xref: /sqlite-3.40.0/src/parse.y (revision 5348fbe3)
1 %include {
2 /*
3 ** 2001-09-15
4 **
5 ** The author disclaims copyright to this source code.  In place of
6 ** a legal notice, here is a blessing:
7 **
8 **    May you do good and not evil.
9 **    May you find forgiveness for yourself and forgive others.
10 **    May you share freely, never taking more than you give.
11 **
12 *************************************************************************
13 ** This file contains SQLite's SQL parser.
14 **
15 ** The canonical source code to this file ("parse.y") is a Lemon grammar
16 ** file that specifies the input grammar and actions to take while parsing.
17 ** That input file is processed by Lemon to generate a C-language
18 ** implementation of a parser for the given grammer.  You might be reading
19 ** this comment as part of the translated C-code.  Edits should be made
20 ** to the original parse.y sources.
21 */
22 }
23 
24 // All token codes are small integers with #defines that begin with "TK_"
25 %token_prefix TK_
26 
27 // The type of the data attached to each token is Token.  This is also the
28 // default type for non-terminals.
29 //
30 %token_type {Token}
31 %default_type {Token}
32 
33 // An extra argument to the constructor for the parser, which is available
34 // to all actions.
35 %extra_context {Parse *pParse}
36 
37 // This code runs whenever there is a syntax error
38 //
39 %syntax_error {
40   UNUSED_PARAMETER(yymajor);  /* Silence some compiler warnings */
41   if( TOKEN.z[0] ){
42     sqlite3ErrorMsg(pParse, "near \"%T\": syntax error", &TOKEN);
43   }else{
44     sqlite3ErrorMsg(pParse, "incomplete input");
45   }
46 }
47 %stack_overflow {
48   sqlite3ErrorMsg(pParse, "parser stack overflow");
49 }
50 
51 // The name of the generated procedure that implements the parser
52 // is as follows:
53 %name sqlite3Parser
54 
55 // The following text is included near the beginning of the C source
56 // code file that implements the parser.
57 //
58 %include {
59 #include "sqliteInt.h"
60 
61 /*
62 ** Disable all error recovery processing in the parser push-down
63 ** automaton.
64 */
65 #define YYNOERRORRECOVERY 1
66 
67 /*
68 ** Make yytestcase() the same as testcase()
69 */
70 #define yytestcase(X) testcase(X)
71 
72 /*
73 ** Indicate that sqlite3ParserFree() will never be called with a null
74 ** pointer.
75 */
76 #define YYPARSEFREENEVERNULL 1
77 
78 /*
79 ** In the amalgamation, the parse.c file generated by lemon and the
80 ** tokenize.c file are concatenated.  In that case, sqlite3RunParser()
81 ** has access to the the size of the yyParser object and so the parser
82 ** engine can be allocated from stack.  In that case, only the
83 ** sqlite3ParserInit() and sqlite3ParserFinalize() routines are invoked
84 ** and the sqlite3ParserAlloc() and sqlite3ParserFree() routines can be
85 ** omitted.
86 */
87 #ifdef SQLITE_AMALGAMATION
88 # define sqlite3Parser_ENGINEALWAYSONSTACK 1
89 #endif
90 
91 /*
92 ** Alternative datatype for the argument to the malloc() routine passed
93 ** into sqlite3ParserAlloc().  The default is size_t.
94 */
95 #define YYMALLOCARGTYPE  u64
96 
97 /*
98 ** An instance of the following structure describes the event of a
99 ** TRIGGER.  "a" is the event type, one of TK_UPDATE, TK_INSERT,
100 ** TK_DELETE, or TK_INSTEAD.  If the event is of the form
101 **
102 **      UPDATE ON (a,b,c)
103 **
104 ** Then the "b" IdList records the list "a,b,c".
105 */
106 struct TrigEvent { int a; IdList * b; };
107 
108 struct FrameBound     { int eType; Expr *pExpr; };
109 
110 /*
111 ** Disable lookaside memory allocation for objects that might be
112 ** shared across database connections.
113 */
114 static void disableLookaside(Parse *pParse){
115   sqlite3 *db = pParse->db;
116   pParse->disableLookaside++;
117   DisableLookaside;
118 }
119 
120 #if !defined(SQLITE_ENABLE_UPDATE_DELETE_LIMIT) \
121  && defined(SQLITE_UDL_CAPABLE_PARSER)
122 /*
123 ** Issue an error message if an ORDER BY or LIMIT clause occurs on an
124 ** UPDATE or DELETE statement.
125 */
126 static void updateDeleteLimitError(
127   Parse *pParse,
128   ExprList *pOrderBy,
129   Expr *pLimit
130 ){
131   if( pOrderBy ){
132     sqlite3ErrorMsg(pParse, "syntax error near \"ORDER BY\"");
133   }else{
134     sqlite3ErrorMsg(pParse, "syntax error near \"LIMIT\"");
135   }
136   sqlite3ExprListDelete(pParse->db, pOrderBy);
137   sqlite3ExprDelete(pParse->db, pLimit);
138 }
139 #endif /* SQLITE_ENABLE_UPDATE_DELETE_LIMIT */
140 
141 } // end %include
142 
143 // Input is a single SQL command
144 input ::= cmdlist.
145 cmdlist ::= cmdlist ecmd.
146 cmdlist ::= ecmd.
147 ecmd ::= SEMI.
148 ecmd ::= cmdx SEMI.
149 %ifndef SQLITE_OMIT_EXPLAIN
150 ecmd ::= explain cmdx SEMI.       {NEVER-REDUCE}
151 explain ::= EXPLAIN.              { pParse->explain = 1; }
152 explain ::= EXPLAIN QUERY PLAN.   { pParse->explain = 2; }
153 %endif  SQLITE_OMIT_EXPLAIN
154 cmdx ::= cmd.           { sqlite3FinishCoding(pParse); }
155 
156 ///////////////////// Begin and end transactions. ////////////////////////////
157 //
158 
159 cmd ::= BEGIN transtype(Y) trans_opt.  {sqlite3BeginTransaction(pParse, Y);}
160 trans_opt ::= .
161 trans_opt ::= TRANSACTION.
162 trans_opt ::= TRANSACTION nm.
163 %type transtype {int}
164 transtype(A) ::= .             {A = TK_DEFERRED;}
165 transtype(A) ::= DEFERRED(X).  {A = @X; /*A-overwrites-X*/}
166 transtype(A) ::= IMMEDIATE(X). {A = @X; /*A-overwrites-X*/}
167 transtype(A) ::= EXCLUSIVE(X). {A = @X; /*A-overwrites-X*/}
168 cmd ::= COMMIT|END(X) trans_opt.   {sqlite3EndTransaction(pParse,@X);}
169 cmd ::= ROLLBACK(X) trans_opt.     {sqlite3EndTransaction(pParse,@X);}
170 
171 savepoint_opt ::= SAVEPOINT.
172 savepoint_opt ::= .
173 cmd ::= SAVEPOINT nm(X). {
174   sqlite3Savepoint(pParse, SAVEPOINT_BEGIN, &X);
175 }
176 cmd ::= RELEASE savepoint_opt nm(X). {
177   sqlite3Savepoint(pParse, SAVEPOINT_RELEASE, &X);
178 }
179 cmd ::= ROLLBACK trans_opt TO savepoint_opt nm(X). {
180   sqlite3Savepoint(pParse, SAVEPOINT_ROLLBACK, &X);
181 }
182 
183 ///////////////////// The CREATE TABLE statement ////////////////////////////
184 //
185 cmd ::= create_table create_table_args.
186 create_table ::= createkw temp(T) TABLE ifnotexists(E) nm(Y) dbnm(Z). {
187    sqlite3StartTable(pParse,&Y,&Z,T,0,0,E);
188 }
189 createkw(A) ::= CREATE(A).  {disableLookaside(pParse);}
190 
191 %type ifnotexists {int}
192 ifnotexists(A) ::= .              {A = 0;}
193 ifnotexists(A) ::= IF NOT EXISTS. {A = 1;}
194 %type temp {int}
195 %ifndef SQLITE_OMIT_TEMPDB
196 temp(A) ::= TEMP.  {A = pParse->db->init.busy==0;}
197 %endif  SQLITE_OMIT_TEMPDB
198 temp(A) ::= .      {A = 0;}
199 create_table_args ::= LP columnlist conslist_opt(X) RP(E) table_option_set(F). {
200   sqlite3EndTable(pParse,&X,&E,F,0);
201 }
202 create_table_args ::= AS select(S). {
203   sqlite3EndTable(pParse,0,0,0,S);
204   sqlite3SelectDelete(pParse->db, S);
205 }
206 %type table_option_set {u32}
207 %type table_option {u32}
208 table_option_set(A) ::= .    {A = 0;}
209 table_option_set(A) ::= table_option(A).
210 table_option_set(A) ::= table_option_set(X) COMMA table_option(Y). {A = X|Y;}
211 table_option(A) ::= WITHOUT nm(X). {
212   if( X.n==5 && sqlite3_strnicmp(X.z,"rowid",5)==0 ){
213     A = TF_WithoutRowid | TF_NoVisibleRowid;
214   }else{
215     A = 0;
216     sqlite3ErrorMsg(pParse, "unknown table option: %.*s", X.n, X.z);
217   }
218 }
219 table_option(A) ::= nm(X). {
220   if( X.n==6 && sqlite3_strnicmp(X.z,"strict",6)==0 ){
221     A = TF_Strict;
222   }else{
223     A = 0;
224     sqlite3ErrorMsg(pParse, "unknown table option: %.*s", X.n, X.z);
225   }
226 }
227 columnlist ::= columnlist COMMA columnname carglist.
228 columnlist ::= columnname carglist.
229 columnname(A) ::= nm(A) typetoken(Y). {sqlite3AddColumn(pParse,A,Y);}
230 
231 // Declare some tokens early in order to influence their values, to
232 // improve performance and reduce the executable size.  The goal here is
233 // to get the "jump" operations in ISNULL through ESCAPE to have numeric
234 // values that are early enough so that all jump operations are clustered
235 // at the beginning.
236 //
237 %token ABORT ACTION AFTER ANALYZE ASC ATTACH BEFORE BEGIN BY CASCADE CAST.
238 %token CONFLICT DATABASE DEFERRED DESC DETACH EACH END EXCLUSIVE EXPLAIN FAIL.
239 %token OR AND NOT IS MATCH LIKE_KW BETWEEN IN ISNULL NOTNULL NE EQ.
240 %token GT LE LT GE ESCAPE.
241 
242 // The following directive causes tokens ABORT, AFTER, ASC, etc. to
243 // fallback to ID if they will not parse as their original value.
244 // This obviates the need for the "id" nonterminal.
245 //
246 %fallback ID
247   ABORT ACTION AFTER ANALYZE ASC ATTACH BEFORE BEGIN BY CASCADE CAST COLUMNKW
248   CONFLICT DATABASE DEFERRED DESC DETACH DO
249   EACH END EXCLUSIVE EXPLAIN FAIL FOR
250   IGNORE IMMEDIATE INITIALLY INSTEAD LIKE_KW MATCH NO PLAN
251   QUERY KEY OF OFFSET PRAGMA RAISE RECURSIVE RELEASE REPLACE RESTRICT ROW ROWS
252   ROLLBACK SAVEPOINT TEMP TRIGGER VACUUM VIEW VIRTUAL WITH WITHOUT
253   NULLS FIRST LAST
254 %ifdef SQLITE_OMIT_COMPOUND_SELECT
255   EXCEPT INTERSECT UNION
256 %endif SQLITE_OMIT_COMPOUND_SELECT
257 %ifndef SQLITE_OMIT_WINDOWFUNC
258   CURRENT FOLLOWING PARTITION PRECEDING RANGE UNBOUNDED
259   EXCLUDE GROUPS OTHERS TIES
260 %endif SQLITE_OMIT_WINDOWFUNC
261 %ifndef SQLITE_OMIT_GENERATED_COLUMNS
262   GENERATED ALWAYS
263 %endif
264   MATERIALIZED
265   REINDEX RENAME CTIME_KW IF
266   .
267 %wildcard ANY.
268 
269 // Define operator precedence early so that this is the first occurrence
270 // of the operator tokens in the grammer.  Keeping the operators together
271 // causes them to be assigned integer values that are close together,
272 // which keeps parser tables smaller.
273 //
274 // The token values assigned to these symbols is determined by the order
275 // in which lemon first sees them.  It must be the case that ISNULL/NOTNULL,
276 // NE/EQ, GT/LE, and GE/LT are separated by only a single value.  See
277 // the sqlite3ExprIfFalse() routine for additional information on this
278 // constraint.
279 //
280 %left OR.
281 %left AND.
