1 /* 2 ** 2008 August 18 3 ** 4 ** The author disclaims copyright to this source code. In place of 5 ** a legal notice, here is a blessing: 6 ** 7 ** May you do good and not evil. 8 ** May you find forgiveness for yourself and forgive others. 9 ** May you share freely, never taking more than you give. 10 ** 11 ************************************************************************* 12 ** 13 ** This file contains routines used for walking the parser tree and 14 ** resolve all identifiers by associating them with a particular 15 ** table and column. 16 */ 17 #include "sqliteInt.h" 18 #include <stdlib.h> 19 #include <string.h> 20 21 /* 22 ** Walk the expression tree pExpr and increase the aggregate function 23 ** depth (the Expr.op2 field) by N on every TK_AGG_FUNCTION node. 24 ** This needs to occur when copying a TK_AGG_FUNCTION node from an 25 ** outer query into an inner subquery. 26 ** 27 ** incrAggFunctionDepth(pExpr,n) is the main routine. incrAggDepth(..) 28 ** is a helper function - a callback for the tree walker. 29 */ 30 static int incrAggDepth(Walker *pWalker, Expr *pExpr){ 31 if( pExpr->op==TK_AGG_FUNCTION ) pExpr->op2 += pWalker->u.i; 32 return WRC_Continue; 33 } 34 static void incrAggFunctionDepth(Expr *pExpr, int N){ 35 if( N>0 ){ 36 Walker w; 37 memset(&w, 0, sizeof(w)); 38 w.xExprCallback = incrAggDepth; 39 w.u.i = N; 40 sqlite3WalkExpr(&w, pExpr); 41 } 42 } 43 44 /* 45 ** Turn the pExpr expression into an alias for the iCol-th column of the 46 ** result set in pEList. 47 ** 48 ** If the result set column is a simple column reference, then this routine 49 ** makes an exact copy. But for any other kind of expression, this 50 ** routine make a copy of the result set column as the argument to the 51 ** TK_AS operator. The TK_AS operator causes the expression to be 52 ** evaluated just once and then reused for each alias. 53 ** 54 ** The reason for suppressing the TK_AS term when the expression is a simple 55 ** column reference is so that the column reference will be recognized as 56 ** usable by indices within the WHERE clause processing logic. 57 ** 58 ** The TK_AS operator is inhibited if zType[0]=='G'. This means 59 ** that in a GROUP BY clause, the expression is evaluated twice. Hence: 60 ** 61 ** SELECT random()%5 AS x, count(*) FROM tab GROUP BY x 62 ** 63 ** Is equivalent to: 64 ** 65 ** SELECT random()%5 AS x, count(*) FROM tab GROUP BY random()%5 66 ** 67 ** The result of random()%5 in the GROUP BY clause is probably different 68 ** from the result in the result-set. On the other hand Standard SQL does 69 ** not allow the GROUP BY clause to contain references to result-set columns. 70 ** So this should never come up in well-formed queries. 71 ** 72 ** If the reference is followed by a COLLATE operator, then make sure 73 ** the COLLATE operator is preserved. For example: 74 ** 75 ** SELECT a+b, c+d FROM t1 ORDER BY 1 COLLATE nocase; 76 ** 77 ** Should be transformed into: 78 ** 79 ** SELECT a+b, c+d FROM t1 ORDER BY (a+b) COLLATE nocase; 80 ** 81 ** The nSubquery parameter specifies how many levels of subquery the 82 ** alias is removed from the original expression. The usually value is 83 ** zero but it might be more if the alias is contained within a subquery 84 ** of the original expression. The Expr.op2 field of TK_AGG_FUNCTION 85 ** structures must be increased by the nSubquery amount. 