollist(W) from(X) where_opt(Y)
467 groupby_opt(P) having_opt(Q) orderby_opt(Z) limit_opt(L). {
468 #if SELECTTRACE_ENABLED
469 Token s = S; /*A-overwrites-S*/
470 #endif
471 A = sqlite3SelectNew(pParse,W,X,Y,P,Q,Z,D,L.pLimit,L.pOffset);
472 #if SELECTTRACE_ENABLED
473 /* Populate the Select.zSelName[] string that is used to help with
474 ** query planner debugging, to differentiate between multiple Select
475 ** objects in a complex query.
477 ** If the SELECT keyword is immediately followed by a C-style comment
478 ** then extract the first few alphanumeric characters from within that
479 ** comment to be the zSelName value. Otherwise, the label is #N where
480 ** is an integer that is incremented with each SELECT statement seen.
482 if( A!=0 ){
483 const char *z = s.z+6;
484 int i;
485 sqlite3_snprintf(sizeof(A->zSelName), A->zSelName, "#%d",
486 ++pParse->nSelect);
487 while( z[0]==' ' ) z++;
488 if( z[0]=='/' && z[1]=='*' ){
489 z += 2;
490 while( z[0]==' ' ) z++;
491 for(i=0; sqlite3Isalnum(z[i]); i++){}
492 sqlite3_snprintf(sizeof(A->zSelName), A->zSelName, "%.*s", i, z);
495 #endif /* SELECTRACE_ENABLED */
497 oneselect(A) ::= values(A).
499 %type values {Select*}
500 %destructor values {sqlite3SelectDelete(pParse->db, $$);}
501 values(A) ::= VALUES LP nexprlist(X) RP. {
502 A = sqlite3SelectNew(pParse,X,0,0,0,0,0,SF_Values,0,0);
504 values(A) ::= values(A) COMMA LP exprlist(Y) RP. {
505 Select *pRight, *pLeft = A;
506 pRight = sqlite3SelectNew(pParse,Y,0,0,0,0,0,SF_Values|SF_MultiValue,0,0);
507 if( ALWAYS(pLeft) ) pLeft->selFlags &= ~SF_MultiValue;
508 if( pRight ){
509 pRight->op = TK_ALL;
510 pRight->pPrior = pLeft;
511 A = pRight;
512 }else{
513 A = pLeft;
517 // The "distinct" nonterminal is true (1) if the DISTINCT keyword is
518 // present and false (0) if it is not.
520 %type distinct {int}
521 distinct(A) ::= DISTINCT. {A = SF_Distinct;}
522 distinct(A) ::= ALL. {A = SF_All;}
523 distinct(A) ::= . {A = 0;}
525 // selcollist is a list of expressions that are to become the return
526 // values of the SELECT statement. The "*" in statements like
527 // "SELECT * FROM ..." is encoded as a special expression with an
528 // opcode of TK_ASTERISK.
530 %type selcollist {ExprList*}
531 %destructor selcollist {sqlite3ExprListDelete(pParse->db, $$);}
532 %type sclp {ExprList*}
533 %destructor sclp {sqlite3ExprListDelete(pParse->db, $$);}
534 sclp(A) ::= selcollist(A) COMMA.
535 sclp(A) ::= . {A = 0;}
536 selcollist(A) ::= sclp(A) expr(X) as(Y). {
537 A = sqlite3ExprListAppend(pParse, A, X.pExpr);
538 if( Y.n>0 ) sqlite3ExprListSetName(pParse, A, &Y, 1);
539 sqlite3ExprListSetSpan(pParse,A,&X);
541 selcollist(A) ::= sclp(A) STAR. {
542 Expr *p = sqlite3Expr(pParse->db, TK_ASTERISK, 0);
543 A = sqlite3ExprListAppend(pParse, A, p);
545 selcollist(A) ::= sclp(A) nm(X) DOT STAR. {
546 Expr *pRight = sqlite3PExpr(pParse, TK_ASTERISK, 0, 0);
547 Expr *pLeft = sqlite3ExprAlloc(pParse->db, TK_ID, &X, 1);
548 Expr *pDot = sqlite3PExpr(pParse, TK_DOT, pLeft, pRight);
549 A = sqlite3ExprListAppend(pParse,A, pDot);
552 // An option "AS <id>" phrase that can follow one of the expressions that
553 // define the result set, or one of the tables in the FROM clause.
555 %type as {Token}
556 as(X) ::= AS nm(Y). {X = Y;}
557 as(X) ::= ids(X).
558 as(X) ::= . {X.n = 0; X.z = 0;}
561 %type seltablist {SrcList*}
562 %destructor seltablist {sqlite3SrcListDelete(pParse->db, $$);}
563 %type stl_prefix {SrcList*}
564 %destructor stl_prefix {sqlite3SrcListDelete(pParse->db, $$);}
565 %type from {SrcList*}
566 %destructor from {sqlite3SrcListDelete(pParse->db, $$);}
568 // A complete FROM clause.
570 from(A) ::= . {A = sqlite3DbMallocZero(pParse->db, sizeof(*A));}
571 from(A) ::= FROM seltablist(X). {
572 A = X;
573 sqlite3SrcListShiftJoinType(A);
576 // "seltablist" is a "Select Table List" - the content of the FROM clause
577 // in a SELECT statement. "stl_prefix" is a prefix of this list.
579 stl_prefix(A) ::= seltablist(A) joinop(Y). {
580 if( ALWAYS(A && A->nSrc>0) ) A->a[A->nSrc-1].fg.jointype = (u8)Y;
582 stl_prefix(A) ::= . {A = 0;}
583 seltablist(A) ::= stl_prefix(A) nm(Y) dbnm(D) as(Z) indexed_opt(I)
584 on_opt(N) using_opt(U). {
585 A = sqlite3SrcListAppendFromTerm(pParse,A,&Y,&D,&Z,0,N,U);
586 sqlite3SrcListIndexedBy(pParse, A, &I);
588 seltablist(A) ::= stl_prefix(A) nm(Y) dbnm(D) LP exprlist(E) RP as(Z)
589 on_opt(N) using_opt(U). {
590 A = sqlite3SrcListAppendFromTerm(pParse,A,&Y,&D,&Z,0,N,U);
591 sqlite3SrcListFuncArgs(pParse, A, E);
593 %ifndef SQLITE_OMIT_SUBQUERY
594 seltablist(A) ::= stl_prefix(A) LP select(S) RP
595 as(Z) on_opt(N) using_opt(U). {
596 A = sqlite3SrcListAppendFromTerm(pParse,A,0,0,&Z,S,N,U);
598 seltablist(A) ::= stl_prefix(A) LP seltablist(F) RP
599 as(Z) on_opt(N) using_opt(U). {
600 if( A==0 && Z.n==0 && N==0 && U==0 ){
601 A = F;
602 }else if( F->nSrc==1 ){
603 A = sqlite3SrcListAppendFromTerm(pParse,A,0,0,&Z,0,N,U);
604 if( A ){
605 struct SrcList_item *pNew = &A->a[A->nSrc-1];
606 struct SrcList_item *pOld = F->a;
607 pNew->zName = pOld->zName;
608 pNew->zDatabase = pOld->zDatabase;
609 pNew->pSelect = pOld->pSelect;
610 pOld->zName = pOld->zDatabase = 0;
611 pOld->pSelect = 0;
613 sqlite3SrcListDelete(pParse->db, F);
614 }else{
615 Select *pSubquery;
616 sqlite3SrcListShiftJoinType(F);
617 pSubquery = sqlite3SelectNew(pParse,0,F,0,0,0,0,SF_NestedFrom,0,0);
618 A = sqlite3SrcListAppendFromTerm(pParse,A,0,0,&Z,pSubquery,N,U);
621 %endif SQLITE_OMIT_SUBQUERY
623 %type dbnm {Token}
624 dbnm(A) ::= . {A.z=0; A.n=0;}
625 dbnm(A) ::= DOT nm(X). {A = X;}
627 %type fullname {SrcList*}
628 %destructor fullname {sqlite3SrcListDelete(pParse->db, $$);}
629 fullname(A) ::= nm(X) dbnm(Y).