282 %right NOT.
283 %left IS MATCH LIKE_KW BETWEEN IN ISNULL NOTNULL NE EQ.
284 %left GT LE LT GE.
285 %right ESCAPE.
286 %left BITAND BITOR LSHIFT RSHIFT.
287 %left PLUS MINUS.
288 %left STAR SLASH REM.
289 %left CONCAT PTR.
290 %left COLLATE.
291 %right BITNOT.
292 %nonassoc ON.
293 
294 // An IDENTIFIER can be a generic identifier, or one of several
295 // keywords.  Any non-standard keyword can also be an identifier.
296 //
297 %token_class id  ID|INDEXED.
298 
299 
300 // And "ids" is an identifer-or-string.
301 //
302 %token_class ids  ID|STRING.
303 
304 // The name of a column or table can be any of the following:
305 //
306 %type nm {Token}
307 nm(A) ::= id(A).
308 nm(A) ::= STRING(A).
309 nm(A) ::= JOIN_KW(A).
310 
311 // A typetoken is really zero or more tokens that form a type name such
312 // as can be found after the column name in a CREATE TABLE statement.
313 // Multiple tokens are concatenated to form the value of the typetoken.
314 //
315 %type typetoken {Token}
316 typetoken(A) ::= .   {A.n = 0; A.z = 0;}
317 typetoken(A) ::= typename(A).
318 typetoken(A) ::= typename(A) LP signed RP(Y). {
319   A.n = (int)(&Y.z[Y.n] - A.z);
320 }
321 typetoken(A) ::= typename(A) LP signed COMMA signed RP(Y). {
322   A.n = (int)(&Y.z[Y.n] - A.z);
323 }
324 %type typename {Token}
325 typename(A) ::= ids(A).
326 typename(A) ::= typename(A) ids(Y). {A.n=Y.n+(int)(Y.z-A.z);}
327 signed ::= plus_num.
328 signed ::= minus_num.
329 
330 // The scanpt non-terminal takes a value which is a pointer to the
331 // input text just past the last token that has been shifted into
332 // the parser.  By surrounding some phrase in the grammar with two
333 // scanpt non-terminals, we can capture the input text for that phrase.
334 // For example:
335 //
336 //      something ::= .... scanpt(A) phrase scanpt(Z).
337 //
338 // The text that is parsed as "phrase" is a string starting at A
339 // and containing (int)(Z-A) characters.  There might be some extra
340 // whitespace on either end of the text, but that can be removed in
341 // post-processing, if needed.
342 //
343 %type scanpt {const char*}
344 scanpt(A) ::= . {
345   assert( yyLookahead!=YYNOCODE );
346   A = yyLookaheadToken.z;
347 }
348 scantok(A) ::= . {
349   assert( yyLookahead!=YYNOCODE );
350   A = yyLookaheadToken;
351 }
352 
353 // "carglist" is a list of additional constraints that come after the
354 // column name and column type in a CREATE TABLE statement.
355 //
356 carglist ::= carglist ccons.
357 carglist ::= .
358 ccons ::= CONSTRAINT nm(X).           {pParse->constraintName = X;}
359 ccons ::= DEFAULT scantok(A) term(X).
360                             {sqlite3AddDefaultValue(pParse,X,A.z,&A.z[A.n]);}
361 ccons ::= DEFAULT LP(A) expr(X) RP(Z).
362                             {sqlite3AddDefaultValue(pParse,X,A.z+1,Z.z);}
363 ccons ::= DEFAULT PLUS(A) scantok(Z) term(X).
364                             {sqlite3AddDefaultValue(pParse,X,A.z,&Z.z[Z.n]);}
365 ccons ::= DEFAULT MINUS(A) scantok(Z) term(X). {
366   Expr *p = sqlite3PExpr(pParse, TK_UMINUS, X, 0);
367   sqlite3AddDefaultValue(pParse,p,A.z,&Z.z[Z.n]);
368 }
369 ccons ::= DEFAULT scantok id(X).       {
370   Expr *p = tokenExpr(pParse, TK_STRING, X);
371   if( p ){
372     sqlite3ExprIdToTrueFalse(p);
373     testcase( p->op==TK_TRUEFALSE && sqlite3ExprTruthValue(p) );
374   }
375     sqlite3AddDefaultValue(pParse,p,X.z,X.z+X.n);
376 }
377 
378 // In addition to the type name, we also care about the primary key and
379 // UNIQUE constraints.
380 //
381 ccons ::= NULL onconf.
382 ccons ::= NOT NULL onconf(R).    {sqlite3AddNotNull(pParse, R);}
383 ccons ::= PRIMARY KEY sortorder(Z) onconf(R) autoinc(I).
384                                  {sqlite3AddPrimaryKey(pParse,0,R,I,Z);}
385 ccons ::= UNIQUE onconf(R).      {sqlite3CreateIndex(pParse,0,0,0,0,R,0,0,0,0,
386                                    SQLITE_IDXTYPE_UNIQUE);}
387 ccons ::= CHECK LP(A) expr(X) RP(B).  {sqlite3AddCheckConstraint(pParse,X,A.z,B.z);}
388 ccons ::= REFERENCES nm(T) eidlist_opt(TA) refargs(R).
389                                  {sqlite3CreateForeignKey(pParse,0,&T,TA,R);}
390 ccons ::= defer_subclause(D).    {sqlite3DeferForeignKey(pParse,D);}
391 ccons ::= COLLATE ids(C).        {sqlite3AddCollateType(pParse, &C);}
392 ccons ::= GENERATED ALWAYS AS generated.
393 ccons ::= AS generated.
394 generated ::= LP expr(E) RP.          {sqlite3AddGenerated(pParse,E,0);}
395 generated ::= LP expr(E) RP ID(TYPE). {sqlite3AddGenerated(pParse,E,&TYPE);}
396 
397 // The optional AUTOINCREMENT keyword
398 %type autoinc {int}
399 autoinc(X) ::= .          {X = 0;}
400 autoinc(X) ::= AUTOINCR.  {X = 1;}
401 
402 // The next group of rules parses the arguments to a REFERENCES clause
403 // that determine if the referential integrity checking is deferred or
404 // or immediate and which determine what action to take if a ref-integ
405 // check fails.
406 //
407 %type refargs {int}
408 refargs(A) ::= .                  { A = OE_None*0x0101; /* EV: R-19803-45884 */}
409 refargs(A) ::= refargs(A) refarg(Y). { A = (A & ~Y.mask) | Y.value; }
410 %type refarg {struct {int value; int mask;}}
411 refarg(A) ::= MATCH nm.              { A.value = 0;     A.mask = 0x000000; }
412 refarg(A) ::= ON INSERT refact.      { A.value = 0;     A.mask = 0x000000; }
413 refarg(A) ::= ON DELETE refact(X).   { A.value = X;     A.mask = 0x0000ff; }
414 refarg(A) ::= ON UPDATE refact(X).   { A.value = X<<8;  A.mask = 0x00ff00; }
415 %type refact {int}
416 refact(A) ::= SET NULL.              { A = OE_SetNull;  /* EV: R-33326-45252 */}
417 refact(A) ::= SET DEFAULT.           { A = OE_SetDflt;  /* EV: R-33326-45252 */}
418 refact(A) ::= CASCADE.               { A = OE_Cascade;  /* EV: R-33326-45252 */}
419 refact(A) ::= RESTRICT.              { A = OE_Restrict; /* EV: R-33326-45252 */}
420 refact(A) ::= NO ACTION.             { A = OE_None;     /* EV: R-33326-45252 */}
421 %type defer_subclause {int}
422 defer_subclause(A) ::= NOT DEFERRABLE init_deferred_pred_opt.     {A = 0;}
423 defer_subclause(A) ::= DEFERRABLE init_deferred_pred_opt(X).      {A = X;}
424 %type init_deferred_pred_opt {int}
425 init_deferred_pred_opt(A) ::= .                       {A = 0;}
426 init_deferred_pred_opt(A) ::= INITIALLY DEFERRED.     {A = 1;}
427 init_deferred_pred_opt(A) ::= INITIALLY IMMEDIATE.    {A = 0;}
428 
429 conslist_opt(A) ::= .                         {A.n = 0; A.z = 0;}
430 conslist_opt(A) ::= COMMA(A) conslist.
431 conslist ::= conslist tconscomma tcons.
432 conslist ::= tcons.
433 tconscomma ::= COMMA.            {pParse->constraintName.n = 0;}
434 tconscomma ::= .
435 tcons ::= CONSTRAINT nm(X).      {pParse->constraintName = X;}
436 tcons ::= PRIMARY KEY LP sortlist(X) autoinc(I) RP onconf(R).
437                                  {sqlite3AddPrimaryKey(pParse,X,R,I,0);}
438 tcons ::= UNIQUE LP sortlist(X) RP onconf(R).
439                                  {sqlite3CreateIndex(pParse,0,0,0,X,R,0,0,0,0,
440                                        SQLITE_IDXTYPE_UNIQUE);}
441 tcons ::= CHECK LP(A) expr(E) RP(B) onconf.
442                                  {sqlite3AddCheckConstraint(pParse,E,A.z,B.z);}
443 tcons ::= FOREIGN KEY LP eidlist(FA) RP
444           REFERENCES nm(T) eidlist_opt(TA) refargs(R) defer_subclause_opt(D). {
445     sqlite3CreateForeignKey(pParse, FA, &T, TA, R);
446     sqlite3DeferForeignKey(pParse, D);
447 }
448 %type defer_subclause_opt {int}
449 defer_subclause_opt(A) ::= .                    {A = 0;}
450 defer_subclause_opt(A) ::= defer_subclause(A).
451 
452 // The following is a non-standard extension that allows us to declare the
453 // default behavior when there is a constraint conflict.
454 //
455 %type onconf {int}
456 %type orconf {int}
457 %type resolvetype {int}
458 onconf(A) ::= .                              {A = OE_Default;}
459 onconf(A) ::= ON CONFLICT resolvetype(X).    {A = X;}
460 orconf(A) ::= .                              {A = OE_Default;}
461 orconf(A) ::= OR resolvetype(X).             {A = X;}
462 resolvetype(A) ::= raisetype(A).
463 resolvetype(A) ::= IGNORE.                   {A = OE_Ignore;}
464 resolvetype(A) ::= REPLACE.                  {A = OE_Replace;}
465 
466 ////////////////////////// The DROP TABLE /////////////////////////////////////
467 //
468 cmd ::= DROP TABLE ifexists(E) fullname(X). {
469   sqlite3DropTable(pParse, X, 0, E);
470 }
471 %type ifexists {int}
472 ifexists(A) ::= IF EXISTS.   {A = 1;}
473 ifexists(A) ::= .            {A = 0;}
474 
475 ///////////////////// The CREATE VIEW statement /////////////////////////////
476 //
477 %ifndef SQLITE_OMIT_VIEW
478 cmd ::= createkw(X) temp(T) VIEW ifnotexists(E) nm(Y) dbnm(Z) eidlist_opt(C)
479           AS select(S). {
480   sqlite3CreateView(pParse, &X, &Y, &Z, C, S, T, E);
481 }
482 cmd ::= DROP VIEW ifexists(E) fullname(X). {
483   sqlite3DropTable(pParse, X, 1, E);
484 }
485 %endif  SQLITE_OMIT_VIEW
486 
487 //////////////////////// The SELECT statement /////////////////////////////////
488 //
489 cmd ::= select(X).  {
490   SelectDest dest = {SRT_Output, 0, 0, 0, 0, 0, 0};
491   sqlite3Select(pParse, X, &dest);
492   sqlite3SelectDelete(pParse->db, X);
493 }
494 
495 %type select {Select*}
496 %destructor select {sqlite3SelectDelete(pParse->db, $$);}
497 %type selectnowith {Select*}
498 %destructor selectnowith {sqlite3SelectDelete(pParse->db, $$);}
499 %type oneselect {Select*}
500 %destructor oneselect {sqlite3SelectDelete(pParse->db, $$);}
501 
502 %include {
503   /*
504   ** For a compound SELECT statement, make sure p->pPrior->pNext==p for
505   ** all elements in the list.  And make sure list length does not exceed
506   ** SQLITE_LIMIT_COMPOUND_SELECT.