86 */ 87 static void resolveAlias( 88 Parse *pParse, /* Parsing context */ 89 ExprList *pEList, /* A result set */ 90 int iCol, /* A column in the result set. 0..pEList->nExpr-1 */ 91 Expr *pExpr, /* Transform this into an alias to the result set */ 92 const char *zType, /* "GROUP" or "ORDER" or "" */ 93 int nSubquery /* Number of subqueries that the label is moving */ 94 ){ 95 Expr *pOrig; /* The iCol-th column of the result set */ 96 Expr *pDup; /* Copy of pOrig */ 97 sqlite3 *db; /* The database connection */ 98 99 assert( iCol>=0 && iCol<pEList->nExpr ); 100 pOrig = pEList->a[iCol].pExpr; 101 assert( pOrig!=0 ); 102 assert( pOrig->flags & EP_Resolved ); 103 db = pParse->db; 104 pDup = sqlite3ExprDup(db, pOrig, 0); 105 if( pDup==0 ) return; 106 if( pOrig->op!=TK_COLUMN && zType[0]!='G' ){ 107 incrAggFunctionDepth(pDup, nSubquery); 108 pDup = sqlite3PExpr(pParse, TK_AS, pDup, 0, 0); 109 if( pDup==0 ) return; 110 ExprSetProperty(pDup, EP_Skip); 111 if( pEList->a[iCol].u.x.iAlias==0 ){ 112 pEList->a[iCol].u.x.iAlias = (u16)(++pParse->nAlias); 113 } 114 pDup->iTable = pEList->a[iCol].u.x.iAlias; 115 } 116 if( pExpr->op==TK_COLLATE ){ 117 pDup = sqlite3ExprAddCollateString(pParse, pDup, pExpr->u.zToken); 118 } 119 120 /* Before calling sqlite3ExprDelete(), set the EP_Static flag. This 121 ** prevents ExprDelete() from deleting the Expr structure itself, 122 ** allowing it to be repopulated by the memcpy() on the following line. 123 ** The pExpr->u.zToken might point into memory that will be freed by the 124 ** sqlite3DbFree(db, pDup) on the last line of this block, so be sure to 125 ** make a copy of the token before doing the sqlite3DbFree(). 126 */ 127 ExprSetProperty(pExpr, EP_Static); 128 sqlite3ExprDelete(db, pExpr); 129 memcpy(pExpr, pDup, sizeof(*pExpr)); 130 if( !ExprHasProperty(pExpr, EP_IntValue) && pExpr->u.zToken!=0 ){ 131 assert( (pExpr->flags & (EP_Reduced|EP_TokenOnly))==0 ); 132 pExpr->u.zToken = sqlite3DbStrDup(db, pExpr->u.zToken); 133 pExpr->flags |= EP_MemToken; 134 } 135 sqlite3DbFree(db, pDup); 136 } 137 138 139 /* 140 ** Return TRUE if the name zCol occurs anywhere in the USING clause. 141 ** 142 ** Return FALSE if the USING clause is NULL or if it does not contain 143 ** zCol. 144 */ 145 static int nameInUsingClause(IdList *pUsing, const char *zCol){ 146 if( pUsing ){ 147 int k; 148 for(k=0; k<pUsing->nId; k++){ 149 if( sqlite3StrICmp(pUsing->a[k].zName, zCol)==0 ) return 1; 150 } 151 } 152 return 0; 153 } 154 155 /* 156 ** Subqueries stores the original database, table and column names for their 157 ** result sets in ExprList.a[].zSpan, in the form "DATABASE.TABLE.COLUMN". 158 ** Check to see if the zSpan given to this routine matches the zDb, zTab, 159 ** and zCol. If any of zDb, zTab, and zCol are NULL then those fields will 160 ** match anything. 161 */ 162 int sqlite3MatchSpanName( 163 const char *zSpan, 164 const char *zCol, 165 const char *zTab, 166 const char *zDb 167 ){ 168 int n; 169 for(n=0; ALWAYS(zSpan[n]) && zSpan[n]!