630 {A = sqlite3SrcListAppend(pParse->db,0,&X,&Y); /*A-overwrites-X*/}
632 %type joinop {int}
633 joinop(X) ::= COMMA|JOIN. { X = JT_INNER; }
634 joinop(X) ::= JOIN_KW(A) JOIN.
635 {X = sqlite3JoinType(pParse,&A,0,0); /*X-overwrites-A*/}
636 joinop(X) ::= JOIN_KW(A) nm(B) JOIN.
637 {X = sqlite3JoinType(pParse,&A,&B,0); /*X-overwrites-A*/}
638 joinop(X) ::= JOIN_KW(A) nm(B) nm(C) JOIN.
639 {X = sqlite3JoinType(pParse,&A,&B,&C);/*X-overwrites-A*/}
641 %type on_opt {Expr*}
642 %destructor on_opt {sqlite3ExprDelete(pParse->db, $$);}
643 on_opt(N) ::= ON expr(E). {N = E.pExpr;}
644 on_opt(N) ::= . {N = 0;}
646 // Note that this block abuses the Token type just a little. If there is
647 // no "INDEXED BY" clause, the returned token is empty (z==0 && n==0). If
648 // there is an INDEXED BY clause, then the token is populated as per normal,
649 // with z pointing to the token data and n containing the number of bytes
650 // in the token.
652 // If there is a "NOT INDEXED" clause, then (z==0 && n==1), which is
653 // normally illegal. The sqlite3SrcListIndexedBy() function
654 // recognizes and interprets this as a special case.
656 %type indexed_opt {Token}
657 indexed_opt(A) ::= . {A.z=0; A.n=0;}
658 indexed_opt(A) ::= INDEXED BY nm(X). {A = X;}
659 indexed_opt(A) ::= NOT INDEXED. {A.z=0; A.n=1;}
661 %type using_opt {IdList*}
662 %destructor using_opt {sqlite3IdListDelete(pParse->db, $$);}
663 using_opt(U) ::= USING LP idlist(L) RP. {U = L;}
664 using_opt(U) ::= . {U = 0;}
667 %type orderby_opt {ExprList*}
668 %destructor orderby_opt {sqlite3ExprListDelete(pParse->db, $$);}
670 // the sortlist non-terminal stores a list of expression where each
671 // expression is optionally followed by ASC or DESC to indicate the
672 // sort order.
674 %type sortlist {ExprList*}
675 %destructor sortlist {sqlite3ExprListDelete(pParse->db, $$);}
677 orderby_opt(A) ::= . {A = 0;}
678 orderby_opt(A) ::= ORDER BY sortlist(X). {A = X;}
679 sortlist(A) ::= sortlist(A) COMMA expr(Y) sortorder(Z). {
680 A = sqlite3ExprListAppend(pParse,A,Y.pExpr);
681 sqlite3ExprListSetSortOrder(A,Z);
683 sortlist(A) ::= expr(Y) sortorder(Z). {
684 A = sqlite3ExprListAppend(pParse,0,Y.pExpr); /*A-overwrites-Y*/
685 sqlite3ExprListSetSortOrder(A,Z);
688 %type sortorder {int}
690 sortorder(A) ::= ASC. {A = SQLITE_SO_ASC;}
691 sortorder(A) ::= DESC. {A = SQLITE_SO_DESC;}
692 sortorder(A) ::= . {A = SQLITE_SO_UNDEFINED;}
694 %type groupby_opt {ExprList*}
695 %destructor groupby_opt {sqlite3ExprListDelete(pParse->db, $$);}
696 groupby_opt(A) ::= . {A = 0;}
697 groupby_opt(A) ::= GROUP BY nexprlist(X). {A = X;}
699 %type having_opt {Expr*}
700 %destructor having_opt {sqlite3ExprDelete(pParse->db, $$);}
701 having_opt(A) ::= . {A = 0;}
702 having_opt(A) ::= HAVING expr(X). {A = X.pExpr;}
704 %type limit_opt {struct LimitVal}
706 // The destructor for limit_opt will never fire in the current grammar.
707 // The limit_opt non-terminal only occurs at the end of a single production
708 // rule for SELECT statements. As soon as the rule that create the
709 // limit_opt non-terminal reduces, the SELECT statement rule will also
710 // reduce. So there is never a limit_opt non-terminal on the stack
711 // except as a transient. So there is never anything to destroy.
713 //%destructor limit_opt {
714 // sqlite3ExprDelete(pParse->db, $$.pLimit);
715 // sqlite3ExprDelete(pParse->db, $$.pOffset);
717 limit_opt(A) ::= . {A.pLimit = 0; A.pOffset = 0;}
718 limit_opt(A) ::= LIMIT expr(X). {A.pLimit = X.pExpr; A.pOffset = 0;}
719 limit_opt(A) ::= LIMIT expr(X) OFFSET expr(Y).
720 {A.pLimit = X.pExpr; A.pOffset = Y.pExpr;}
721 limit_opt(A) ::= LIMIT expr(X) COMMA expr(Y).