507   */
508   static void parserDoubleLinkSelect(Parse *pParse, Select *p){
509     assert( p!=0 );
510     if( p->pPrior ){
511       Select *pNext = 0, *pLoop = p;
512       int mxSelect, cnt = 1;
513       while(1){
514         pLoop->pNext = pNext;
515         pLoop->selFlags |= SF_Compound;
516         pNext = pLoop;
517         pLoop = pLoop->pPrior;
518         if( pLoop==0 ) break;
519         cnt++;
520         if( pLoop->pOrderBy || pLoop->pLimit ){
521           sqlite3ErrorMsg(pParse,"%s clause should come after %s not before",
522              pLoop->pOrderBy!=0 ? "ORDER BY" : "LIMIT",
523              sqlite3SelectOpName(pNext->op));
524           break;
525         }
526       }
527       if( (p->selFlags & SF_MultiValue)==0 &&
528         (mxSelect = pParse->db->aLimit[SQLITE_LIMIT_COMPOUND_SELECT])>0 &&
529         cnt>mxSelect
530       ){
531         sqlite3ErrorMsg(pParse, "too many terms in compound SELECT");
532       }
533     }
534   }
535 
536   /* Attach a With object describing the WITH clause to a Select
537   ** object describing the query for which the WITH clause is a prefix.
538   */
539   static Select *attachWithToSelect(Parse *pParse, Select *pSelect, With *pWith){
540     if( pSelect ){
541       pSelect->pWith = pWith;
542       parserDoubleLinkSelect(pParse, pSelect);
543     }else{
544       sqlite3WithDelete(pParse->db, pWith);
545     }
546     return pSelect;
547   }
548 }
549 
550 %ifndef SQLITE_OMIT_CTE
551 select(A) ::= WITH wqlist(W) selectnowith(X). {A = attachWithToSelect(pParse,X,W);}
552 select(A) ::= WITH RECURSIVE wqlist(W) selectnowith(X).
553                                               {A = attachWithToSelect(pParse,X,W);}
554 %endif /* SQLITE_OMIT_CTE */
555 select(A) ::= selectnowith(X). {
556   Select *p = X;
557   if( p ){
558     parserDoubleLinkSelect(pParse, p);
559   }
560   A = p; /*A-overwrites-X*/
561 }
562 
563 selectnowith(A) ::= oneselect(A).
564 %ifndef SQLITE_OMIT_COMPOUND_SELECT
565 selectnowith(A) ::= selectnowith(A) multiselect_op(Y) oneselect(Z).  {
566   Select *pRhs = Z;
567   Select *pLhs = A;
568   if( pRhs && pRhs->pPrior ){
569     SrcList *pFrom;
570     Token x;
571     x.n = 0;
572     parserDoubleLinkSelect(pParse, pRhs);
573     pFrom = sqlite3SrcListAppendFromTerm(pParse,0,0,0,&x,pRhs,0);
574     pRhs = sqlite3SelectNew(pParse,0,pFrom,0,0,0,0,0,0);
575   }
576   if( pRhs ){
577     pRhs->op = (u8)Y;
578     pRhs->pPrior = pLhs;
579     if( ALWAYS(pLhs) ) pLhs->selFlags &= ~SF_MultiValue;
580     pRhs->selFlags &= ~SF_MultiValue;
581     if( Y!=TK_ALL ) pParse->hasCompound = 1;
582   }else{
583     sqlite3SelectDelete(pParse->db, pLhs);
584   }
585   A = pRhs;
586 }
587 %type multiselect_op {int}
588 multiselect_op(A) ::= UNION(OP).             {A = @OP; /*A-overwrites-OP*/}
589 multiselect_op(A) ::= UNION ALL.             {A = TK_ALL;}
590 multiselect_op(A) ::= EXCEPT|INTERSECT(OP).  {A = @OP; /*A-overwrites-OP*/}
591 %endif SQLITE_OMIT_COMPOUND_SELECT
592 
593 oneselect(A) ::= SELECT distinct(D) selcollist(W) from(X) where_opt(Y)
594                  groupby_opt(P) having_opt(Q)
595                  orderby_opt(Z) limit_opt(L). {
596   A = sqlite3SelectNew(pParse,W,X,Y,P,Q,Z,D,L);
597 }
598 %ifndef SQLITE_OMIT_WINDOWFUNC
599 oneselect(A) ::= SELECT distinct(D) selcollist(W) from(X) where_opt(Y)
600                  groupby_opt(P) having_opt(Q) window_clause(R)
601                  orderby_opt(Z) limit_opt(L). {
602   A = sqlite3SelectNew(pParse,W,X,Y,P,Q,Z,D,L);
603   if( A ){
604     A->pWinDefn = R;
605   }else{
606     sqlite3WindowListDelete(pParse->db, R);
607   }
608 }
609 %endif
610 
611 
612 oneselect(A) ::= values(A).
613 
614 %type values {Select*}
615 %destructor values {sqlite3SelectDelete(pParse->db, $$);}
616 values(A) ::= VALUES LP nexprlist(X) RP. {
617   A = sqlite3SelectNew(pParse,X,0,0,0,0,0,SF_Values,0);
618 }
619 values(A) ::= values(A) COMMA LP nexprlist(Y) RP. {
620   Select *pRight, *pLeft = A;
621   pRight = sqlite3SelectNew(pParse,Y,0,0,0,0,0,SF_Values|SF_MultiValue,0);
622   if( ALWAYS(pLeft) ) pLeft->selFlags &= ~SF_MultiValue;
623   if( pRight ){
624     pRight->op = TK_ALL;
625     pRight->pPrior = pLeft;
626     A = pRight;
627   }else{
628     A = pLeft;
629   }
630 }
631 
632 // The "distinct" nonterminal is true (1) if the DISTINCT keyword is
633 // present and false (0) if it is not.
634 //
635 %type distinct {int}
636 distinct(A) ::= DISTINCT.   {A = SF_Distinct;}
637 distinct(A) ::= ALL.        {A = SF_All;}
638 distinct(A) ::= .           {A = 0;}
639 
640 // selcollist is a list of expressions that are to become the return
641 // values of the SELECT statement.  The "*" in statements like
642 // "SELECT * FROM ..." is encoded as a special expression with an
643 // opcode of TK_ASTERISK.
644 //
645 %type selcollist {ExprList*}
646 %destructor selcollist {sqlite3ExprListDelete(pParse->db, $$);}
647 %type sclp {ExprList*}
648 %destructor sclp {sqlite3ExprListDelete(pParse->db, $$);}
649 sclp(A) ::= selcollist(A) COMMA.
650 sclp(A) ::= .                                {A = 0;}
651 selcollist(A) ::= sclp(A) scanpt(B) expr(X) scanpt(Z) as(Y).     {
652    A = sqlite3ExprListAppend(pParse, A, X);
653    if( Y.n>0 ) sqlite3ExprListSetName(pParse, A, &Y, 1);
654    sqlite3ExprListSetSpan(pParse,A,B,Z);
655 }
656 selcollist(A) ::= sclp(A) scanpt STAR. {
657   Expr *p = sqlite3Expr(pParse->db, TK_ASTERISK, 0);
658   A = sqlite3ExprListAppend(pParse, A, p);
659 }
660 selcollist(A) ::= sclp(A) scanpt nm(X) DOT STAR. {
661   Expr *pRight = sqlite3PExpr(pParse, TK_ASTERISK, 0, 0);
662   Expr *pLeft = tokenExpr(pParse, TK_ID, X);
663   Expr *pDot = sqlite3PExpr(pParse, TK_DOT, pLeft, pRight);
664   A = sqlite3ExprListAppend(pParse,A, pDot);
665 }
666 
667 // An option "AS <id>" phrase that can follow one of the expressions that
668 // define the result set, or one of the tables in the FROM clause.
669 //
670 %type as {Token}
671 as(X) ::= AS nm(Y).    {X = Y;}
672 as(X) ::= ids(X).
673 as(X) ::= .            {X.n = 0; X.z = 0;}
674 
675 
676 %type seltablist {SrcList*}
677 %destructor seltablist {sqlite3SrcListDelete(pParse->db, $$);}
678 %type stl_prefix {SrcList*}
679 %destructor stl_prefix {sqlite3SrcListDelete(pParse->db, $$);}
680 %type from {SrcList*}
681 %destructor from {sqlite3SrcListDelete(pParse->db, $$);}
682 
683 // A complete FROM clause.
684 //
685 from(A) ::= .                {A = 0;}
686 from(A) ::= FROM seltablist(X). {
687   A = X;
688   sqlite3SrcListShiftJoinType(pParse,A);
689 }
690 
691 // "seltablist" is a "Select Table List" - the content of the FROM clause
692 // in a SELECT statement.  "stl_prefix" is a prefix of this list.
693 //
694 stl_prefix(A) ::= seltablist(A) joinop(Y).    {
695    if( ALWAYS(A && A->nSrc>0) ) A->a[A->nSrc-1].fg.jointype = (u8)Y;
696 }
697 stl_prefix(A) ::= .                           {A = 0;}
698 seltablist(A) ::= stl_prefix(A) nm(Y) dbnm(D) as(Z) on_using(N). {
699   A = sqlite3SrcListAppendFromTerm(pParse,A,&Y,&D,&Z,0,&N);
700 }
701 seltablist(A) ::= stl_prefix(A) nm(Y) dbnm(D) as(Z) indexed_by(I) on_using(N). {
702   A = sqlite3SrcListAppendFromTerm(pParse,A,&Y,&D,&Z,0,&N);
703   sqlite3SrcListIndexedBy(pParse, A, &I);
704 }
705 seltablist(A) ::= stl_prefix(A) nm(Y) dbnm(D) LP exprlist(E) RP as(Z) on_using(N). {
706   A = sqlite3SrcListAppendFromTerm(pParse,A,&Y,&D,&Z,0,&N);
707   sqlite3SrcListFuncArgs(pParse, A, E);
708 }
709 %ifndef SQLITE_OMIT_SUBQUERY
710   seltablist(A) ::= stl_prefix(A) LP select(S) RP as(Z) on_using(N). {
711     A = sqlite3SrcListAppendFromTerm(pParse,A,0,0,&Z,S,&N);
712   }
713   seltablist(A) ::= stl_prefix(A) LP seltablist(F) RP as(Z) on_using(N). {
714     if( A==0 && Z.n==0 && N.pOn==0 && N.pUsing==0 ){
715       A = F;
716     }else if( F->nSrc==1 ){
717       A = sqlite3SrcListAppendFromTerm(pParse,A,0,0,&Z,0,&N);
718       if( A ){
719         SrcItem *pNew = &A->a[A->nSrc-1];
720         SrcItem *pOld = F->a;
721         pNew->zName = pOld->zName;
722         pNew->zDatabase = pOld->zDatabase;
723         pNew->pSelect = pOld->pSelect;
724         if( pNew->pSelect && (pNew->pSelect->selFlags & SF_NestedFrom)!=0 ){
725           pNew->fg.isNestedFrom = 1;
726         }
727         if( pOld->fg.isTabFunc ){
728           pNew->u1.pFuncArg = pOld->u1.pFuncArg;
729           pOld->u1.pFuncArg = 0;
730           pOld->fg.isTabFunc = 0;
731           pNew->fg.isTabFunc = 1;
732         }
733         pOld->zName = pOld->zDatabase = 0;
734         pOld->pSelect = 0;
735       }
736       sqlite3SrcListDelete(pParse->db, F);
737     }else{
738       Select *pSubquery;
739       sqlite3SrcListShiftJoinType(pParse,F);
740       pSubquery = sqlite3SelectNew(pParse,0,F,0,0,0,0,SF_NestedFrom,0);
741       A = sqlite3SrcListAppendFromTerm(pParse,A,0,0,&Z,pSubquery,&N);
742     }
743   }
744 %endif  SQLITE_OMIT_SUBQUERY
745 
746 %type dbnm {Token}
747 dbnm(A) ::= .          {A.z=0; A.n=0;}
748 dbnm(A) ::= DOT nm(X). {A = X;}
749 
750 %type fullname {SrcList*}
751 %destructor fullname {sqlite3SrcListDelete(pParse->db, $$);}
752 fullname(A) ::= nm(X).  {
753   A = sqlite3SrcListAppend(pParse,0,&X,0);
754   if( IN_RENAME_OBJECT && A ) sqlite3RenameTokenMap(pParse, A->a[0].zName, &X);
755 }
756 fullname(A) ::= nm(X) DOT nm(Y). {
757   A = sqlite3SrcListAppend(pParse,0,&X,&Y);
758   if( IN_RENAME_OBJECT && A ) sqlite3RenameTokenMap(pParse, A->a[0].zName, &Y);
759 }
760 
761 %type xfullname {SrcList*}
762 %destructor xfullname {sqlite3SrcListDelete(pParse->db, $$);}
763 xfullname(A) ::= nm(X).
764    {A = sqlite3SrcListAppend(pParse,0,&X,0); /*A-overwrites-X*/}
765 xfullname(A) ::= nm(X) DOT nm(Y).