='.'; n++){} 170 if( zDb && (sqlite3StrNICmp(zSpan, zDb, n)!=0 || zDb[n]!=0) ){ 171 return 0; 172 } 173 zSpan += n+1; 174 for(n=0; ALWAYS(zSpan[n]) && zSpan[n]!='.'; n++){} 175 if( zTab && (sqlite3StrNICmp(zSpan, zTab, n)!=0 || zTab[n]!=0) ){ 176 return 0; 177 } 178 zSpan += n+1; 179 if( zCol && sqlite3StrICmp(zSpan, zCol)!=0 ){ 180 return 0; 181 } 182 return 1; 183 } 184 185 /* 186 ** Given the name of a column of the form X.Y.Z or Y.Z or just Z, look up 187 ** that name in the set of source tables in pSrcList and make the pExpr 188 ** expression node refer back to that source column. The following changes 189 ** are made to pExpr: 190 ** 191 ** pExpr->iDb Set the index in db->aDb[] of the database X 192 ** (even if X is implied). 193 ** pExpr->iTable Set to the cursor number for the table obtained 194 ** from pSrcList. 195 ** pExpr->pTab Points to the Table structure of X.Y (even if 196 ** X and/or Y are implied.) 197 ** pExpr->iColumn Set to the column number within the table. 198 ** pExpr->op Set to TK_COLUMN. 199 ** pExpr->pLeft Any expression this points to is deleted 200 ** pExpr->pRight Any expression this points to is deleted. 201 ** 202 ** The zDb variable is the name of the database (the "X"). This value may be 203 ** NULL meaning that name is of the form Y.Z or Z. Any available database 204 ** can be used. The zTable variable is the name of the table (the "Y"). This 205 ** value can be NULL if zDb is also NULL. If zTable is NULL it 206 ** means that the form of the name is Z and that columns from any table 207 ** can be used. 208 ** 209 ** If the name cannot be resolved unambiguously, leave an error message 210 ** in pParse and return WRC_Abort. Return WRC_Prune on success. 211 */ 212 static int lookupName( 213 Parse *pParse, /* The parsing context */ 214 const char *zDb, /* Name of the database containing table, or NULL */ 215 const char *zTab, /* Name of table containing column, or NULL */ 216 const char *zCol, /* Name of the column. */ 217 NameContext *pNC, /* The name context used to resolve the name */ 218 Expr *pExpr /* Make this EXPR node point to the selected column */ 219 ){ 220 int i, j; /* Loop counters */ 221 int cnt = 0; /* Number of matching column names */ 222 int cntTab = 0; /* Number of matching table names */ 223 int nSubquery = 0; /* How many levels of subquery */ 224 sqlite3 *db = pParse->db; /* The database connection */ 225 struct SrcList_item *pItem; /* Use for looping over pSrcList items */ 226 struct SrcList_item *pMatch = 0; /* The matching pSrcList item */ 227 NameContext *pTopNC = pNC; /* First namecontext in the list */ 228 Schema *pSchema = 0; /* Schema of the expression */ 229 int isTrigger = 0; /* True if resolved to a trigger column */ 230 Table *pTab = 0; /* Table hold the row */ 231 Column *pCol; /* A column of pTab */ 232 233 assert( pNC ); /* the name context cannot be NULL. */ 234 assert( zCol ); /* The Z in X.Y.Z cannot be NULL */ 235 assert( !ExprHasProperty(pExpr, EP_TokenOnly|EP_Reduced) ); 236 237 /* Initialize the node to no-match */ 238 pExpr->iTable = -1; 239 pExpr->pTab = 0; 240 ExprSetVVAProperty(pExpr, EP_NoReduce); 241 242 /* Translate the schema name in zDb into a pointer to the corresponding 243 ** schema. If not found, pSchema will remain NULL and nothing will match 244 ** resulting in an appropriate error message toward the end of this routine 245 */ 246 if( zDb ){ 247 testcase( pNC->ncFlags & NC_PartIdx ); 248 testcase( pNC->ncFlags & NC_IsCheck ); 249 if( (pNC->ncFlags & (NC_PartIdx|NC_IsCheck))!