722 {A.pOffset = X.pExpr; A.pLimit = Y.pExpr;}
724 /////////////////////////// The DELETE statement /////////////////////////////
726 %ifdef SQLITE_ENABLE_UPDATE_DELETE_LIMIT
727 cmd ::= with(C) DELETE FROM fullname(X) indexed_opt(I) where_opt(W)
728 orderby_opt(O) limit_opt(L). {
729 sqlite3WithPush(pParse, C, 1);
730 sqlite3SrcListIndexedBy(pParse, X, &I);
731 W = sqlite3LimitWhere(pParse, X, W, O, L.pLimit, L.pOffset, "DELETE");
732 sqlite3DeleteFrom(pParse,X,W);
734 %endif
735 %ifndef SQLITE_ENABLE_UPDATE_DELETE_LIMIT
736 cmd ::= with(C) DELETE FROM fullname(X) indexed_opt(I) where_opt(W). {
737 sqlite3WithPush(pParse, C, 1);
738 sqlite3SrcListIndexedBy(pParse, X, &I);
739 sqlite3DeleteFrom(pParse,X,W);
741 %endif
743 %type where_opt {Expr*}
744 %destructor where_opt {sqlite3ExprDelete(pParse->db, $$);}
746 where_opt(A) ::= . {A = 0;}
747 where_opt(A) ::= WHERE expr(X). {A = X.pExpr;}
749 ////////////////////////// The UPDATE command ////////////////////////////////
751 %ifdef SQLITE_ENABLE_UPDATE_DELETE_LIMIT
752 cmd ::= with(C) UPDATE orconf(R) fullname(X) indexed_opt(I) SET setlist(Y)
753 where_opt(W) orderby_opt(O) limit_opt(L). {
754 sqlite3WithPush(pParse, C, 1);
755 sqlite3SrcListIndexedBy(pParse, X, &I);
756 sqlite3ExprListCheckLength(pParse,Y,"set list");
757 W = sqlite3LimitWhere(pParse, X, W, O, L.pLimit, L.pOffset, "UPDATE");
758 sqlite3Update(pParse,X,Y,W,R);
760 %endif
761 %ifndef SQLITE_ENABLE_UPDATE_DELETE_LIMIT
762 cmd ::= with(C) UPDATE orconf(R) fullname(X) indexed_opt(I) SET setlist(Y)
763 where_opt(W). {
764 sqlite3WithPush(pParse, C, 1);
765 sqlite3SrcListIndexedBy(pParse, X, &I);
766 sqlite3ExprListCheckLength(pParse,Y,"set list");
767 sqlite3Update(pParse,X,Y,W,R);
769 %endif
771 %type setlist {ExprList*}
772 %destructor setlist {sqlite3ExprListDelete(pParse->db, $$);}
774 setlist(A) ::= setlist(A) COMMA nm(X) EQ expr(Y). {
775 A = sqlite3ExprListAppend(pParse, A, Y.pExpr);
776 sqlite3ExprListSetName(pParse, A, &X, 1);
778 setlist(A) ::= setlist(A) COMMA LP idlist(X) RP EQ expr(Y). {
779 A = sqlite3ExprListAppendVector(pParse, A, X, Y.pExpr);
781 setlist(A) ::= nm(X) EQ expr(Y). {
782 A = sqlite3ExprListAppend(pParse, 0, Y.pExpr);
783 sqlite3ExprListSetName(pParse, A, &X, 1);
785 setlist(A) ::= LP idlist(X) RP EQ expr(Y). {
786 A = sqlite3ExprListAppendVector(pParse, 0, X, Y.pExpr);
789 ////////////////////////// The INSERT command /////////////////////////////////
791 cmd ::= with(W) insert_cmd(R) INTO fullname(X) idlist_opt(F) select(S). {
792 sqlite3WithPush(pParse, W, 1);
793 sqlite3Insert(pParse, X, S, F, R);
795 cmd ::= with(W) insert_cmd(R) INTO fullname(X) idlist_opt(F) DEFAULT VALUES.
797 sqlite3WithPush(pParse, W, 1);
798 sqlite3Insert(pParse, X, 0, F, R);
801 %type insert_cmd {int}
802 insert_cmd(A) ::= INSERT orconf(R). {A = R;}
803 insert_cmd(A) ::= REPLACE. {A = OE_Replace;}
805 %type idlist_opt {IdList*}
806 %destructor idlist_opt {sqlite3IdListDelete(pParse->db, $$);}
807 %type idlist {IdList*}
808 %destructor idlist {sqlite3IdListDelete(pParse->db, $$);}
810 idlist_opt(A) ::= . {A = 0;}
811 idlist_opt(A) ::= LP idlist(X) RP. {A = X;}
812 idlist(A) ::= idlist(A) COMMA nm(Y).
813 {A = sqlite3IdListAppend(pParse->db,A,&Y);}
814 idlist(A) ::= nm(Y).
815 {A = sqlite3IdListAppend(pParse->db,0,&Y); /*A-overwrites-Y*/}
817 /////////////////////////// Expression Processing /////////////////////////////
820 %type expr {ExprSpan}
821 %destructor expr {sqlite3ExprDelete(pParse->db, $$.pExpr);}
822 %type term {ExprSpan}
823 %destructor term {sqlite3ExprDelete(pParse->db, $$.pExpr);}
825 %include {
826 /* This is a utility routine used to set the ExprSpan.zStart and
827 ** ExprSpan.zEnd values of pOut so that the span covers the complete
828 ** range of text beginning with pStart and going to the end of pEnd.
830 static void spanSet(ExprSpan *pOut, Token *pStart, Token *pEnd){
831 pOut->zStart = pStart->z;
832 pOut->zEnd = &pEnd->z[pEnd->n];
835 /* Construct a new Expr object from a single identifier. Use the
836 ** new Expr to populate pOut. Set the span of pOut to be the identifier
837 ** that created the expression.
839 static void spanExpr(ExprSpan *pOut, Parse *pParse, int op, Token t){
840 Expr *p = sqlite3DbMallocRawNN(pParse->db, sizeof(Expr)+t.n+1);
841 if( p ){
842 memset(p, 0, sizeof(Expr));
843 p->op = (u8)op;
844 p->flags = EP_Leaf;
845 p->iAgg = -1;
846 p->u.zToken = (char*)&p[1];
847 memcpy(p->u.zToken, t.z, t.n);
848 p->u.zToken[t.n] = 0;
849 if( sqlite3Isquote(p->u.zToken[0]) ){
850 if( p->u.zToken[0]=='"' ) p->flags |= EP_DblQuoted;
851 sqlite3Dequote(p->u.zToken);
853 #if SQLITE_MAX_EXPR_DEPTH>0
854 p->nHeight = 1;
855 #endif
857 pOut->pExpr = p;
858 pOut->zStart = t.z;
859 pOut->zEnd = &t.z[t.n];
863 expr(A) ::= term(A).
864 expr(A) ::= LP(B) expr(X) RP(E).