766    {A = sqlite3SrcListAppend(pParse,0,&X,&Y); /*A-overwrites-X*/}
767 xfullname(A) ::= nm(X) DOT nm(Y) AS nm(Z).  {
768    A = sqlite3SrcListAppend(pParse,0,&X,&Y); /*A-overwrites-X*/
769    if( A ) A->a[0].zAlias = sqlite3NameFromToken(pParse->db, &Z);
770 }
771 xfullname(A) ::= nm(X) AS nm(Z). {
772    A = sqlite3SrcListAppend(pParse,0,&X,0); /*A-overwrites-X*/
773    if( A ) A->a[0].zAlias = sqlite3NameFromToken(pParse->db, &Z);
774 }
775 
776 %type joinop {int}
777 joinop(X) ::= COMMA|JOIN.              { X = JT_INNER; }
778 joinop(X) ::= JOIN_KW(A) JOIN.
779                   {X = sqlite3JoinType(pParse,&A,0,0);  /*X-overwrites-A*/}
780 joinop(X) ::= JOIN_KW(A) nm(B) JOIN.
781                   {X = sqlite3JoinType(pParse,&A,&B,0); /*X-overwrites-A*/}
782 joinop(X) ::= JOIN_KW(A) nm(B) nm(C) JOIN.
783                   {X = sqlite3JoinType(pParse,&A,&B,&C);/*X-overwrites-A*/}
784 
785 // There is a parsing abiguity in an upsert statement that uses a
786 // SELECT on the RHS of a the INSERT:
787 //
788 //      INSERT INTO tab SELECT * FROM aaa JOIN bbb ON CONFLICT ...
789 //                                        here ----^^
790 //
791 // When the ON token is encountered, the parser does not know if it is
792 // the beginning of an ON CONFLICT clause, or the beginning of an ON
793 // clause associated with the JOIN.  The conflict is resolved in favor
794 // of the JOIN.  If an ON CONFLICT clause is intended, insert a dummy
795 // WHERE clause in between, like this:
796 //
797 //      INSERT INTO tab SELECT * FROM aaa JOIN bbb WHERE true ON CONFLICT ...
798 //
799 // The [AND] and [OR] precedence marks in the rules for on_using cause the
800 // ON in this context to always be interpreted as belonging to the JOIN.
801 //
802 %type on_using {OnOrUsing}
803 //%destructor on_using {sqlite3ClearOnOrUsing(pParse->db, &$$);}
804 on_using(N) ::= ON expr(E).            {N.pOn = E; N.pUsing = 0;}
805 on_using(N) ::= USING LP idlist(L) RP. {N.pOn = 0; N.pUsing = L;}
806 on_using(N) ::= .                 [OR] {N.pOn = 0; N.pUsing = 0;}
807 
808 // Note that this block abuses the Token type just a little. If there is
809 // no "INDEXED BY" clause, the returned token is empty (z==0 && n==0). If
810 // there is an INDEXED BY clause, then the token is populated as per normal,
811 // with z pointing to the token data and n containing the number of bytes
812 // in the token.
813 //
814 // If there is a "NOT INDEXED" clause, then (z==0 && n==1), which is
815 // normally illegal. The sqlite3SrcListIndexedBy() function
816 // recognizes and interprets this as a special case.
817 //
818 %type indexed_opt {Token}
819 %type indexed_by  {Token}
820 indexed_opt(A) ::= .                 {A.z=0; A.n=0;}
821 indexed_opt(A) ::= indexed_by(A).
822 indexed_by(A)  ::= INDEXED BY nm(X). {A = X;}
823 indexed_by(A)  ::= NOT INDEXED.      {A.z=0; A.n=1;}
824 
825 %type orderby_opt {ExprList*}
826 %destructor orderby_opt {sqlite3ExprListDelete(pParse->db, $$);}
827 
828 // the sortlist non-terminal stores a list of expression where each
829 // expression is optionally followed by ASC or DESC to indicate the
830 // sort order.
831 //
832 %type sortlist {ExprList*}
833 %destructor sortlist {sqlite3ExprListDelete(pParse->db, $$);}
834 
835 orderby_opt(A) ::= .                          {A = 0;}
836 orderby_opt(A) ::= ORDER BY sortlist(X).      {A = X;}
837 sortlist(A) ::= sortlist(A) COMMA expr(Y) sortorder(Z) nulls(X). {
838   A = sqlite3ExprListAppend(pParse,A,Y);
839   sqlite3ExprListSetSortOrder(A,Z,X);
840 }
841 sortlist(A) ::= expr(Y) sortorder(Z) nulls(X). {
842   A = sqlite3ExprListAppend(pParse,0,Y); /*A-overwrites-Y*/
843   sqlite3ExprListSetSortOrder(A,Z,X);
844 }
845 
846 %type sortorder {int}
847 
848 sortorder(A) ::= ASC.           {A = SQLITE_SO_ASC;}
849 sortorder(A) ::= DESC.          {A = SQLITE_SO_DESC;}
850 sortorder(A) ::= .              {A = SQLITE_SO_UNDEFINED;}
851 
852 %type nulls {int}
853 nulls(A) ::= NULLS FIRST.       {A = SQLITE_SO_ASC;}
854 nulls(A) ::= NULLS LAST.        {A = SQLITE_SO_DESC;}
855 nulls(A) ::= .                  {A = SQLITE_SO_UNDEFINED;}
856 
857 %type groupby_opt {ExprList*}
858 %destructor groupby_opt {sqlite3ExprListDelete(pParse->db, $$);}
859 groupby_opt(A) ::= .                      {A = 0;}
860 groupby_opt(A) ::= GROUP BY nexprlist(X). {A = X;}
861 
862 %type having_opt {Expr*}
863 %destructor having_opt {sqlite3ExprDelete(pParse->db, $$);}
864 having_opt(A) ::= .                {A = 0;}
865 having_opt(A) ::= HAVING expr(X).  {A = X;}
866 
867 %type limit_opt {Expr*}
868 
869 // The destructor for limit_opt will never fire in the current grammar.
870 // The limit_opt non-terminal only occurs at the end of a single production
871 // rule for SELECT statements.  As soon as the rule that create the
872 // limit_opt non-terminal reduces, the SELECT statement rule will also
873 // reduce.  So there is never a limit_opt non-terminal on the stack
874 // except as a transient.  So there is never anything to destroy.
875 //
876 //%destructor limit_opt {sqlite3ExprDelete(pParse->db, $$);}
877 limit_opt(A) ::= .       {A = 0;}
878 limit_opt(A) ::= LIMIT expr(X).
879                          {A = sqlite3PExpr(pParse,TK_LIMIT,X,0);}
880 limit_opt(A) ::= LIMIT expr(X) OFFSET expr(Y).
881                          {A = sqlite3PExpr(pParse,TK_LIMIT,X,Y);}
882 limit_opt(A) ::= LIMIT expr(X) COMMA expr(Y).
883                          {A = sqlite3PExpr(pParse,TK_LIMIT,Y,X);}
884 
885 /////////////////////////// The DELETE statement /////////////////////////////
886 //
887 %if SQLITE_ENABLE_UPDATE_DELETE_LIMIT || SQLITE_UDL_CAPABLE_PARSER
888 cmd ::= with DELETE FROM xfullname(X) indexed_opt(I) where_opt_ret(W)
889         orderby_opt(O) limit_opt(L). {
890   sqlite3SrcListIndexedBy(pParse, X, &I);
891 #ifndef SQLITE_ENABLE_UPDATE_DELETE_LIMIT
892   if( O || L ){
893     updateDeleteLimitError(pParse,O,L);
894     O = 0;
895     L = 0;
896   }
897 #endif
898   sqlite3DeleteFrom(pParse,X,W,O,L);
899 }
900 %else
901 cmd ::= with DELETE FROM xfullname(X) indexed_opt(I) where_opt_ret(W). {
902   sqlite3SrcListIndexedBy(pParse, X, &I);
903   sqlite3DeleteFrom(pParse,X,W,0,0);
904 }
905 %endif
906 
907 %type where_opt {Expr*}
908 %destructor where_opt {sqlite3ExprDelete(pParse->db, $$);}
909 %type where_opt_ret {Expr*}
910 %destructor where_opt_ret {sqlite3ExprDelete(pParse->db, $$);}
911 
912 where_opt(A) ::= .                    {A = 0;}
913 where_opt(A) ::= WHERE expr(X).       {A = X;}
914 where_opt_ret(A) ::= .                                      {A = 0;}
915 where_opt_ret(A) ::= WHERE expr(X).                         {A = X;}
916 where_opt_ret(A) ::= RETURNING selcollist(X).
917        {sqlite3AddReturning(pParse,X); A = 0;}
918 where_opt_ret(A) ::= WHERE expr(X) RETURNING selcollist(Y).
919        {sqlite3AddReturning(pParse,Y); A = X;}
920 
921 ////////////////////////// The UPDATE command ////////////////////////////////
922 //
923 %if SQLITE_ENABLE_UPDATE_DELETE_LIMIT || SQLITE_UDL_CAPABLE_PARSER
924 cmd ::= with UPDATE orconf(R) xfullname(X) indexed_opt(I) SET setlist(Y) from(F)
925         where_opt_ret(W) orderby_opt(O) limit_opt(L).  {
926   sqlite3SrcListIndexedBy(pParse, X, &I);
927   X = sqlite3SrcListAppendList(pParse, X, F);
928   sqlite3ExprListCheckLength(pParse,Y,"set list");
929 #ifndef SQLITE_ENABLE_UPDATE_DELETE_LIMIT
930   if( O || L ){
931     updateDeleteLimitError(pParse,O,L);
932     O = 0;
933     L = 0;
934   }
935 #endif
936   sqlite3Update(pParse,X,Y,W,R,O,L,0);
937 }
938 %else
939 cmd ::= with UPDATE orconf(R) xfullname(X) indexed_opt(I) SET setlist(Y) from(F)
940         where_opt_ret(W). {
941   sqlite3SrcListIndexedBy(pParse, X, &I);
942   sqlite3ExprListCheckLength(pParse,Y,"set list");
943   X = sqlite3SrcListAppendList(pParse, X, F);
944   sqlite3Update(pParse,X,Y,W,R,0,0,0);
945 }
946 %endif
947 
948 
949 
950 %type setlist {ExprList*}
951 %destructor setlist {sqlite3ExprListDelete(pParse->db, $$);}
952 
953 setlist(A) ::= setlist(A) COMMA nm(X) EQ expr(Y). {
954   A = sqlite3ExprListAppend(pParse, A, Y);
955   sqlite3ExprListSetName(pParse, A, &X, 1);
956 }
957 setlist(A) ::= setlist(A) COMMA LP idlist(X) RP EQ expr(Y). {
958   A = sqlite3ExprListAppendVector(pParse, A, X, Y);
959 }
960 setlist(A) ::= nm(X) EQ expr(Y). {
961   A = sqlite3ExprListAppend(pParse, 0, Y);
962   sqlite3ExprListSetName(pParse, A, &X, 1);
963 }
964 setlist(A) ::= LP idlist(X) RP EQ expr(Y). {
965   A = sqlite3ExprListAppendVector(pParse, 0, X, Y);
966 }
967 
968 ////////////////////////// The INSERT command /////////////////////////////////
969 //
970 cmd ::= with insert_cmd(R) INTO xfullname(X) idlist_opt(F) select(S)
971         upsert(U). {
972   sqlite3Insert(pParse, X, S, F, R, U);
973 }
974 cmd ::= with insert_cmd(R) INTO xfullname(X) idlist_opt(F) DEFAULT VALUES returning.
975 {
976   sqlite3Insert(pParse, X, 0, F, R, 0);
977 }
978 
979 %type upsert {Upsert*}
980 
981 // Because upsert only occurs at the tip end of the INSERT rule for cmd,
982 // there is never a case where the value of the upsert pointer will not
983 // be destroyed by the cmd action.  So comment-out the destructor to
984 // avoid unreachable code.
985 //%destructor upsert {sqlite3UpsertDelete(pParse->db,$$);}
986 upsert(A) ::= . { A = 0; }
987 upsert(A) ::= RETURNING selcollist(X).  { A = 0; sqlite3AddReturning(pParse,X); }
988 upsert(A) ::= ON CONFLICT LP sortlist(T) RP where_opt(TW)
989               DO UPDATE SET setlist(Z) where_opt(W) upsert(N).
990               { A = sqlite3UpsertNew(pParse->db,T,TW,Z,W,N);}
991 upsert(A) ::= ON CONFLICT LP sortlist(T) RP where_opt(TW) DO NOTHING upsert(N).
992               { A = sqlite3UpsertNew(pParse->db,T,TW,0,0,N); }
993 upsert(A) ::= ON CONFLICT DO NOTHING returning.