=0 ){ 250 /* Silently ignore database qualifiers inside CHECK constraints and partial 251 ** indices. Do not raise errors because that might break legacy and 252 ** because it does not hurt anything to just ignore the database name. */ 253 zDb = 0; 254 }else{ 255 for(i=0; i<db->nDb; i++){ 256 assert( db->aDb[i].zName ); 257 if( sqlite3StrICmp(db->aDb[i].zName,zDb)==0 ){ 258 pSchema = db->aDb[i].pSchema; 259 break; 260 } 261 } 262 } 263 } 264 265 /* Start at the inner-most context and move outward until a match is found */ 266 while( pNC && cnt==0 ){ 267 ExprList *pEList; 268 SrcList *pSrcList = pNC->pSrcList; 269 270 if( pSrcList ){ 271 for(i=0, pItem=pSrcList->a; i<pSrcList->nSrc; i++, pItem++){ 272 pTab = pItem->pTab; 273 assert( pTab!=0 && pTab->zName!=0 ); 274 assert( pTab->nCol>0 ); 275 if( pItem->pSelect && (pItem->pSelect->selFlags & SF_NestedFrom)!=0 ){ 276 int hit = 0; 277 pEList = pItem->pSelect->pEList; 278 for(j=0; j<pEList->nExpr; j++){ 279 if( sqlite3MatchSpanName(pEList->a[j].zSpan, zCol, zTab, zDb) ){ 280 cnt++; 281 cntTab = 2; 282 pMatch = pItem; 283 pExpr->iColumn = j; 284 hit = 1; 285 } 286 } 287 if( hit || zTab==0 ) continue; 288 } 289 if( zDb && pTab->pSchema!=pSchema ){ 290 continue; 291 } 292 if( zTab ){ 293 const char *zTabName = pItem->zAlias ? pItem->zAlias : pTab->zName; 294 assert( zTabName!=0 ); 295 if( sqlite3StrICmp(zTabName, zTab)!=0 ){ 296 continue; 297 } 298 } 299 if( 0==(cntTab++) ){ 300 pMatch = pItem; 301 } 302 for(j=0, pCol=pTab->aCol; j<pTab->nCol; j++, pCol++){ 303 if( sqlite3StrICmp(pCol->zName, zCol)==0 ){ 304 /* If there has been exactly one prior match and this match 305 ** is for the right-hand table of a NATURAL JOIN or is in a 306 ** USING clause, then skip this match. 307 */ 308 if( cnt==1 ){ 309 if( pItem->jointype & JT_NATURAL ) continue; 310 if( nameInUsingClause(pItem->pUsing, zCol) ) continue; 311 } 312 cnt++; 313 pMatch = pItem; 314 /* Substitute the rowid (column -1) for the INTEGER PRIMARY KEY */ 315 pExpr->iColumn = j==pTab->iPKey ? -1 : (i16)j; 316 break; 317 } 318 } 319 } 320 if( pMatch ){ 321 pExpr->iTable = pMatch->iCursor; 322 pExpr->pTab = pMatch->pTab; 323 pSchema = pExpr->pTab->pSchema; 324 } 325 } /* if( pSrcList ) */ 326 327 #ifndef SQLITE_OMIT_TRIGGER 328 /* If we have not already resolved the name, then maybe 329 ** it is a new.* or old.* trigger argument reference 330 */ 331 if( zDb==0 && zTab!=0 && cntTab==0 && pParse->pTriggerTab!=0 ){ 332 int op = pParse->eTriggerOp; 333 assert( op==TK_DELETE || op==TK_UPDATE || op==TK_INSERT ); 334 if( op!=TK_DELETE && sqlite3StrICmp("new",zTab) == 0 ){ 335 pExpr->iTable = 1; 336 pTab = pParse->pTriggerTab; 337 }else if( op!