865 {spanSet(&A,&B,&E); /*A-overwrites-B*/ A.pExpr = X.pExpr;}
866 term(A) ::= NULL(X). {spanExpr(&A,pParse,@X,X);/*A-overwrites-X*/}
867 expr(A) ::= id(X). {spanExpr(&A,pParse,TK_ID,X); /*A-overwrites-X*/}
868 expr(A) ::= JOIN_KW(X). {spanExpr(&A,pParse,TK_ID,X); /*A-overwrites-X*/}
869 expr(A) ::= nm(X) DOT nm(Y). {
870 Expr *temp1 = sqlite3ExprAlloc(pParse->db, TK_ID, &X, 1);
871 Expr *temp2 = sqlite3ExprAlloc(pParse->db, TK_ID, &Y, 1);
872 spanSet(&A,&X,&Y); /*A-overwrites-X*/
873 A.pExpr = sqlite3PExpr(pParse, TK_DOT, temp1, temp2);
875 expr(A) ::= nm(X) DOT nm(Y) DOT nm(Z). {
876 Expr *temp1 = sqlite3ExprAlloc(pParse->db, TK_ID, &X, 1);
877 Expr *temp2 = sqlite3ExprAlloc(pParse->db, TK_ID, &Y, 1);
878 Expr *temp3 = sqlite3ExprAlloc(pParse->db, TK_ID, &Z, 1);
879 Expr *temp4 = sqlite3PExpr(pParse, TK_DOT, temp2, temp3);
880 spanSet(&A,&X,&Z); /*A-overwrites-X*/
881 A.pExpr = sqlite3PExpr(pParse, TK_DOT, temp1, temp4);
883 term(A) ::= FLOAT|BLOB(X). {spanExpr(&A,pParse,@X,X);/*A-overwrites-X*/}
884 term(A) ::= STRING(X). {spanExpr(&A,pParse,@X,X);/*A-overwrites-X*/}
885 term(A) ::= INTEGER(X). {
886 A.pExpr = sqlite3ExprAlloc(pParse->db, TK_INTEGER, &X, 1);
887 A.zStart = X.z;
888 A.zEnd = X.z + X.n;
889 if( A.pExpr ) A.pExpr->flags |= EP_Leaf;
891 expr(A) ::= VARIABLE(X). {
892 if( !(X.z[0]=='#' && sqlite3Isdigit(X.z[1])) ){
893 u32 n = X.n;
894 spanExpr(&A, pParse, TK_VARIABLE, X);
895 sqlite3ExprAssignVarNumber(pParse, A.pExpr, n);
896 }else{
897 /* When doing a nested parse, one can include terms in an expression
898 ** that look like this: #1 #2 ... These terms refer to registers
899 ** in the virtual machine. #N is the N-th register. */
900 Token t = X; /*A-overwrites-X*/
901 assert( t.n>=2 );
902 spanSet(&A, &t, &t);
903 if( pParse->nested==0 ){
904 sqlite3ErrorMsg(pParse, "near \"%T\": syntax error", &t);
905 A.pExpr = 0;
906 }else{
907 A.pExpr = sqlite3PExpr(pParse, TK_REGISTER, 0, 0);
908 if( A.pExpr ) sqlite3GetInt32(&t.z[1], &A.pExpr->iTable);
912 expr(A) ::= expr(A) COLLATE ids(C). {
913 A.pExpr = sqlite3ExprAddCollateToken(pParse, A.pExpr, &C, 1);
914 A.zEnd = &C.z[C.n];
916 %ifndef SQLITE_OMIT_CAST
917 expr(A) ::= CAST(X) LP expr(E) AS typetoken(T) RP(Y). {
918 spanSet(&A,&X,&Y); /*A-overwrites-X*/
919 A.pExpr = sqlite3ExprAlloc(pParse->db, TK_CAST, &T, 1);
920 sqlite3ExprAttachSubtrees(pParse->db, A.pExpr, E.pExpr, 0);
922 %endif SQLITE_OMIT_CAST
923 expr(A) ::= id(X) LP distinct(D) exprlist(Y) RP(E). {
924 if( Y && Y->nExpr>pParse->db->aLimit[SQLITE_LIMIT_FUNCTION_ARG] ){
925 sqlite3ErrorMsg(pParse, "too many arguments on function %T", &X);
927 A.pExpr = sqlite3ExprFunction(pParse, Y, &X);
928 spanSet(&A,&X,&E);
929 if( D==SF_Distinct && A.pExpr ){
930 A.pExpr->flags |= EP_Distinct;
933 expr(A) ::= id(X) LP STAR RP(E). {
934 A.pExpr = sqlite3ExprFunction(pParse, 0, &X);
935 spanSet(&A,&X,&E);
937 term(A) ::= CTIME_KW(OP). {
938 A.pExpr = sqlite3ExprFunction(pParse, 0, &OP);
939 spanSet(&A, &OP, &OP);
942 %include {
943 /* This routine constructs a binary expression node out of two ExprSpan
944 ** objects and uses the result to populate a new ExprSpan object.
946 static void spanBinaryExpr(
947 Parse *pParse, /* The parsing context. Errors accumulate here */
948 int op, /* The binary operation */
949 ExprSpan *pLeft, /* The left operand, and output */
950 ExprSpan *pRight /* The right operand */
952 pLeft->pExpr = sqlite3PExpr(pParse, op, pLeft->pExpr, pRight->pExpr);
953 pLeft->zEnd = pRight->zEnd;
956 /* If doNot is true, then add a TK_NOT Expr-node wrapper around the
957 ** outside of *ppExpr.
959 static void exprNot(Parse *pParse, int doNot, ExprSpan *pSpan){
960 if( doNot ){
961 pSpan->pExpr = sqlite3PExpr(pParse, TK_NOT, pSpan->pExpr, 0);
966 expr(A) ::= LP(L) nexprlist(X) COMMA expr(Y) RP(R). {
967 ExprList *pList = sqlite3ExprListAppend(pParse, X, Y.pExpr);
968 A.pExpr = sqlite3PExpr(pParse, TK_VECTOR, 0, 0);
969 if( A.pExpr ){
970 A.pExpr->x.pList = pList;
971 spanSet(&A, &L, &R);
972 }else{
973 sqlite3ExprListDelete(pParse->db, pList);
977 expr(A) ::= expr(A) AND(OP) expr(Y). {spanBinaryExpr(pParse,@OP,&A,&Y);}
978 expr(A) ::= expr(A) OR(OP) expr(Y). {spanBinaryExpr(pParse,@OP,&A,&Y);}
979 expr(A) ::= expr(A) LT|GT|GE|LE(OP) expr(Y).
980 {spanBinaryExpr(pParse,@OP,&A,&Y);}
981 expr(A) ::= expr(A) EQ|NE(OP) expr(Y). {spanBinaryExpr(pParse,@OP,&A,&Y);}
982 expr(A) ::= expr(A) BITAND|BITOR|LSHIFT|RSHIFT(OP) expr(Y).
983 {spanBinaryExpr(pParse,@OP,&A,&Y);}
984 expr(A) ::= expr(A) PLUS|MINUS(OP) expr(Y).
985 {spanBinaryExpr(pParse,@OP,&A,&Y);}
986 expr(A) ::= expr(A) STAR|SLASH|REM(OP) expr(Y).