994               { A = sqlite3UpsertNew(pParse->db,0,0,0,0,0); }
995 upsert(A) ::= ON CONFLICT DO UPDATE SET setlist(Z) where_opt(W) returning.
996               { A = sqlite3UpsertNew(pParse->db,0,0,Z,W,0);}
997 
998 returning ::= RETURNING selcollist(X).  {sqlite3AddReturning(pParse,X);}
999 returning ::= .
1000 
1001 %type insert_cmd {int}
1002 insert_cmd(A) ::= INSERT orconf(R).   {A = R;}
1003 insert_cmd(A) ::= REPLACE.            {A = OE_Replace;}
1004 
1005 %type idlist_opt {IdList*}
1006 %destructor idlist_opt {sqlite3IdListDelete(pParse->db, $$);}
1007 %type idlist {IdList*}
1008 %destructor idlist {sqlite3IdListDelete(pParse->db, $$);}
1009 
1010 idlist_opt(A) ::= .                       {A = 0;}
1011 idlist_opt(A) ::= LP idlist(X) RP.    {A = X;}
1012 idlist(A) ::= idlist(A) COMMA nm(Y).
1013     {A = sqlite3IdListAppend(pParse,A,&Y);}
1014 idlist(A) ::= nm(Y).
1015     {A = sqlite3IdListAppend(pParse,0,&Y); /*A-overwrites-Y*/}
1016 
1017 /////////////////////////// Expression Processing /////////////////////////////
1018 //
1019 
1020 %type expr {Expr*}
1021 %destructor expr {sqlite3ExprDelete(pParse->db, $$);}
1022 %type term {Expr*}
1023 %destructor term {sqlite3ExprDelete(pParse->db, $$);}
1024 
1025 %include {
1026 
1027   /* Construct a new Expr object from a single token */
1028   static Expr *tokenExpr(Parse *pParse, int op, Token t){
1029     Expr *p = sqlite3DbMallocRawNN(pParse->db, sizeof(Expr)+t.n+1);
1030     if( p ){
1031       /* memset(p, 0, sizeof(Expr)); */
1032       p->op = (u8)op;
1033       p->affExpr = 0;
1034       p->flags = EP_Leaf;
1035       ExprClearVVAProperties(p);
1036       /* p->iAgg = -1; // Not required */
1037       p->pLeft = p->pRight = 0;
1038       p->pAggInfo = 0;
1039       memset(&p->x, 0, sizeof(p->x));
1040       memset(&p->y, 0, sizeof(p->y));
1041       p->op2 = 0;
1042       p->iTable = 0;
1043       p->iColumn = 0;
1044       p->u.zToken = (char*)&p[1];
1045       memcpy(p->u.zToken, t.z, t.n);
1046       p->u.zToken[t.n] = 0;
1047       p->w.iOfst = (int)(t.z - pParse->zTail);
1048       if( sqlite3Isquote(p->u.zToken[0]) ){
1049         sqlite3DequoteExpr(p);
1050       }
1051 #if SQLITE_MAX_EXPR_DEPTH>0
1052       p->nHeight = 1;
1053 #endif
1054       if( IN_RENAME_OBJECT ){
1055         return (Expr*)sqlite3RenameTokenMap(pParse, (void*)p, &t);
1056       }
1057     }
1058     return p;
1059   }
1060 
1061 }
1062 
1063 expr(A) ::= term(A).
1064 expr(A) ::= LP expr(X) RP. {A = X;}
1065 expr(A) ::= id(X).          {A=tokenExpr(pParse,TK_ID,X); /*A-overwrites-X*/}
1066 expr(A) ::= JOIN_KW(X).     {A=tokenExpr(pParse,TK_ID,X); /*A-overwrites-X*/}
1067 expr(A) ::= nm(X) DOT nm(Y). {
1068   Expr *temp1 = tokenExpr(pParse,TK_ID,X);
1069   Expr *temp2 = tokenExpr(pParse,TK_ID,Y);
1070   A = sqlite3PExpr(pParse, TK_DOT, temp1, temp2);
1071 }
1072 expr(A) ::= nm(X) DOT nm(Y) DOT nm(Z). {
1073   Expr *temp1 = tokenExpr(pParse,TK_ID,X);
1074   Expr *temp2 = tokenExpr(pParse,TK_ID,Y);
1075   Expr *temp3 = tokenExpr(pParse,TK_ID,Z);
1076   Expr *temp4 = sqlite3PExpr(pParse, TK_DOT, temp2, temp3);
1077   if( IN_RENAME_OBJECT ){
1078     sqlite3RenameTokenRemap(pParse, 0, temp1);
1079   }
1080   A = sqlite3PExpr(pParse, TK_DOT, temp1, temp4);
1081 }
1082 term(A) ::= NULL|FLOAT|BLOB(X). {A=tokenExpr(pParse,@X,X); /*A-overwrites-X*/}
1083 term(A) ::= STRING(X).          {A=tokenExpr(pParse,@X,X); /*A-overwrites-X*/}
1084 term(A) ::= INTEGER(X). {
1085   A = sqlite3ExprAlloc(pParse->db, TK_INTEGER, &X, 1);
1086   if( A ) A->w.iOfst = (int)(X.z - pParse->zTail);
1087 }
1088 expr(A) ::= VARIABLE(X).     {
1089   if( !(X.z[0]=='#' && sqlite3Isdigit(X.z[1])) ){
1090     u32 n = X.n;
1091     A = tokenExpr(pParse, TK_VARIABLE, X);
1092     sqlite3ExprAssignVarNumber(pParse, A, n);
1093   }else{
1094     /* When doing a nested parse, one can include terms in an expression
1095     ** that look like this:   #1 #2 ...  These terms refer to registers
1096     ** in the virtual machine.  #N is the N-th register. */
1097     Token t = X; /*A-overwrites-X*/
1098     assert( t.n>=2 );
1099     if( pParse->nested==0 ){
1100       sqlite3ErrorMsg(pParse, "near \"%T\": syntax error", &t);
1101       A = 0;
1102     }else{
1103       A = sqlite3PExpr(pParse, TK_REGISTER, 0, 0);
1104       if( A ) sqlite3GetInt32(&t.z[1], &A->iTable);
1105     }
1106   }
1107 }
1108 expr(A) ::= expr(A) COLLATE ids(C). {
1109   A = sqlite3ExprAddCollateToken(pParse, A, &C, 1);
1110 }
1111 %ifndef SQLITE_OMIT_CAST
1112 expr(A) ::= CAST LP expr(E) AS typetoken(T) RP. {
1113   A = sqlite3ExprAlloc(pParse->db, TK_CAST, &T, 1);
1114   sqlite3ExprAttachSubtrees(pParse->db, A, E, 0);
1115 }
1116 %endif  SQLITE_OMIT_CAST
1117 
1118 
1119 expr(A) ::= id(X) LP distinct(D) exprlist(Y) RP. {
1120   A = sqlite3ExprFunction(pParse, Y, &X, D);
1121 }
1122 expr(A) ::= id(X) LP STAR RP. {
1123   A = sqlite3ExprFunction(pParse, 0, &X, 0);
1124 }
1125 
1126 %ifndef SQLITE_OMIT_WINDOWFUNC
1127 expr(A) ::= id(X) LP distinct(D) exprlist(Y) RP filter_over(Z). {
1128   A = sqlite3ExprFunction(pParse, Y, &X, D);
1129   sqlite3WindowAttach(pParse, A, Z);
1130 }
1131 expr(A) ::= id(X) LP STAR RP filter_over(Z). {
1132   A = sqlite3ExprFunction(pParse, 0, &X, 0);
1133   sqlite3WindowAttach(pParse, A, Z);
1134 }
1135 %endif
1136 
1137 term(A) ::= CTIME_KW(OP). {
1138   A = sqlite3ExprFunction(pParse, 0, &OP, 0);
1139 }
1140 
1141 expr(A) ::= LP nexprlist(X) COMMA expr(Y) RP. {
1142   ExprList *pList = sqlite3ExprListAppend(pParse, X, Y);
1143   A = sqlite3PExpr(pParse, TK_VECTOR, 0, 0);
1144   if( A ){
1145     A->x.pList = pList;
1146     if( ALWAYS(pList->nExpr) ){
1147       A->flags |= pList->a[0].pExpr->flags & EP_Propagate;
1148     }
1149   }else{
1150     sqlite3ExprListDelete(pParse->db, pList);
1151   }
1152 }
1153 
1154 expr(A) ::= expr(A) AND expr(Y).        {A=sqlite3ExprAnd(pParse,A,Y);}
1155 expr(A) ::= expr(A) OR(OP) expr(Y).     {A=sqlite3PExpr(pParse,@OP,A,Y);}
1156 expr(A) ::= expr(A) LT|GT|GE|LE(OP) expr(Y).
1157                                         {A=sqlite3PExpr(pParse,@OP,A,Y);}
1158 expr(A) ::= expr(A) EQ|NE(OP) expr(Y).  {A=sqlite3PExpr(pParse,@OP,A,Y);}
1159 expr(A) ::= expr(A) BITAND|BITOR|LSHIFT|RSHIFT(OP) expr(Y).
1160                                         {A=sqlite3PExpr(pParse,@OP,A,Y);}
1161 expr(A) ::= expr(A) PLUS|MINUS(OP) expr(Y).
1162                                         {A=sqlite3PExpr(pParse,@OP,A,Y);}
1163 expr(A) ::= expr(A) STAR|SLASH|REM(OP) expr(Y).
1164                                         {A=sqlite3PExpr(pParse,@OP,A,Y);}
1165 expr(A) ::= expr(A) CONCAT(OP) expr(Y). {A=sqlite3PExpr(pParse,@OP,A,Y);}
1166 %type likeop {Token}
1167 likeop(A) ::= LIKE_KW|MATCH(A).
1168 likeop(A) ::= NOT LIKE_KW|MATCH(X). {A=X; A.n|=0x80000000; /*A-overwrite-X*/}
1169 expr(A) ::= expr(A) likeop(OP) expr(Y).  [LIKE_KW]  {
1170   ExprList *pList;
1171   int bNot = OP.n & 0x80000000;
1172   OP.n &= 0x7fffffff;
1173   pList = sqlite3ExprListAppend(pParse,0, Y);
1174   pList = sqlite3ExprListAppend(pParse,pList, A);
1175   A = sqlite3ExprFunction(pParse, pList, &OP, 0);
1176   if( bNot ) A = sqlite3PExpr(pParse, TK_NOT, A, 0);
1177   if( A ) A->flags |= EP_InfixFunc;
1178 }
1179 expr(A) ::= expr(A) likeop(OP) expr(Y) ESCAPE expr(E).  [LIKE_KW]  {
1180   ExprList *pList;
1181   int bNot = OP.n & 0x80000000;
1182   OP.n &= 0x7fffffff;
1183   pList = sqlite3ExprListAppend(pParse,0, Y);
1184   pList = sqlite3ExprListAppend(pParse,pList, A);
1185   pList = sqlite3ExprListAppend(pParse,pList, E);
1186   A = sqlite3ExprFunction(pParse, pList, &OP, 0);
1187   if( bNot ) A = sqlite3PExpr(pParse, TK_NOT, A, 0);
1188   if( A ) A->flags |= EP_InfixFunc;
1189 }
1190 
1191 expr(A) ::= expr(A) ISNULL|NOTNULL(E).   {A = sqlite3PExpr(pParse,@E,A,0);}
1192 expr(A) ::= expr(A) NOT NULL.    {A = sqlite3PExpr(pParse,TK_NOTNULL,A,0);}
1193 
1194 %include {
1195   /* A routine to convert a binary TK_IS or TK_ISNOT expression into a
1196   ** unary TK_ISNULL or TK_NOTNULL expression. */
1197   static void binaryToUnaryIfNull(Parse *pParse, Expr *pY, Expr *pA, int op){
1198     sqlite3 *db = pParse->db;
1199     if( pA && pY && pY->op==TK_NULL && !IN_RENAME_OBJECT ){
1200       pA->op = (u8)op;
1201       sqlite3ExprDelete(db, pA->pRight);
1202       pA->pRight = 0;
1203     }
1204   }
1205 }
1206 
1207 //    expr1 IS expr2
1208 //    expr1 IS NOT expr2
1209 //
1210 // If expr2 is NULL then code as TK_ISNULL or TK_NOTNULL.  If expr2
1211 // is any other expression, code as TK_IS or TK_ISNOT.