=TK_INSERT && sqlite3StrICmp("old",zTab)==0 ){ 338 pExpr->iTable = 0; 339 pTab = pParse->pTriggerTab; 340 } 341 342 if( pTab ){ 343 int iCol; 344 pSchema = pTab->pSchema; 345 cntTab++; 346 for(iCol=0, pCol=pTab->aCol; iCol<pTab->nCol; iCol++, pCol++){ 347 if( sqlite3StrICmp(pCol->zName, zCol)==0 ){ 348 if( iCol==pTab->iPKey ){ 349 iCol = -1; 350 } 351 break; 352 } 353 } 354 if( iCol>=pTab->nCol && sqlite3IsRowid(zCol) && HasRowid(pTab) ){ 355 /* IMP: R-24309-18625 */ 356 /* IMP: R-44911-55124 */ 357 iCol = -1; 358 } 359 if( iCol<pTab->nCol ){ 360 cnt++; 361 if( iCol<0 ){ 362 pExpr->affinity = SQLITE_AFF_INTEGER; 363 }else if( pExpr->iTable==0 ){ 364 testcase( iCol==31 ); 365 testcase( iCol==32 ); 366 pParse->oldmask |= (iCol>=32 ? 0xffffffff : (((u32)1)<<iCol)); 367 }else{ 368 testcase( iCol==31 ); 369 testcase( iCol==32 ); 370 pParse->newmask |= (iCol>=32 ? 0xffffffff : (((u32)1)<<iCol)); 371 } 372 pExpr->iColumn = (i16)iCol; 373 pExpr->pTab = pTab; 374 isTrigger = 1; 375 } 376 } 377 } 378 #endif /* !defined(SQLITE_OMIT_TRIGGER) */ 379 380 /* 381 ** Perhaps the name is a reference to the ROWID 382 */ 383 assert( pTab!=0 || cntTab==0 ); 384 if( cnt==0 && cntTab==1 && sqlite3IsRowid(zCol) && HasRowid(pTab) ){ 385 cnt = 1; 386 pExpr->iColumn = -1; /* IMP: R-44911-55124 */ 387 pExpr->affinity = SQLITE_AFF_INTEGER; 388 } 389 390 /* 391 ** If the input is of the form Z (not Y.Z or X.Y.Z) then the name Z 392 ** might refer to an result-set alias. This happens, for example, when 393 ** we are resolving names in the WHERE clause of the following command: 394 ** 395 ** SELECT a+b AS x FROM table WHERE x<10; 396 ** 397 ** In cases like this, replace pExpr with a copy of the expression that 398 ** forms the result set entry ("a+b" in the example) and return immediately. 399 ** Note that the expression in the result set should have already been 400 ** resolved by the time the WHERE clause is resolved. 401 ** 402 ** The ability to use an output result-set column in the WHERE, GROUP BY, 403 ** or HAVING clauses, or as part of a larger expression in the ORDRE BY 404 ** clause is not standard SQL. This is a (goofy) SQLite extension, that 405 ** is supported for backwards compatibility only. TO DO: Issue a warning 406 ** on sqlite3_log() whenever the capability is used. 407 */ 408 if( (pEList = pNC->pEList)!=0 409 && zTab==0 410 && cnt==0 411 ){ 412 for(j=0; j<pEList->nExpr; j++){ 413 char *zAs = pEList->a[j].zName; 414 if( zAs!=0 && sqlite3StrICmp(zAs, zCol)==0 ){ 415 Expr *pOrig; 416 assert( pExpr->pLeft==0 && pExpr->pRight==0 ); 417 assert( pExpr->x.pList==0 ); 418 assert( pExpr->x.pSelect==0 ); 419 pOrig = pEList->a[j].pExpr; 420 if( (pNC->ncFlags&NC_AllowAgg)==0 && ExprHasProperty(pOrig, EP_Agg) ){ 421 sqlite3ErrorMsg(pParse, "misuse of aliased aggregate %s", zAs); 422 return WRC_Abort; 423 } 424 resolveAlias(pParse, pEList, j, pExpr, "", nSubquery); 425 cnt = 1; 426 pMatch = 0; 427 assert( zTab==0 && zDb==0 ); 428 goto lookupname_end; 429 } 430 } 431 } 432 433 /* Advance to the next name context. The loop will exit when either 434 ** we have a match (cnt>0) or when we run out of name contexts. 