987 {spanBinaryExpr(pParse,@OP,&A,&Y);}
988 expr(A) ::= expr(A) CONCAT(OP) expr(Y). {spanBinaryExpr(pParse,@OP,&A,&Y);}
989 %type likeop {Token}
990 likeop(A) ::= LIKE_KW|MATCH(X). {A=X;/*A-overwrites-X*/}
991 likeop(A) ::= NOT LIKE_KW|MATCH(X). {A=X; A.n|=0x80000000; /*A-overwrite-X*/}
992 expr(A) ::= expr(A) likeop(OP) expr(Y). [LIKE_KW] {
993 ExprList *pList;
994 int bNot = OP.n & 0x80000000;
995 OP.n &= 0x7fffffff;
996 pList = sqlite3ExprListAppend(pParse,0, Y.pExpr);
997 pList = sqlite3ExprListAppend(pParse,pList, A.pExpr);
998 A.pExpr = sqlite3ExprFunction(pParse, pList, &OP);
999 exprNot(pParse, bNot, &A);
1000 A.zEnd = Y.zEnd;
1001 if( A.pExpr ) A.pExpr->flags |= EP_InfixFunc;
1003 expr(A) ::= expr(A) likeop(OP) expr(Y) ESCAPE expr(E). [LIKE_KW] {
1004 ExprList *pList;
1005 int bNot = OP.n & 0x80000000;
1006 OP.n &= 0x7fffffff;
1007 pList = sqlite3ExprListAppend(pParse,0, Y.pExpr);
1008 pList = sqlite3ExprListAppend(pParse,pList, A.pExpr);
1009 pList = sqlite3ExprListAppend(pParse,pList, E.pExpr);
1010 A.pExpr = sqlite3ExprFunction(pParse, pList, &OP);
1011 exprNot(pParse, bNot, &A);
1012 A.zEnd = E.zEnd;
1013 if( A.pExpr ) A.pExpr->flags |= EP_InfixFunc;
1016 %include {
1017 /* Construct an expression node for a unary postfix operator
1019 static void spanUnaryPostfix(
1020 Parse *pParse, /* Parsing context to record errors */
1021 int op, /* The operator */
1022 ExprSpan *pOperand, /* The operand, and output */
1023 Token *pPostOp /* The operand token for setting the span */
1025 pOperand->pExpr = sqlite3PExpr(pParse, op, pOperand->pExpr, 0);
1026 pOperand->zEnd = &pPostOp->z[pPostOp->n];
1030 expr(A) ::= expr(A) ISNULL|NOTNULL(E). {spanUnaryPostfix(pParse,@E,&A,&E);}
1031 expr(A) ::= expr(A) NOT NULL(E). {spanUnaryPostfix(pParse,TK_NOTNULL,&A,&E);}
1033 %include {
1034 /* A routine to convert a binary TK_IS or TK_ISNOT expression into a
1035 ** unary TK_ISNULL or TK_NOTNULL expression. */
1036 static void binaryToUnaryIfNull(Parse *pParse, Expr *pY, Expr *pA, int op){
1037 sqlite3 *db = pParse->db;
1038 if( pA && pY && pY->op==TK_NULL ){
1039 pA->op = (u8)op;
1040 sqlite3ExprDelete(db, pA->pRight);
1041 pA->pRight = 0;
1046 // expr1 IS expr2
1047 // expr1 IS NOT expr2
1049 // If expr2 is NULL then code as TK_ISNULL or TK_NOTNULL. If expr2
1050 // is any other expression, code as TK_IS or TK_ISNOT.
1052 expr(A) ::= expr(A) IS expr(Y). {
1053 spanBinaryExpr(pParse,TK_IS,&A,&Y);
1054 binaryToUnaryIfNull(pParse, Y.pExpr, A.pExpr, TK_ISNULL);
1056 expr(A) ::= expr(A) IS NOT expr(Y). {
1057 spanBinaryExpr(pParse,TK_ISNOT,&A,&Y);
1058 binaryToUnaryIfNull(pParse, Y.pExpr, A.pExpr, TK_NOTNULL);
1061 %include {
1062 /* Construct an expression node for a unary prefix operator
1064 static void spanUnaryPrefix(
1065 ExprSpan *pOut, /* Write the new expression node here */
1066 Parse *pParse, /* Parsing context to record errors */
1067 int op, /* The operator */
1068 ExprSpan *pOperand, /* The operand */
1069 Token *pPreOp /* The operand token for setting the span */
1071 pOut->zStart = pPreOp->z;
1072 pOut->pExpr = sqlite3PExpr(pParse, op, pOperand->pExpr, 0);
1073 pOut->zEnd = pOperand->zEnd;
1079 expr(A) ::= NOT(B) expr(X).
1080 {spanUnaryPrefix(&A,pParse,@B,&X,&B);/*A-overwrites-B*/}
1081 expr(A) ::= BITNOT(B) expr(X).
1082 {spanUnaryPrefix(&A,pParse,@B,&X,&B);/*A-overwrites-B*/}
1083 expr(A) ::= MINUS(B) expr(X). [BITNOT]
1084 {spanUnaryPrefix(&A,pParse,TK_UMINUS,&X,&B);/*A-overwrites-B*/}
1085 expr(A) ::= PLUS(B) expr(X). [BITNOT]
1086 {spanUnaryPrefix(&A,pParse,TK_UPLUS,&X,&B);/*A-overwrites-B*/}
1088 %type between_op {int}
1089 between_op(A) ::= BETWEEN. {A = 0;}
1090 between_op(A) ::= NOT BETWEEN. {A = 1;}
1091 expr(A) ::= expr(A) between_op(N) expr(X) AND expr(Y). [BETWEEN] {
1092 ExprList *pList = sqlite3ExprListAppend(pParse,0, X.pExpr);
1093 pList = sqlite3ExprListAppend(pParse,pList, Y.pExpr);
1094 A.pExpr = sqlite3PExpr(pParse, TK_BETWEEN, A.pExpr, 0);
1095 if( A.pExpr ){
1096 A.pExpr->x.pList = pList;
1097 }else{
1098 sqlite3ExprListDelete(pParse->db, pList);
1100 exprNot(pParse, N, &A);
1101 A.zEnd = Y.zEnd;
1103 %ifndef SQLITE_OMIT_SUBQUERY
1104 %type in_op {int}
1105 in_op(A) ::= IN. {A = 0;}
1106 in_op(A) ::= NOT IN. {A = 1;}
1107 expr(A) ::= expr(A) in_op(N) LP exprlist(Y) RP(E). [IN] {
1108 if( Y==0 ){
1109 /* Expressions of the form
1111 ** expr1 IN ()
1112 ** expr1 NOT IN ()
1114 ** simplify to constants 0 (false) and 1 (true), respectively,
1115 ** regardless of the value of expr1.
1117 sqlite3ExprDelete(pParse->db, A.pExpr);
1118 A.pExpr = sqlite3ExprAlloc(pParse->db, TK_INTEGER,&sqlite3IntTokens[N],1);
1119 }else if( Y->nExpr==1 ){
1120 /* Expressions of the form:
1122 ** expr1 IN (?1)
1123 ** expr1 NOT IN (?2)
1125 ** with exactly one value on the RHS can be simplified to something
1126 ** like this:
1128 ** expr1 == ?1
1129 ** expr1 <> ?2
1131 ** But, the RHS of the == or <> is marked with the EP_Generic flag
1132 ** so that it may not contribute to the computation of comparison
1133 ** affinity or the collating sequence to use for comparison. Otherwise,
1134 ** the semantics would be subtly different from IN or NOT IN.