1212 //
1213 expr(A) ::= expr(A) IS expr(Y).     {
1214   A = sqlite3PExpr(pParse,TK_IS,A,Y);
1215   binaryToUnaryIfNull(pParse, Y, A, TK_ISNULL);
1216 }
1217 expr(A) ::= expr(A) IS NOT expr(Y). {
1218   A = sqlite3PExpr(pParse,TK_ISNOT,A,Y);
1219   binaryToUnaryIfNull(pParse, Y, A, TK_NOTNULL);
1220 }
1221 expr(A) ::= expr(A) IS NOT DISTINCT FROM expr(Y).     {
1222   A = sqlite3PExpr(pParse,TK_IS,A,Y);
1223   binaryToUnaryIfNull(pParse, Y, A, TK_ISNULL);
1224 }
1225 expr(A) ::= expr(A) IS DISTINCT FROM expr(Y). {
1226   A = sqlite3PExpr(pParse,TK_ISNOT,A,Y);
1227   binaryToUnaryIfNull(pParse, Y, A, TK_NOTNULL);
1228 }
1229 
1230 expr(A) ::= NOT(B) expr(X).
1231               {A = sqlite3PExpr(pParse, @B, X, 0);/*A-overwrites-B*/}
1232 expr(A) ::= BITNOT(B) expr(X).
1233               {A = sqlite3PExpr(pParse, @B, X, 0);/*A-overwrites-B*/}
1234 expr(A) ::= PLUS|MINUS(B) expr(X). [BITNOT] {
1235   A = sqlite3PExpr(pParse, @B==TK_PLUS ? TK_UPLUS : TK_UMINUS, X, 0);
1236   /*A-overwrites-B*/
1237 }
1238 
1239 expr(A) ::= expr(B) PTR(C) expr(D). {
1240   ExprList *pList = sqlite3ExprListAppend(pParse, 0, B);
1241   pList = sqlite3ExprListAppend(pParse, pList, D);
1242   A = sqlite3ExprFunction(pParse, pList, &C, 0);
1243 }
1244 
1245 %type between_op {int}
1246 between_op(A) ::= BETWEEN.     {A = 0;}
1247 between_op(A) ::= NOT BETWEEN. {A = 1;}
1248 expr(A) ::= expr(A) between_op(N) expr(X) AND expr(Y). [BETWEEN] {
1249   ExprList *pList = sqlite3ExprListAppend(pParse,0, X);
1250   pList = sqlite3ExprListAppend(pParse,pList, Y);
1251   A = sqlite3PExpr(pParse, TK_BETWEEN, A, 0);
1252   if( A ){
1253     A->x.pList = pList;
1254   }else{
1255     sqlite3ExprListDelete(pParse->db, pList);
1256   }
1257   if( N ) A = sqlite3PExpr(pParse, TK_NOT, A, 0);
1258 }
1259 %ifndef SQLITE_OMIT_SUBQUERY
1260   %type in_op {int}
1261   in_op(A) ::= IN.      {A = 0;}
1262   in_op(A) ::= NOT IN.  {A = 1;}
1263   expr(A) ::= expr(A) in_op(N) LP exprlist(Y) RP. [IN] {
1264     if( Y==0 ){
1265       /* Expressions of the form
1266       **
1267       **      expr1 IN ()
1268       **      expr1 NOT IN ()
1269       **
1270       ** simplify to constants 0 (false) and 1 (true), respectively,
1271       ** regardless of the value of expr1.
1272       */
1273       sqlite3ExprUnmapAndDelete(pParse, A);
1274       A = sqlite3Expr(pParse->db, TK_STRING, N ? "true" : "false");
1275       if( A ) sqlite3ExprIdToTrueFalse(A);
1276     }else{
1277       Expr *pRHS = Y->a[0].pExpr;
1278       if( Y->nExpr==1 && sqlite3ExprIsConstant(pRHS) && A->op!=TK_VECTOR ){
1279         Y->a[0].pExpr = 0;
1280         sqlite3ExprListDelete(pParse->db, Y);
1281         pRHS = sqlite3PExpr(pParse, TK_UPLUS, pRHS, 0);
1282         A = sqlite3PExpr(pParse, TK_EQ, A, pRHS);
1283       }else{
1284         A = sqlite3PExpr(pParse, TK_IN, A, 0);
1285         if( A==0 ){
1286           sqlite3ExprListDelete(pParse->db, Y);
1287         }else if( A->pLeft->op==TK_VECTOR ){
1288           int nExpr = A->pLeft->x.pList->nExpr;
1289           Select *pSelectRHS = sqlite3ExprListToValues(pParse, nExpr, Y);
1290           if( pSelectRHS ){
1291             parserDoubleLinkSelect(pParse, pSelectRHS);
1292             sqlite3PExprAddSelect(pParse, A, pSelectRHS);
1293           }
1294         }else{
1295           A->x.pList = Y;
1296           sqlite3ExprSetHeightAndFlags(pParse, A);
1297         }
1298       }
1299       if( N ) A = sqlite3PExpr(pParse, TK_NOT, A, 0);
1300     }
1301   }
1302   expr(A) ::= LP select(X) RP. {
1303     A = sqlite3PExpr(pParse, TK_SELECT, 0, 0);
1304     sqlite3PExprAddSelect(pParse, A, X);
1305   }
1306   expr(A) ::= expr(A) in_op(N) LP select(Y) RP.  [IN] {
1307     A = sqlite3PExpr(pParse, TK_IN, A, 0);
1308     sqlite3PExprAddSelect(pParse, A, Y);
1309     if( N ) A = sqlite3PExpr(pParse, TK_NOT, A, 0);
1310   }
1311   expr(A) ::= expr(A) in_op(N) nm(Y) dbnm(Z) paren_exprlist(E). [IN] {
1312     SrcList *pSrc = sqlite3SrcListAppend(pParse, 0,&Y,&Z);
1313     Select *pSelect = sqlite3SelectNew(pParse, 0,pSrc,0,0,0,0,0,0);
1314     if( E )  sqlite3SrcListFuncArgs(pParse, pSelect ? pSrc : 0, E);
1315     A = sqlite3PExpr(pParse, TK_IN, A, 0);
1316     sqlite3PExprAddSelect(pParse, A, pSelect);
1317     if( N ) A = sqlite3PExpr(pParse, TK_NOT, A, 0);
1318   }
1319   expr(A) ::= EXISTS LP select(Y) RP. {
1320     Expr *p;
1321     p = A = sqlite3PExpr(pParse, TK_EXISTS, 0, 0);
1322     sqlite3PExprAddSelect(pParse, p, Y);
1323   }
1324 %endif SQLITE_OMIT_SUBQUERY
1325 
1326 /* CASE expressions */
1327 expr(A) ::= CASE case_operand(X) case_exprlist(Y) case_else(Z) END. {
1328   A = sqlite3PExpr(pParse, TK_CASE, X, 0);
1329   if( A ){
1330     A->x.pList = Z ? sqlite3ExprListAppend(pParse,Y,Z) : Y;
1331     sqlite3ExprSetHeightAndFlags(pParse, A);
1332   }else{
1333     sqlite3ExprListDelete(pParse->db, Y);
1334     sqlite3ExprDelete(pParse->db, Z);
1335   }
1336 }
1337 %type case_exprlist {ExprList*}
1338 %destructor case_exprlist {sqlite3ExprListDelete(pParse->db, $$);}
1339 case_exprlist(A) ::= case_exprlist(A) WHEN expr(Y) THEN expr(Z). {
1340   A = sqlite3ExprListAppend(pParse,A, Y);
1341   A = sqlite3ExprListAppend(pParse,A, Z);
1342 }
1343 case_exprlist(A) ::= WHEN expr(Y) THEN expr(Z). {
1344   A = sqlite3ExprListAppend(pParse,0, Y);
1345   A = sqlite3ExprListAppend(pParse,A, Z);
1346 }
1347 %type case_else {Expr*}
1348 %destructor case_else {sqlite3ExprDelete(pParse->db, $$);}
1349 case_else(A) ::=  ELSE expr(X).         {A = X;}
1350 case_else(A) ::=  .                     {A = 0;}
1351 %type case_operand {Expr*}
1352 %destructor case_operand {sqlite3ExprDelete(pParse->db, $$);}
1353 case_operand(A) ::= expr(X).            {A = X; /*A-overwrites-X*/}
1354 case_operand(A) ::= .                   {A = 0;}
1355 
1356 %type exprlist {ExprList*}
1357 %destructor exprlist {sqlite3ExprListDelete(pParse->db, $$);}
1358 %type nexprlist {ExprList*}
1359 %destructor nexprlist {sqlite3ExprListDelete(pParse->db, $$);}
1360 
1361 exprlist(A) ::= nexprlist(A).
1362 exprlist(A) ::= .                            {A = 0;}
1363 nexprlist(A) ::= nexprlist(A) COMMA expr(Y).
1364     {A = sqlite3ExprListAppend(pParse,A,Y);}
1365 nexprlist(A) ::= expr(Y).
1366     {A = sqlite3ExprListAppend(pParse,0,Y); /*A-overwrites-Y*/}
1367 
1368 %ifndef SQLITE_OMIT_SUBQUERY
1369 /* A paren_exprlist is an optional expression list contained inside
1370 ** of parenthesis */
1371 %type paren_exprlist {ExprList*}
1372 %destructor paren_exprlist {sqlite3ExprListDelete(pParse->db, $$);}
1373 paren_exprlist(A) ::= .   {A = 0;}
1374 paren_exprlist(A) ::= LP exprlist(X) RP.  {A = X;}
1375 %endif SQLITE_OMIT_SUBQUERY
1376 
1377 
1378 ///////////////////////////// The CREATE INDEX command ///////////////////////
1379 //
1380 cmd ::= createkw(S) uniqueflag(U) INDEX ifnotexists(NE) nm(X) dbnm(D)
1381         ON nm(Y) LP sortlist(Z) RP where_opt(W). {
1382   sqlite3CreateIndex(pParse, &X, &D,
1383                      sqlite3SrcListAppend(pParse,0,&Y,0), Z, U,
1384                       &S, W, SQLITE_SO_ASC, NE, SQLITE_IDXTYPE_APPDEF);
1385   if( IN_RENAME_OBJECT && pParse->pNewIndex ){
1386     sqlite3RenameTokenMap(pParse, pParse->pNewIndex->zName, &Y);
1387   }
1388 }
1389 
1390 %type uniqueflag {int}
1391 uniqueflag(A) ::= UNIQUE.  {A = OE_Abort;}
1392 uniqueflag(A) ::= .        {A = OE_None;}
1393 
1394 
1395 // The eidlist non-terminal (Expression Id List) generates an ExprList
1396 // from a list of identifiers.  The identifier names are in ExprList.a[].zName.
1397 // This list is stored in an ExprList rather than an IdList so that it
1398 // can be easily sent to sqlite3ColumnsExprList().
1399 //
1400 // eidlist is grouped with CREATE INDEX because it used to be the non-terminal
1401 // used for the arguments to an index.  That is just an historical accident.
1402 //
1403 // IMPORTANT COMPATIBILITY NOTE:  Some prior versions of SQLite accepted
1404 // COLLATE clauses and ASC or DESC keywords on ID lists in inappropriate
1405 // places - places that might have been stored in the sqlite_schema table.
1406 // Those extra features were ignored.  But because they might be in some
1407 // (busted) old databases, we need to continue parsing them when loading
1408 // historical schemas.
1409 //
1410 %type eidlist {ExprList*}
1411 %destructor eidlist {sqlite3ExprListDelete(pParse->db, $$);}
1412 %type eidlist_opt {ExprList*}
1413 %destructor eidlist_opt {sqlite3ExprListDelete(pParse->db, $$);}
1414 
1415 %include {
1416   /* Add a single new term to an ExprList that is used to store a
1417   ** list of identifiers.  Report an error if the ID list contains
1418   ** a COLLATE clause or an ASC or DESC keyword, except ignore the
1419   ** error while parsing a legacy schema.