435 */ 436 if( cnt==0 ){ 437 pNC = pNC->pNext; 438 nSubquery++; 439 } 440 } 441 442 /* 443 ** If X and Y are NULL (in other words if only the column name Z is 444 ** supplied) and the value of Z is enclosed in double-quotes, then 445 ** Z is a string literal if it doesn't match any column names. In that 446 ** case, we need to return right away and not make any changes to 447 ** pExpr. 448 ** 449 ** Because no reference was made to outer contexts, the pNC->nRef 450 ** fields are not changed in any context. 451 */ 452 if( cnt==0 && zTab==0 && ExprHasProperty(pExpr,EP_DblQuoted) ){ 453 pExpr->op = TK_STRING; 454 pExpr->pTab = 0; 455 return WRC_Prune; 456 } 457 458 /* 459 ** cnt==0 means there was not match. cnt>1 means there were two or 460 ** more matches. Either way, we have an error. 461 */ 462 if( cnt!=1 ){ 463 const char *zErr; 464 zErr = cnt==0 ? "no such column" : "ambiguous column name"; 465 if( zDb ){ 466 sqlite3ErrorMsg(pParse, "%s: %s.%s.%s", zErr, zDb, zTab, zCol); 467 }else if( zTab ){ 468 sqlite3ErrorMsg(pParse, "%s: %s.%s", zErr, zTab, zCol); 469 }else{ 470 sqlite3ErrorMsg(pParse, "%s: %s", zErr, zCol); 471 } 472 pParse->checkSchema = 1; 473 pTopNC->nErr++; 474 } 475 476 /* If a column from a table in pSrcList is referenced, then record 477 ** this fact in the pSrcList.a[].colUsed bitmask. Column 0 causes 478 ** bit 0 to be set. Column 1 sets bit 1. And so forth. If the 479 ** column number is greater than the number of bits in the bitmask 480 ** then set the high-order bit of the bitmask. 481 */ 482 if( pExpr->iColumn>=0 && pMatch!=0 ){ 483 int n = pExpr->iColumn; 484 testcase( n==BMS-1 ); 485 if( n>=BMS ){ 486 n = BMS-1; 487 } 488 assert( pMatch->iCursor==pExpr->iTable ); 489 pMatch->colUsed |= ((Bitmask)1)<<n; 490 } 491 492 /* Clean up and return 493 */ 494 sqlite3ExprDelete(db, pExpr->pLeft); 495 pExpr->pLeft = 0; 496 sqlite3ExprDelete(db, pExpr->pRight); 497 pExpr->pRight = 0; 498 pExpr->op = (isTrigger ? TK_TRIGGER : TK_COLUMN); 499 lookupname_end: 500 if( cnt==1 ){ 501 assert( pNC!=0 ); 502 if( pExpr->op!=TK_AS ){ 503 sqlite3AuthRead(pParse, pExpr, pSchema, pNC->pSrcList); 504 } 505 /* Increment the nRef value on all name contexts from TopNC up to 506 ** the point where the name matched. */ 507 for(;;){ 508 assert( pTopNC!=0 ); 509 pTopNC->nRef++; 510 if( pTopNC==pNC ) break; 511 pTopNC = pTopNC->pNext; 512 } 513 return WRC_Prune; 514 } else { 515 return WRC_Abort; 516 } 517 } 518 519 /* 520 ** Allocate and return a pointer to an expression to load the column iCol 521 ** from datasource iSrc in SrcList pSrc. 522 */ 523 Expr *sqlite3CreateColumnExpr(sqlite3 *db, SrcList *pSrc, int iSrc, int iCol){ 524 Expr *p = sqlite3ExprAlloc(db, TK_COLUMN, 0, 0); 525 if( p ){ 526 struct SrcList_item *pItem = &pSrc->a[iSrc]; 527 p->pTab = pItem->pTab; 528 p->iTable = pItem->iCursor; 529 if( p->pTab->iPKey==iCol ){ 530 p->iColumn = -1; 531 }else{ 532 p->iColumn = (ynVar)iCol; 533 testcase( iCol==BMS ); 534 testcase( iCol==BMS-1 ); 535 pItem->colUsed |= ((Bitmask)1)<<(iCol>=BMS ? BMS-1 : iCol); 536 } 537 ExprSetProperty(p, EP_Resolved); 538 } 539 return p; 540 } 541 542 /* 543 ** Report an error that an expression is not valid for a partial index WHERE 544 ** clause. 