1136 Expr *pRHS = Y->a[0].pExpr;
1137 Y->a[0].pExpr = 0;
1138 sqlite3ExprListDelete(pParse->db, Y);
1139 /* pRHS cannot be NULL because a malloc error would have been detected
1140 ** before now and control would have never reached this point */
1141 if( ALWAYS(pRHS) ){
1142 pRHS->flags &= ~EP_Collate;
1143 pRHS->flags |= EP_Generic;
1145 A.pExpr = sqlite3PExpr(pParse, N ? TK_NE : TK_EQ, A.pExpr, pRHS);
1146 }else{
1147 A.pExpr = sqlite3PExpr(pParse, TK_IN, A.pExpr, 0);
1148 if( A.pExpr ){
1149 A.pExpr->x.pList = Y;
1150 sqlite3ExprSetHeightAndFlags(pParse, A.pExpr);
1151 }else{
1152 sqlite3ExprListDelete(pParse->db, Y);
1154 exprNot(pParse, N, &A);
1156 A.zEnd = &E.z[E.n];
1158 expr(A) ::= LP(B) select(X) RP(E). {
1159 spanSet(&A,&B,&E); /*A-overwrites-B*/
1160 A.pExpr = sqlite3PExpr(pParse, TK_SELECT, 0, 0);
1161 sqlite3PExprAddSelect(pParse, A.pExpr, X);
1163 expr(A) ::= expr(A) in_op(N) LP select(Y) RP(E). [IN] {
1164 A.pExpr = sqlite3PExpr(pParse, TK_IN, A.pExpr, 0);
1165 sqlite3PExprAddSelect(pParse, A.pExpr, Y);
1166 exprNot(pParse, N, &A);
1167 A.zEnd = &E.z[E.n];
1169 expr(A) ::= expr(A) in_op(N) nm(Y) dbnm(Z) paren_exprlist(E). [IN] {
1170 SrcList *pSrc = sqlite3SrcListAppend(pParse->db, 0,&Y,&Z);
1171 Select *pSelect = sqlite3SelectNew(pParse, 0,pSrc,0,0,0,0,0,0,0);
1172 if( E ) sqlite3SrcListFuncArgs(pParse, pSelect ? pSrc : 0, E);
1173 A.pExpr = sqlite3PExpr(pParse, TK_IN, A.pExpr, 0);
1174 sqlite3PExprAddSelect(pParse, A.pExpr, pSelect);
1175 exprNot(pParse, N, &A);
1176 A.zEnd = Z.z ? &Z.z[Z.n] : &Y.z[Y.n];
1178 expr(A) ::= EXISTS(B) LP select(Y) RP(E). {
1179 Expr *p;
1180 spanSet(&A,&B,&E); /*A-overwrites-B*/
1181 p = A.pExpr = sqlite3PExpr(pParse, TK_EXISTS, 0, 0);
1182 sqlite3PExprAddSelect(pParse, p, Y);
1184 %endif SQLITE_OMIT_SUBQUERY
1186 /* CASE expressions */
1187 expr(A) ::= CASE(C) case_operand(X) case_exprlist(Y) case_else(Z) END(E). {
1188 spanSet(&A,&C,&E); /*A-overwrites-C*/
1189 A.pExpr = sqlite3PExpr(pParse, TK_CASE, X, 0);
1190 if( A.pExpr ){
1191 A.pExpr->x.pList = Z ? sqlite3ExprListAppend(pParse,Y,Z) : Y;
1192 sqlite3ExprSetHeightAndFlags(pParse, A.pExpr);
1193 }else{
1194 sqlite3ExprListDelete(pParse->db, Y);
1195 sqlite3ExprDelete(pParse->db, Z);
1198 %type case_exprlist {ExprList*}
1199 %destructor case_exprlist {sqlite3ExprListDelete(pParse->db, $$);}
1200 case_exprlist(A) ::= case_exprlist(A) WHEN expr(Y) THEN expr(Z). {
1201 A = sqlite3ExprListAppend(pParse,A, Y.pExpr);
1202 A = sqlite3ExprListAppend(pParse,A, Z.pExpr);
1204 case_exprlist(A) ::= WHEN expr(Y) THEN expr(Z). {
1205 A = sqlite3ExprListAppend(pParse,0, Y.pExpr);
1206 A = sqlite3ExprListAppend(pParse,A, Z.pExpr);
1208 %type case_else {Expr*}
1209 %destructor case_else {sqlite3ExprDelete(pParse->db, $$);}
1210 case_else(A) ::= ELSE expr(X). {A = X.pExpr;}
1211 case_else(A) ::= . {A = 0;}
1212 %type case_operand {Expr*}
1213 %destructor case_operand {sqlite3ExprDelete(pParse->db, $$);}
1214 case_operand(A) ::= expr(X). {A = X.pExpr; /*A-overwrites-X*/}
1215 case_operand(A) ::= . {A = 0;}
1217 %type exprlist {ExprList*}
1218 %destructor exprlist {sqlite3ExprListDelete(pParse->db, $$);}
1219 %type nexprlist {ExprList*}
1220 %destructor nexprlist {sqlite3ExprListDelete(pParse->db, $$);}
1222 exprlist(A) ::= nexprlist(A).
1223 exprlist(A) ::= . {A = 0;}
1224 nexprlist(A) ::= nexprlist(A) COMMA expr(Y).
1225 {A = sqlite3ExprListAppend(pParse,A,Y.pExpr);}
1226 nexprlist(A) ::= expr(Y).
1227 {A = sqlite3ExprListAppend(pParse,0,Y.pExpr); /*A-overwrites-Y*/}
1229 %ifndef SQLITE_OMIT_SUBQUERY
1230 /* A paren_exprlist is an optional expression list contained inside
1231 ** of parenthesis */
1232 %type paren_exprlist {ExprList*}
1233 %destructor paren_exprlist {sqlite3ExprListDelete(pParse->db, $$);}
1234 paren_exprlist(A) ::= . {A = 0;}
1235 paren_exprlist(A) ::= LP exprlist(X) RP. {A = X;}
1236 %endif SQLITE_OMIT_SUBQUERY
1239 ///////////////////////////// The CREATE INDEX command ///////////////////////
1241 cmd ::= createkw(S) uniqueflag(U) INDEX ifnotexists(NE) nm(X) dbnm(D)
1242 ON nm(Y) LP sortlist(Z) RP where_opt(W). {
1243 sqlite3CreateIndex(pParse, &X, &D,
1244 sqlite3SrcListAppend(pParse->db,0,&Y,0), Z, U,
1245 &S, W, SQLITE_SO_ASC, NE, SQLITE_IDXTYPE_APPDEF);
1248 %type uniqueflag {int}
1249 uniqueflag(A) ::= UNIQUE. {A = OE_Abort;}
1250 uniqueflag(A) ::= . {A = OE_None;}
1253 // The eidlist non-terminal (Expression Id List) generates an ExprList
1254 // from a list of identifiers. The identifier names are in ExprList.a[].zName.
1255 // This list is stored in an ExprList rather than an IdList so that it
1256 // can be easily sent to sqlite3ColumnsExprList().
1258 // eidlist is grouped with CREATE INDEX because it used to be the non-terminal
1259 // used for the arguments to an index. That is just an historical accident.
1261 // IMPORTANT COMPATIBILITY NOTE: Some prior versions of SQLite accepted
1262 // COLLATE clauses and ASC or DESC keywords on ID lists in inappropriate
1263 // places - places that might have been stored in the sqlite_master schema.
1264 // Those extra features were ignored. But because they might be in some
1265 // (busted) old databases, we need to continue parsing them when loading
1266 // historical schemas.
1268 %type eidlist {ExprList*}
1269 %destructor eidlist {sqlite3ExprListDelete(pParse->db, $$);}
1270 %type eidlist_opt {ExprList*}
1271 %destructor eidlist_opt {sqlite3ExprListDelete(pParse->db, $$);}
1273 %include {
1274 /* Add a single new term to an ExprList that is used to store a
1275 ** list of identifiers. Report an error if the ID list contains
1276 ** a COLLATE clause or an ASC or DESC keyword, except ignore the
1277 ** error while parsing a legacy schema.