1420   */
1421   static ExprList *parserAddExprIdListTerm(
1422     Parse *pParse,
1423     ExprList *pPrior,
1424     Token *pIdToken,
1425     int hasCollate,
1426     int sortOrder
1427   ){
1428     ExprList *p = sqlite3ExprListAppend(pParse, pPrior, 0);
1429     if( (hasCollate || sortOrder!=SQLITE_SO_UNDEFINED)
1430         && pParse->db->init.busy==0
1431     ){
1432       sqlite3ErrorMsg(pParse, "syntax error after column name \"%.*s\"",
1433                          pIdToken->n, pIdToken->z);
1434     }
1435     sqlite3ExprListSetName(pParse, p, pIdToken, 1);
1436     return p;
1437   }
1438 } // end %include
1439 
1440 eidlist_opt(A) ::= .                         {A = 0;}
1441 eidlist_opt(A) ::= LP eidlist(X) RP.         {A = X;}
1442 eidlist(A) ::= eidlist(A) COMMA nm(Y) collate(C) sortorder(Z).  {
1443   A = parserAddExprIdListTerm(pParse, A, &Y, C, Z);
1444 }
1445 eidlist(A) ::= nm(Y) collate(C) sortorder(Z). {
1446   A = parserAddExprIdListTerm(pParse, 0, &Y, C, Z); /*A-overwrites-Y*/
1447 }
1448 
1449 %type collate {int}
1450 collate(C) ::= .              {C = 0;}
1451 collate(C) ::= COLLATE ids.   {C = 1;}
1452 
1453 
1454 ///////////////////////////// The DROP INDEX command /////////////////////////
1455 //
1456 cmd ::= DROP INDEX ifexists(E) fullname(X).   {sqlite3DropIndex(pParse, X, E);}
1457 
1458 ///////////////////////////// The VACUUM command /////////////////////////////
1459 //
1460 %if !SQLITE_OMIT_VACUUM && !SQLITE_OMIT_ATTACH
1461 %type vinto {Expr*}
1462 %destructor vinto {sqlite3ExprDelete(pParse->db, $$);}
1463 cmd ::= VACUUM vinto(Y).                {sqlite3Vacuum(pParse,0,Y);}
1464 cmd ::= VACUUM nm(X) vinto(Y).          {sqlite3Vacuum(pParse,&X,Y);}
1465 vinto(A) ::= INTO expr(X).              {A = X;}
1466 vinto(A) ::= .                          {A = 0;}
1467 %endif
1468 
1469 ///////////////////////////// The PRAGMA command /////////////////////////////
1470 //
1471 %ifndef SQLITE_OMIT_PRAGMA
1472 cmd ::= PRAGMA nm(X) dbnm(Z).                {sqlite3Pragma(pParse,&X,&Z,0,0);}
1473 cmd ::= PRAGMA nm(X) dbnm(Z) EQ nmnum(Y).    {sqlite3Pragma(pParse,&X,&Z,&Y,0);}
1474 cmd ::= PRAGMA nm(X) dbnm(Z) LP nmnum(Y) RP. {sqlite3Pragma(pParse,&X,&Z,&Y,0);}
1475 cmd ::= PRAGMA nm(X) dbnm(Z) EQ minus_num(Y).
1476                                              {sqlite3Pragma(pParse,&X,&Z,&Y,1);}
1477 cmd ::= PRAGMA nm(X) dbnm(Z) LP minus_num(Y) RP.
1478                                              {sqlite3Pragma(pParse,&X,&Z,&Y,1);}
1479 
1480 nmnum(A) ::= plus_num(A).
1481 nmnum(A) ::= nm(A).
1482 nmnum(A) ::= ON(A).
1483 nmnum(A) ::= DELETE(A).
1484 nmnum(A) ::= DEFAULT(A).
1485 %endif SQLITE_OMIT_PRAGMA
1486 %token_class number INTEGER|FLOAT.
1487 plus_num(A) ::= PLUS number(X).       {A = X;}
1488 plus_num(A) ::= number(A).
1489 minus_num(A) ::= MINUS number(X).     {A = X;}
1490 //////////////////////////// The CREATE TRIGGER command /////////////////////
1491 
1492 %ifndef SQLITE_OMIT_TRIGGER
1493 
1494 cmd ::= createkw trigger_decl(A) BEGIN trigger_cmd_list(S) END(Z). {
1495   Token all;
1496   all.z = A.z;
1497   all.n = (int)(Z.z - A.z) + Z.n;
1498   sqlite3FinishTrigger(pParse, S, &all);
1499 }
1500 
1501 trigger_decl(A) ::= temp(T) TRIGGER ifnotexists(NOERR) nm(B) dbnm(Z)
1502                     trigger_time(C) trigger_event(D)
1503                     ON fullname(E) foreach_clause when_clause(G). {
1504   sqlite3BeginTrigger(pParse, &B, &Z, C, D.a, D.b, E, G, T, NOERR);
1505   A = (Z.n==0?B:Z); /*A-overwrites-T*/
1506 }
1507 
1508 %type trigger_time {int}
1509 trigger_time(A) ::= BEFORE|AFTER(X).  { A = @X; /*A-overwrites-X*/ }
1510 trigger_time(A) ::= INSTEAD OF.  { A = TK_INSTEAD;}
1511 trigger_time(A) ::= .            { A = TK_BEFORE; }
1512 
1513 %type trigger_event {struct TrigEvent}
1514 %destructor trigger_event {sqlite3IdListDelete(pParse->db, $$.b);}
1515 trigger_event(A) ::= DELETE|INSERT(X).   {A.a = @X; /*A-overwrites-X*/ A.b = 0;}
1516 trigger_event(A) ::= UPDATE(X).          {A.a = @X; /*A-overwrites-X*/ A.b = 0;}
1517 trigger_event(A) ::= UPDATE OF idlist(X).{A.a = TK_UPDATE; A.b = X;}
1518 
1519 foreach_clause ::= .
1520 foreach_clause ::= FOR EACH ROW.
1521 
1522 %type when_clause {Expr*}
1523 %destructor when_clause {sqlite3ExprDelete(pParse->db, $$);}
1524 when_clause(A) ::= .             { A = 0; }
1525 when_clause(A) ::= WHEN expr(X). { A = X; }
1526 
1527 %type trigger_cmd_list {TriggerStep*}
1528 %destructor trigger_cmd_list {sqlite3DeleteTriggerStep(pParse->db, $$);}
1529 trigger_cmd_list(A) ::= trigger_cmd_list(A) trigger_cmd(X) SEMI. {
1530   assert( A!=0 );
1531   A->pLast->pNext = X;
1532   A->pLast = X;
1533 }
1534 trigger_cmd_list(A) ::= trigger_cmd(A) SEMI. {
1535   assert( A!=0 );
1536   A->pLast = A;
1537 }
1538 
1539 // Disallow qualified table names on INSERT, UPDATE, and DELETE statements
1540 // within a trigger.  The table to INSERT, UPDATE, or DELETE is always in
1541 // the same database as the table that the trigger fires on.
1542 //
1543 %type trnm {Token}
1544 trnm(A) ::= nm(A).
1545 trnm(A) ::= nm DOT nm(X). {
1546   A = X;
1547   sqlite3ErrorMsg(pParse,
1548         "qualified table names are not allowed on INSERT, UPDATE, and DELETE "
1549         "statements within triggers");
1550 }
1551 
1552 // Disallow the INDEX BY and NOT INDEXED clauses on UPDATE and DELETE
1553 // statements within triggers.  We make a specific error message for this
1554 // since it is an exception to the default grammar rules.
1555 //
1556 tridxby ::= .
1557 tridxby ::= INDEXED BY nm. {
1558   sqlite3ErrorMsg(pParse,
1559         "the INDEXED BY clause is not allowed on UPDATE or DELETE statements "
1560         "within triggers");
1561 }
1562 tridxby ::= NOT INDEXED. {
1563   sqlite3ErrorMsg(pParse,
1564         "the NOT INDEXED clause is not allowed on UPDATE or DELETE statements "
1565         "within triggers");
1566 }
1567 
1568 
1569 
1570 %type trigger_cmd {TriggerStep*}
1571 %destructor trigger_cmd {sqlite3DeleteTriggerStep(pParse->db, $$);}
1572 // UPDATE
1573 trigger_cmd(A) ::=
1574    UPDATE(B) orconf(R) trnm(X) tridxby SET setlist(Y) from(F) where_opt(Z) scanpt(E).
1575    {A = sqlite3TriggerUpdateStep(pParse, &X, F, Y, Z, R, B.z, E);}
1576 
1577 // INSERT
1578 trigger_cmd(A) ::= scanpt(B) insert_cmd(R) INTO
1579                       trnm(X) idlist_opt(F) select(S) upsert(U) scanpt(Z). {
1580    A = sqlite3TriggerInsertStep(pParse,&X,F,S,R,U,B,Z);/*A-overwrites-R*/
1581 }
1582 // DELETE
1583 trigger_cmd(A) ::= DELETE(B) FROM trnm(X) tridxby where_opt(Y) scanpt(E).
1584    {A = sqlite3TriggerDeleteStep(pParse, &X, Y, B.z, E);}
1585 
1586 // SELECT
1587 trigger_cmd(A) ::= scanpt(B) select(X) scanpt(E).
1588    {A = sqlite3TriggerSelectStep(pParse->db, X, B, E); /*A-overwrites-X*/}
1589 
1590 // The special RAISE expression that may occur in trigger programs
1591 expr(A) ::= RAISE LP IGNORE RP.  {
1592   A = sqlite3PExpr(pParse, TK_RAISE, 0, 0);
1593   if( A ){
1594     A->affExpr = OE_Ignore;
1595   }
1596 }
1597 expr(A) ::= RAISE LP raisetype(T) COMMA nm(Z) RP.  {
1598   A = sqlite3ExprAlloc(pParse->db, TK_RAISE, &Z, 1);
1599   if( A ) {
1600     A->affExpr = (char)T;
1601   }
1602 }
1603 %endif  !SQLITE_OMIT_TRIGGER
1604 
1605 %type raisetype {int}
1606 raisetype(A) ::= ROLLBACK.  {A = OE_Rollback;}
1607 raisetype(A) ::= ABORT.     {A = OE_Abort;}
1608 raisetype(A) ::= FAIL.      {A = OE_Fail;}
1609 
1610 
1611 ////////////////////////  DROP TRIGGER statement //////////////////////////////
1612 %ifndef SQLITE_OMIT_TRIGGER
1613 cmd ::= DROP TRIGGER ifexists(NOERR) fullname(X). {
1614   sqlite3DropTrigger(pParse,X,NOERR);
1615 }
1616 %endif  !SQLITE_OMIT_TRIGGER
1617 
1618 //////////////////////// ATTACH DATABASE file AS name /////////////////////////
1619 %ifndef SQLITE_OMIT_ATTACH
1620 cmd ::= ATTACH database_kw_opt expr(F) AS expr(D) key_opt(K). {
1621   sqlite3Attach(pParse, F, D, K);
1622 }
1623 cmd ::= DETACH database_kw_opt expr(D). {
1624   sqlite3Detach(pParse, D);
1625 }
1626 
1627 %type key_opt {Expr*}
1628 %destructor key_opt {sqlite3ExprDelete(pParse->db, $$);}
1629 key_opt(A) ::= .                     { A = 0; }
1630 key_opt(A) ::= KEY expr(X).          { A = X; }
1631 
1632 database_kw_opt ::= DATABASE.
1633 database_kw_opt ::= .
1634 %endif SQLITE_OMIT_ATTACH
1635 
1636 ////////////////////////// REINDEX collation //////////////////////////////////
1637 %ifndef SQLITE_OMIT_REINDEX
1638 cmd ::= REINDEX.                {sqlite3Reindex(pParse, 0, 0);}
1639 cmd ::= REINDEX nm(X) dbnm(Y).  {sqlite3Reindex(pParse, &X, &Y);}
1640 %endif  SQLITE_OMIT_REINDEX
1641 
1642 /////////////////////////////////// ANALYZE ///////////////////////////////////
1643 %ifndef SQLITE_OMIT_ANALYZE
1644 cmd ::= ANALYZE.                {sqlite3Analyze(pParse, 0, 0);}
1645 cmd ::= ANALYZE nm(X) dbnm(Y).  {sqlite3Analyze(pParse, &X, &Y);}
1646 %endif
1647 
1648 //////////////////////// ALTER TABLE table ... ////////////////////////////////
1649 %ifndef SQLITE_OMIT_ALTERTABLE
1650 %ifndef SQLITE_OMIT_VIRTUALTABLE
1651 cmd ::= ALTER TABLE fullname(X) RENAME TO nm(Z). {
1652   sqlite3AlterRenameTable(pParse,X,&Z);
1653 }
1654 cmd ::= ALTER TABLE add_column_fullname
1655         ADD kwcolumn_opt columnname(Y) carglist. {
1656   Y.n = (int)(pParse->sLastToken.z-Y.z) + pParse->sLastToken.n;
1657   sqlite3AlterFinishAddColumn(pParse, &Y);
1658 }
1659 cmd ::= ALTER TABLE fullname(X) DROP kwcolumn_opt nm(Y). {
1660   sqlite3AlterDropColumn(pParse, X, &Y);
1661 }
1662 
1663 add_column_fullname ::= fullname(X). {
1664   disableLookaside(pParse);
1665   sqlite3AlterBeginAddColumn(pParse, X);
1666 }
1667 cmd ::= ALTER TABLE fullname(X) RENAME kwcolumn_opt nm(Y) TO nm(Z). {
1668   sqlite3AlterRenameColumn(pParse, X, &Y, &Z);
1669 }
1670 
1671 kwcolumn_opt ::= .