545 */ 546 static void notValidPartIdxWhere( 547 Parse *pParse, /* Leave error message here */ 548 NameContext *pNC, /* The name context */ 549 const char *zMsg /* Type of error */ 550 ){ 551 if( (pNC->ncFlags & NC_PartIdx)!=0 ){ 552 sqlite3ErrorMsg(pParse, "%s prohibited in partial index WHERE clauses", 553 zMsg); 554 } 555 } 556 557 #ifndef SQLITE_OMIT_CHECK 558 /* 559 ** Report an error that an expression is not valid for a CHECK constraint. 560 */ 561 static void notValidCheckConstraint( 562 Parse *pParse, /* Leave error message here */ 563 NameContext *pNC, /* The name context */ 564 const char *zMsg /* Type of error */ 565 ){ 566 if( (pNC->ncFlags & NC_IsCheck)!=0 ){ 567 sqlite3ErrorMsg(pParse,"%s prohibited in CHECK constraints", zMsg); 568 } 569 } 570 #else 571 # define notValidCheckConstraint(P,N,M) 572 #endif 573 574 /* 575 ** Expression p should encode a floating point value between 1.0 and 0.0. 576 ** Return 1024 times this value. Or return -1 if p is not a floating point 577 ** value between 1.0 and 0.0. 578 */ 579 static int exprProbability(Expr *p){ 580 double r = -1.0; 581 if( p->op!=TK_FLOAT ) return -1; 582 sqlite3AtoF(p->u.zToken, &r, sqlite3Strlen30(p->u.zToken), SQLITE_UTF8); 583 assert( r>=0.0 ); 584 if( r>1.0 ) return -1; 585 return (int)(r*1000.0); 586 } 587 588 /* 589 ** This routine is callback for sqlite3WalkExpr(). 590 ** 591 ** Resolve symbolic names into TK_COLUMN operators for the current 592 ** node in the expression tree. Return 0 to continue the search down 593 ** the tree or 2 to abort the tree walk. 594 ** 595 ** This routine also does error checking and name resolution for 596 ** function names. The operator for aggregate functions is changed 597 ** to TK_AGG_FUNCTION. 598 */ 599 static int resolveExprStep(Walker *pWalker, Expr *pExpr){ 600 NameContext *pNC; 601 Parse *pParse; 602 603 pNC = pWalker->u.pNC; 604 assert( pNC!=0 ); 605 pParse = pNC->pParse; 606 assert( pParse==pWalker->pParse ); 607 608 if( ExprHasProperty(pExpr, EP_Resolved) ) return WRC_Prune; 609 ExprSetProperty(pExpr, EP_Resolved); 610 #ifndef NDEBUG 611 if( pNC->pSrcList && pNC->pSrcList->nAlloc>0 ){ 612 SrcList *pSrcList = pNC->pSrcList; 613 int i; 614 for(i=0; i<pNC->pSrcList->nSrc; i++){ 615 assert( pSrcList->a[i].iCursor>=0 && pSrcList->a[i].iCursor<pParse->nTab); 616 } 617 } 618 #endif 619 switch( pExpr->op ){ 620 621 #if defined(SQLITE_ENABLE_UPDATE_DELETE_LIMIT) && !defined(SQLITE_OMIT_SUBQUERY) 622 /* The special operator TK_ROW means use the rowid for the first 623 ** column in the FROM clause. This is used by the LIMIT and ORDER BY 624 ** clause processing on UPDATE and DELETE statements. 625 */ 626 case TK_ROW: { 627 SrcList *pSrcList = pNC->pSrcList; 628 struct SrcList_item *pItem; 629 assert( pSrcList && pSrcList->nSrc==1 ); 630 pItem = pSrcList->a; 631 pExpr->op = TK_COLUMN; 632 pExpr->pTab = pItem->pTab; 633 pExpr->iTable = pItem->iCursor; 634 pExpr->iColumn = -1; 635 pExpr->affinity = SQLITE_AFF_INTEGER; 636 break; 637 } 638 #endif /* defined(SQLITE_ENABLE_UPDATE_DELETE_LIMIT) && !defined(SQLITE_OMIT_SUBQUERY) */ 639 640 /* A lone identifier is the name of a column. 