1279 static ExprList *parserAddExprIdListTerm(
1280 Parse *pParse,
1281 ExprList *pPrior,
1282 Token *pIdToken,
1283 int hasCollate,
1284 int sortOrder
1286 ExprList *p = sqlite3ExprListAppend(pParse, pPrior, 0);
1287 if( (hasCollate || sortOrder!=SQLITE_SO_UNDEFINED)
1288 && pParse->db->init.busy==0
1290 sqlite3ErrorMsg(pParse, "syntax error after column name \"%.*s\"",
1291 pIdToken->n, pIdToken->z);
1293 sqlite3ExprListSetName(pParse, p, pIdToken, 1);
1294 return p;
1296 } // end %include
1298 eidlist_opt(A) ::= . {A = 0;}
1299 eidlist_opt(A) ::= LP eidlist(X) RP. {A = X;}
1300 eidlist(A) ::= eidlist(A) COMMA nm(Y) collate(C) sortorder(Z). {
1301 A = parserAddExprIdListTerm(pParse, A, &Y, C, Z);
1303 eidlist(A) ::= nm(Y) collate(C) sortorder(Z). {
1304 A = parserAddExprIdListTerm(pParse, 0, &Y, C, Z); /*A-overwrites-Y*/
1307 %type collate {int}
1308 collate(C) ::= . {C = 0;}
1309 collate(C) ::= COLLATE ids. {C = 1;}
1312 ///////////////////////////// The DROP INDEX command /////////////////////////
1314 cmd ::= DROP INDEX ifexists(E) fullname(X). {sqlite3DropIndex(pParse, X, E);}
1316 ///////////////////////////// The VACUUM command /////////////////////////////
1318 %ifndef SQLITE_OMIT_VACUUM
1319 %ifndef SQLITE_OMIT_ATTACH
1320 cmd ::= VACUUM. {sqlite3Vacuum(pParse,0);}
1321 cmd ::= VACUUM nm(X). {sqlite3Vacuum(pParse,&X);}
1322 %endif SQLITE_OMIT_ATTACH
1323 %endif SQLITE_OMIT_VACUUM
1325 ///////////////////////////// The PRAGMA command /////////////////////////////
1327 %ifndef SQLITE_OMIT_PRAGMA
1328 cmd ::= PRAGMA nm(X) dbnm(Z). {sqlite3Pragma(pParse,&X,&Z,0,0);}
1329 cmd ::= PRAGMA nm(X) dbnm(Z) EQ nmnum(Y). {sqlite3Pragma(pParse,&X,&Z,&Y,0);}
1330 cmd ::= PRAGMA nm(X) dbnm(Z) LP nmnum(Y) RP. {sqlite3Pragma(pParse,&X,&Z,&Y,0);}
1331 cmd ::= PRAGMA nm(X) dbnm(Z) EQ minus_num(Y).
1332 {sqlite3Pragma(pParse,&X,&Z,&Y,1);}
1333 cmd ::= PRAGMA nm(X) dbnm(Z) LP minus_num(Y) RP.
1334 {sqlite3Pragma(pParse,&X,&Z,&Y,1);}
1336 nmnum(A) ::= plus_num(A).
1337 nmnum(A) ::= nm(A).
1338 nmnum(A) ::= ON(A).
1339 nmnum(A) ::= DELETE(A).
1340 nmnum(A) ::= DEFAULT(A).
1341 %endif SQLITE_OMIT_PRAGMA
1342 %token_class number INTEGER|FLOAT.
1343 plus_num(A) ::= PLUS number(X). {A = X;}
1344 plus_num(A) ::= number(A).
1345 minus_num(A) ::= MINUS number(X). {A = X;}
1346 //////////////////////////// The CREATE TRIGGER command /////////////////////
1348 %ifndef SQLITE_OMIT_TRIGGER
1350 cmd ::= createkw trigger_decl(A) BEGIN trigger_cmd_list(S) END(Z). {
1351 Token all;
1352 all.z = A.z;
1353 all.n = (int)(Z.z - A.z) + Z.n;
1354 sqlite3FinishTrigger(pParse, S, &all);
1357 trigger_decl(A) ::= temp(T) TRIGGER ifnotexists(NOERR) nm(B) dbnm(Z)
1358 trigger_time(C) trigger_event(D)
1359 ON fullname(E) foreach_clause when_clause(G). {
1360 sqlite3BeginTrigger(pParse, &B, &Z, C, D.a, D.b, E, G, T, NOERR);
1361 A = (Z.n==0?B:Z); /*A-overwrites-T*/
1364 %type trigger_time {int}
1365 trigger_time(A) ::= BEFORE. { A = TK_BEFORE; }
1366 trigger_time(A) ::= AFTER. { A = TK_AFTER; }
1367 trigger_time(A) ::= INSTEAD OF. { A = TK_INSTEAD;}
1368 trigger_time(A) ::= . { A = TK_BEFORE; }
1370 %type trigger_event {struct TrigEvent}
1371 %destructor trigger_event {sqlite3IdListDelete(pParse->db, $$.b);}
1372 trigger_event(A) ::= DELETE|INSERT(X). {A.a = @X; /*A-overwrites-X*/ A.b = 0;}
1373 trigger_event(A) ::= UPDATE(X). {A.a = @X; /*A-overwrites-X*/ A.b = 0;}
1374 trigger_event(A) ::= UPDATE OF idlist(X).{A.a = TK_UPDATE; A.b = X;}
1376 foreach_clause ::= .
1377 foreach_clause ::= FOR EACH ROW.
1379 %type when_clause {Expr*}
1380 %destructor when_clause {sqlite3ExprDelete(pParse->db, $$);}
1381 when_clause(A) ::= . { A = 0; }
1382 when_clause(A) ::= WHEN expr(X). { A = X.pExpr; }
1384 %type trigger_cmd_list {TriggerStep*}
1385 %destructor trigger_cmd_list {sqlite3DeleteTriggerStep(pParse->db, $$);}
1386 trigger_cmd_list(A) ::= trigger_cmd_list(A) trigger_cmd(X) SEMI. {
1387 assert( A!=0 );
1388 A->pLast->pNext = X;
1389 A->pLast = X;
1391 trigger_cmd_list(A) ::= trigger_cmd(A) SEMI. {
1392 assert( A!=0 );
1393 A->pLast = A;
1396 // Disallow qualified table names on INSERT, UPDATE, and DELETE statements
1397 // within a trigger. The table to INSERT, UPDATE, or DELETE is always in
1398 // the same database as the table that the trigger fires on.
1400 %type trnm {Token}
1401 trnm(A) ::= nm(A).
1402 trnm(A) ::= nm DOT nm(X). {
1403 A = X;
1404 sqlite3ErrorMsg(pParse,
1405 "qualified table names are not allowed on INSERT, UPDATE, and DELETE "
1406 "statements within triggers");
1409 // Disallow the INDEX BY and NOT INDEXED clauses on UPDATE and DELETE
1410 // statements within triggers. We make a specific error message for this
1411 // since it is an exception to the default grammar rules.
1413 tridxby ::= .
1414 tridxby ::= INDEXED BY nm. {
1415 sqlite3ErrorMsg(pParse,
1416 "the INDEXED BY clause is not allowed on UPDATE or DELETE statements "
1417 "within triggers");
1419 tridxby ::= NOT INDEXED. {
1420 sqlite3ErrorMsg(pParse,
1421 "the NOT INDEXED clause is not allowed on UPDATE or DELETE statements "
1422 "within triggers");
1427 %type trigger_cmd {TriggerStep*}
1428 %destructor trigger_cmd {sqlite3DeleteTriggerStep(pParse->db, $$);}
1429 // UPDATE
1430 trigger_cmd(A) ::=
1431 UPDATE orconf(R) trnm(X) tridxby SET setlist(Y) where_opt(Z).
1432 {A = sqlite3TriggerUpdateStep(pParse->db, &X, Y, Z, R);}
1434 // INSERT
1435 trigger_cmd(A) ::= insert_cmd(R) INTO trnm(X) idlist_opt(F) select(S).