1672 kwcolumn_opt ::= COLUMNKW.
1673 
1674 %endif SQLITE_OMIT_VIRTUALTABLE
1675 %endif SQLITE_OMIT_ALTERTABLE
1676 
1677 //////////////////////// CREATE VIRTUAL TABLE ... /////////////////////////////
1678 %ifndef SQLITE_OMIT_VIRTUALTABLE
1679 cmd ::= create_vtab.                       {sqlite3VtabFinishParse(pParse,0);}
1680 cmd ::= create_vtab LP vtabarglist RP(X).  {sqlite3VtabFinishParse(pParse,&X);}
1681 create_vtab ::= createkw VIRTUAL TABLE ifnotexists(E)
1682                 nm(X) dbnm(Y) USING nm(Z). {
1683     sqlite3VtabBeginParse(pParse, &X, &Y, &Z, E);
1684 }
1685 vtabarglist ::= vtabarg.
1686 vtabarglist ::= vtabarglist COMMA vtabarg.
1687 vtabarg ::= .                       {sqlite3VtabArgInit(pParse);}
1688 vtabarg ::= vtabarg vtabargtoken.
1689 vtabargtoken ::= ANY(X).            {sqlite3VtabArgExtend(pParse,&X);}
1690 vtabargtoken ::= lp anylist RP(X).  {sqlite3VtabArgExtend(pParse,&X);}
1691 lp ::= LP(X).                       {sqlite3VtabArgExtend(pParse,&X);}
1692 anylist ::= .
1693 anylist ::= anylist LP anylist RP.
1694 anylist ::= anylist ANY.
1695 %endif  SQLITE_OMIT_VIRTUALTABLE
1696 
1697 
1698 //////////////////////// COMMON TABLE EXPRESSIONS ////////////////////////////
1699 %type wqlist {With*}
1700 %destructor wqlist {sqlite3WithDelete(pParse->db, $$);}
1701 %type wqitem {Cte*}
1702 // %destructor wqitem {sqlite3CteDelete(pParse->db, $$);} // not reachable
1703 
1704 with ::= .
1705 %ifndef SQLITE_OMIT_CTE
1706 with ::= WITH wqlist(W).              { sqlite3WithPush(pParse, W, 1); }
1707 with ::= WITH RECURSIVE wqlist(W).    { sqlite3WithPush(pParse, W, 1); }
1708 
1709 %type wqas {u8}
1710 wqas(A)   ::= AS.                  {A = M10d_Any;}
1711 wqas(A)   ::= AS MATERIALIZED.     {A = M10d_Yes;}
1712 wqas(A)   ::= AS NOT MATERIALIZED. {A = M10d_No;}
1713 wqitem(A) ::= nm(X) eidlist_opt(Y) wqas(M) LP select(Z) RP. {
1714   A = sqlite3CteNew(pParse, &X, Y, Z, M); /*A-overwrites-X*/
1715 }
1716 wqlist(A) ::= wqitem(X). {
1717   A = sqlite3WithAdd(pParse, 0, X); /*A-overwrites-X*/
1718 }
1719 wqlist(A) ::= wqlist(A) COMMA wqitem(X). {
1720   A = sqlite3WithAdd(pParse, A, X);
1721 }
1722 %endif  SQLITE_OMIT_CTE
1723 
1724 //////////////////////// WINDOW FUNCTION EXPRESSIONS /////////////////////////
1725 // These must be at the end of this file. Specifically, the rules that
1726 // introduce tokens WINDOW, OVER and FILTER must appear last. This causes
1727 // the integer values assigned to these tokens to be larger than all other
1728 // tokens that may be output by the tokenizer except TK_SPACE and TK_ILLEGAL.
1729 //
1730 %ifndef SQLITE_OMIT_WINDOWFUNC
1731 %type windowdefn_list {Window*}
1732 %destructor windowdefn_list {sqlite3WindowListDelete(pParse->db, $$);}
1733 windowdefn_list(A) ::= windowdefn(Z). { A = Z; }
1734 windowdefn_list(A) ::= windowdefn_list(Y) COMMA windowdefn(Z). {
1735   assert( Z!=0 );
1736   sqlite3WindowChain(pParse, Z, Y);
1737   Z->pNextWin = Y;
1738   A = Z;
1739 }
1740 
1741 %type windowdefn {Window*}
1742 %destructor windowdefn {sqlite3WindowDelete(pParse->db, $$);}
1743 windowdefn(A) ::= nm(X) AS LP window(Y) RP. {
1744   if( ALWAYS(Y) ){
1745     Y->zName = sqlite3DbStrNDup(pParse->db, X.z, X.n);
1746   }
1747   A = Y;
1748 }
1749 
1750 %type window {Window*}
1751 %destructor window {sqlite3WindowDelete(pParse->db, $$);}
1752 
1753 %type frame_opt {Window*}
1754 %destructor frame_opt {sqlite3WindowDelete(pParse->db, $$);}
1755 
1756 %type part_opt {ExprList*}
1757 %destructor part_opt {sqlite3ExprListDelete(pParse->db, $$);}
1758 
1759 %type filter_clause {Expr*}
1760 %destructor filter_clause {sqlite3ExprDelete(pParse->db, $$);}
1761 
1762 %type over_clause {Window*}
1763 %destructor over_clause {sqlite3WindowDelete(pParse->db, $$);}
1764 
1765 %type filter_over {Window*}
1766 %destructor filter_over {sqlite3WindowDelete(pParse->db, $$);}
1767 
1768 %type range_or_rows {int}
1769 
1770 %type frame_bound {struct FrameBound}
1771 %destructor frame_bound {sqlite3ExprDelete(pParse->db, $$.pExpr);}
1772 %type frame_bound_s {struct FrameBound}
1773 %destructor frame_bound_s {sqlite3ExprDelete(pParse->db, $$.pExpr);}
1774 %type frame_bound_e {struct FrameBound}
1775 %destructor frame_bound_e {sqlite3ExprDelete(pParse->db, $$.pExpr);}
1776 
1777 window(A) ::= PARTITION BY nexprlist(X) orderby_opt(Y) frame_opt(Z). {
1778   A = sqlite3WindowAssemble(pParse, Z, X, Y, 0);
1779 }
1780 window(A) ::= nm(W) PARTITION BY nexprlist(X) orderby_opt(Y) frame_opt(Z). {
1781   A = sqlite3WindowAssemble(pParse, Z, X, Y, &W);
1782 }
1783 window(A) ::= ORDER BY sortlist(Y) frame_opt(Z). {
1784   A = sqlite3WindowAssemble(pParse, Z, 0, Y, 0);
1785 }
1786 window(A) ::= nm(W) ORDER BY sortlist(Y) frame_opt(Z). {
1787   A = sqlite3WindowAssemble(pParse, Z, 0, Y, &W);
1788 }
1789 window(A) ::= frame_opt(Z). {
1790   A = Z;
1791 }
1792 window(A) ::= nm(W) frame_opt(Z). {
1793   A = sqlite3WindowAssemble(pParse, Z, 0, 0, &W);
1794 }
1795 
1796 frame_opt(A) ::= .                             {
1797   A = sqlite3WindowAlloc(pParse, 0, TK_UNBOUNDED, 0, TK_CURRENT, 0, 0);
1798 }
1799 frame_opt(A) ::= range_or_rows(X) frame_bound_s(Y) frame_exclude_opt(Z). {
1800   A = sqlite3WindowAlloc(pParse, X, Y.eType, Y.pExpr, TK_CURRENT, 0, Z);
1801 }
1802 frame_opt(A) ::= range_or_rows(X) BETWEEN frame_bound_s(Y) AND
1803                           frame_bound_e(Z) frame_exclude_opt(W). {
1804   A = sqlite3WindowAlloc(pParse, X, Y.eType, Y.pExpr, Z.eType, Z.pExpr, W);
1805 }
1806 
1807 range_or_rows(A) ::= RANGE|ROWS|GROUPS(X).   {A = @X; /*A-overwrites-X*/}
1808 
1809 frame_bound_s(A) ::= frame_bound(X).         {A = X;}
1810 frame_bound_s(A) ::= UNBOUNDED(X) PRECEDING. {A.eType = @X; A.pExpr = 0;}
1811 frame_bound_e(A) ::= frame_bound(X).         {A = X;}
1812 frame_bound_e(A) ::= UNBOUNDED(X) FOLLOWING. {A.eType = @X; A.pExpr = 0;}
1813 
1814 frame_bound(A) ::= expr(X) PRECEDING|FOLLOWING(Y).
1815                                              {A.eType = @Y; A.pExpr = X;}
1816 frame_bound(A) ::= CURRENT(X) ROW.           {A.eType = @X; A.pExpr = 0;}
1817 
1818 %type frame_exclude_opt {u8}
1819 frame_exclude_opt(A) ::= . {A = 0;}
1820 frame_exclude_opt(A) ::= EXCLUDE frame_exclude(X). {A = X;}
1821 
1822 %type frame_exclude {u8}
1823 frame_exclude(A) ::= NO(X) OTHERS.   {A = @X; /*A-overwrites-X*/}
1824 frame_exclude(A) ::= CURRENT(X) ROW. {A = @X; /*A-overwrites-X*/}
1825 frame_exclude(A) ::= GROUP|TIES(X).  {A = @X; /*A-overwrites-X*/}
1826 
1827 
1828 %type window_clause {Window*}
1829 %destructor window_clause {sqlite3WindowListDelete(pParse->db, $$);}
1830 window_clause(A) ::= WINDOW windowdefn_list(B). { A = B; }
1831 
1832 filter_over(A) ::= filter_clause(F) over_clause(O). {
1833   if( O ){
1834     O->pFilter = F;
1835   }else{
1836     sqlite3ExprDelete(pParse->db, F);
1837   }
1838   A = O;
1839 }
1840 filter_over(A) ::= over_clause(O). {
1841   A = O;
1842 }
1843 filter_over(A) ::= filter_clause(F). {
1844   A = (Window*)sqlite3DbMallocZero(pParse->db, sizeof(Window));
1845   if( A ){
1846     A->eFrmType = TK_FILTER;
1847     A->pFilter = F;
1848   }else{
1849     sqlite3ExprDelete(pParse->db, F);
1850   }
1851 }
1852 
1853 over_clause(A) ::= OVER LP window(Z) RP. {
1854   A = Z;
1855   assert( A!=0 );
1856 }
1857 over_clause(A) ::= OVER nm(Z). {
1858   A = (Window*)sqlite3DbMallocZero(pParse->db, sizeof(Window));
1859   if( A ){
1860     A->zName = sqlite3DbStrNDup(pParse->db, Z.z, Z.n);
1861   }
1862 }
1863 
1864 filter_clause(A) ::= FILTER LP WHERE expr(X) RP.  { A = X; }
1865 %endif /* SQLITE_OMIT_WINDOWFUNC */
1866 
1867 /*
1868 ** The code generator needs some extra TK_ token values for tokens that
1869 ** are synthesized and do not actually appear in the grammar:
1870 */
1871 %token
1872   COLUMN          /* Reference to a table column */
1873   AGG_FUNCTION    /* An aggregate function */
1874   AGG_COLUMN      /* An aggregated column */
1875   TRUEFALSE       /* True or false keyword */
1876   ISNOT           /* Combination of IS and NOT */
1877   FUNCTION        /* A function invocation */
1878   UMINUS          /* Unary minus */
1879   UPLUS           /* Unary plus */
1880   TRUTH           /* IS TRUE or IS FALSE or IS NOT TRUE or IS NOT FALSE */
1881   REGISTER        /* Reference to a VDBE register */
1882   VECTOR          /* Vector */
1883   SELECT_COLUMN   /* Choose a single column from a multi-column SELECT */
1884   IF_NULL_ROW     /* the if-null-row operator */
1885   ASTERISK        /* The "*" in count(*) and similar */
1886   SPAN            /* The span operator */
1887   ERROR           /* An expression containing an error */
1888 .
1889 /* There must be no more than 255 tokens defined above.  If this grammar
1890 ** is extended with new rules and tokens, they must either be so few in
1891 ** number that TK_SPAN is no more than 255, or else the new tokens must
1892 ** appear after this line.
1893 */
1894 %include {
1895 #if TK_SPAN>255
1896 # error too many tokens in the grammar
1897 #endif
1898 }
1899 
1900 /*
1901 ** The TK_SPACE and TK_ILLEGAL tokens must be the last two tokens.  The
1902 ** parser depends on this.  Those tokens are not used in any grammar rule.
1903 ** They are only used by the tokenizer.  Declare them last so that they
1904 ** are guaranteed to be the last two tokens
1905 */
1906 %token SPACE ILLEGAL.
1907