1436 {A = sqlite3TriggerInsertStep(pParse->db, &X, F, S, R);/*A-overwrites-R*/}
1438 // DELETE
1439 trigger_cmd(A) ::= DELETE FROM trnm(X) tridxby where_opt(Y).
1440 {A = sqlite3TriggerDeleteStep(pParse->db, &X, Y);}
1442 // SELECT
1443 trigger_cmd(A) ::= select(X).
1444 {A = sqlite3TriggerSelectStep(pParse->db, X); /*A-overwrites-X*/}
1446 // The special RAISE expression that may occur in trigger programs
1447 expr(A) ::= RAISE(X) LP IGNORE RP(Y). {
1448 spanSet(&A,&X,&Y); /*A-overwrites-X*/
1449 A.pExpr = sqlite3PExpr(pParse, TK_RAISE, 0, 0);
1450 if( A.pExpr ){
1451 A.pExpr->affinity = OE_Ignore;
1454 expr(A) ::= RAISE(X) LP raisetype(T) COMMA nm(Z) RP(Y). {
1455 spanSet(&A,&X,&Y); /*A-overwrites-X*/
1456 A.pExpr = sqlite3ExprAlloc(pParse->db, TK_RAISE, &Z, 1);
1457 if( A.pExpr ) {
1458 A.pExpr->affinity = (char)T;
1461 %endif !SQLITE_OMIT_TRIGGER
1463 %type raisetype {int}
1464 raisetype(A) ::= ROLLBACK. {A = OE_Rollback;}
1465 raisetype(A) ::= ABORT. {A = OE_Abort;}
1466 raisetype(A) ::= FAIL. {A = OE_Fail;}
1469 //////////////////////// DROP TRIGGER statement //////////////////////////////
1470 %ifndef SQLITE_OMIT_TRIGGER
1471 cmd ::= DROP TRIGGER ifexists(NOERR) fullname(X). {
1472 sqlite3DropTrigger(pParse,X,NOERR);
1474 %endif !SQLITE_OMIT_TRIGGER
1476 //////////////////////// ATTACH DATABASE file AS name /////////////////////////
1477 %ifndef SQLITE_OMIT_ATTACH
1478 cmd ::= ATTACH database_kw_opt expr(F) AS expr(D) key_opt(K). {
1479 sqlite3Attach(pParse, F.pExpr, D.pExpr, K);
1481 cmd ::= DETACH database_kw_opt expr(D). {
1482 sqlite3Detach(pParse, D.pExpr);
1485 %type key_opt {Expr*}
1486 %destructor key_opt {sqlite3ExprDelete(pParse->db, $$);}
1487 key_opt(A) ::= . { A = 0; }
1488 key_opt(A) ::= KEY expr(X). { A = X.pExpr; }
1490 database_kw_opt ::= DATABASE.
1491 database_kw_opt ::= .
1492 %endif SQLITE_OMIT_ATTACH
1494 ////////////////////////// REINDEX collation //////////////////////////////////
1495 %ifndef SQLITE_OMIT_REINDEX
1496 cmd ::= REINDEX. {sqlite3Reindex(pParse, 0, 0);}
1497 cmd ::= REINDEX nm(X) dbnm(Y). {sqlite3Reindex(pParse, &X, &Y);}
1498 %endif SQLITE_OMIT_REINDEX
1500 /////////////////////////////////// ANALYZE ///////////////////////////////////
1501 %ifndef SQLITE_OMIT_ANALYZE
1502 cmd ::= ANALYZE. {sqlite3Analyze(pParse, 0, 0);}
1503 cmd ::= ANALYZE nm(X) dbnm(Y). {sqlite3Analyze(pParse, &X, &Y);}
1504 %endif
1506 //////////////////////// ALTER TABLE table ... ////////////////////////////////
1507 %ifndef SQLITE_OMIT_ALTERTABLE
1508 cmd ::= ALTER TABLE fullname(X) RENAME TO nm(Z). {
1509 sqlite3AlterRenameTable(pParse,X,&Z);
1511 cmd ::= ALTER TABLE add_column_fullname
1512 ADD kwcolumn_opt columnname(Y) carglist. {
1513 Y.n = (int)(pParse->sLastToken.z-Y.z) + pParse->sLastToken.n;
1514 sqlite3AlterFinishAddColumn(pParse, &Y);
1516 add_column_fullname ::= fullname(X). {
1517 disableLookaside(pParse);
1518 sqlite3AlterBeginAddColumn(pParse, X);
1520 kwcolumn_opt ::= .
1521 kwcolumn_opt ::= COLUMNKW.
1522 %endif SQLITE_OMIT_ALTERTABLE
1524 //////////////////////// CREATE VIRTUAL TABLE ... /////////////////////////////
1525 %ifndef SQLITE_OMIT_VIRTUALTABLE
1526 cmd ::= create_vtab. {sqlite3VtabFinishParse(pParse,0);}
1527 cmd ::= create_vtab LP vtabarglist RP(X). {sqlite3VtabFinishParse(pParse,&X);}
1528 create_vtab ::= createkw VIRTUAL TABLE ifnotexists(E)
1529 nm(X) dbnm(Y) USING nm(Z). {
1530 sqlite3VtabBeginParse(pParse, &X, &Y, &Z, E);
1532 vtabarglist ::= vtabarg.
1533 vtabarglist ::= vtabarglist COMMA vtabarg.
1534 vtabarg ::= . {sqlite3VtabArgInit(pParse);}
1535 vtabarg ::= vtabarg vtabargtoken.
1536 vtabargtoken ::= ANY(X). {sqlite3VtabArgExtend(pParse,&X);}
1537 vtabargtoken ::= lp anylist RP(X). {sqlite3VtabArgExtend(pParse,&X);}
1538 lp ::= LP(X). {sqlite3VtabArgExtend(pParse,&X);}
1539 anylist ::= .
1540 anylist ::= anylist LP anylist RP.
1541 anylist ::= anylist ANY.
1542 %endif SQLITE_OMIT_VIRTUALTABLE
1545 //////////////////////// COMMON TABLE EXPRESSIONS ////////////////////////////
1546 %type with {With*}
1547 %type wqlist {With*}
1548 %destructor with {sqlite3WithDelete(pParse->db, $$);}
1549 %destructor wqlist {sqlite3WithDelete(pParse->db, $$);}
1551 with(A) ::= . {A = 0;}
1552 %ifndef SQLITE_OMIT_CTE
1553 with(A) ::= WITH wqlist(W). { A = W; }
1554 with(A) ::= WITH RECURSIVE wqlist(W). { A = W; }
1556 wqlist(A) ::= nm(X) eidlist_opt(Y) AS LP select(Z) RP. {
1557 A = sqlite3WithAdd(pParse, 0, &X, Y, Z); /*A-overwrites-X*/
1559 wqlist(A) ::= wqlist(A) COMMA nm(X) eidlist_opt(Y) AS LP select(Z) RP. {
1560 A = sqlite3WithAdd(pParse, A, &X, Y, Z);
1562 %endif SQLITE_OMIT_CTE