641 */ 642 case TK_ID: { 643 return lookupName(pParse, 0, 0, pExpr->u.zToken, pNC, pExpr); 644 } 645 646 /* A table name and column name: ID.ID 647 ** Or a database, table and column: ID.ID.ID 648 */ 649 case TK_DOT: { 650 const char *zColumn; 651 const char *zTable; 652 const char *zDb; 653 Expr *pRight; 654 655 /* if( pSrcList==0 ) break; */ 656 pRight = pExpr->pRight; 657 if( pRight->op==TK_ID ){ 658 zDb = 0; 659 zTable = pExpr->pLeft->u.zToken; 660 zColumn = pRight->u.zToken; 661 }else{ 662 assert( pRight->op==TK_DOT ); 663 zDb = pExpr->pLeft->u.zToken; 664 zTable = pRight->pLeft->u.zToken; 665 zColumn = pRight->pRight->u.zToken; 666 } 667 return lookupName(pParse, zDb, zTable, zColumn, pNC, pExpr); 668 } 669 670 /* Resolve function names 671 */ 672 case TK_FUNCTION: { 673 ExprList *pList = pExpr->x.pList; /* The argument list */ 674 int n = pList ? pList->nExpr : 0; /* Number of arguments */ 675 int no_such_func = 0; /* True if no such function exists */ 676 int wrong_num_args = 0; /* True if wrong number of arguments */ 677 int is_agg = 0; /* True if is an aggregate function */ 678 int auth; /* Authorization to use the function */ 679 int nId; /* Number of characters in function name */ 680 const char *zId; /* The function name. */ 681 FuncDef *pDef; /* Information about the function */ 682 u8 enc = ENC(pParse->db); /* The database encoding */ 683 684 assert( !ExprHasProperty(pExpr, EP_xIsSelect) ); 685 notValidPartIdxWhere(pParse, pNC, "functions"); 686 zId = pExpr->u.zToken; 687 nId = sqlite3Strlen30(zId); 688 pDef = sqlite3FindFunction(pParse->db, zId, nId, n, enc, 0); 689 if( pDef==0 ){ 690 pDef = sqlite3FindFunction(pParse->db, zId, nId, -2, enc, 0); 691 if( pDef==0 ){ 692 no_such_func = 1; 693 }else{ 694 wrong_num_args = 1; 695 } 696 }else{ 697 is_agg = pDef->xFunc==0; 698 if( pDef->funcFlags & SQLITE_FUNC_UNLIKELY ){ 699 ExprSetProperty(pExpr, EP_Unlikely|EP_Skip); 700 if( n==2 ){ 701 pExpr->iTable = exprProbability(pList->a[1].pExpr); 702 if( pExpr->iTable<0 ){ 703 sqlite3ErrorMsg(pParse, "second argument to likelihood() must be a " 704 "constant between 0.0 and 1.0"); 705 pNC->nErr++; 706 } 707 }else{ 708 /* EVIDENCE-OF: R-61304-29449 The unlikely(X) function is equivalent to 709 ** likelihood(X, 0.0625). 710 ** EVIDENCE-OF: R-01283-11636 The unlikely(X) function is short-hand for 711 ** likelihood(X,0.0625). */ 712 pExpr->iTable = 62; /* TUNING: Default 2nd arg to unlikely() is 0.0625 */ 713 } 714 } 715 } 716 #ifndef SQLITE_OMIT_AUTHORIZATION 717 if( pDef ){ 718 auth = sqlite3AuthCheck(pParse, SQLITE_FUNCTION, 0, pDef->zName, 0); 719 if( auth!=SQLITE_OK ){ 720 if( auth==SQLITE_DENY ){ 721 sqlite3ErrorMsg(pParse, "not authorized to use function: %s", 722 pDef->zName); 723 pNC->nErr++; 724 } 725 pExpr->op = TK_NULL; 726 return WRC_Prune; 727 } 728 if( pDef->funcFlags & SQLITE_FUNC_CONSTANT ) ExprSetProperty(pExpr,EP_Constant); 729 } 730 #endif 731 if( is_agg && (pNC->ncFlags & NC_AllowAgg)==0 ){ 732 sqlite3ErrorMsg(pParse, "misuse of aggregate function %.*s()", nId,zId); 733 pNC->nErr++; 734 is_agg = 0; 735 }else if( no_such_func && pParse->db->init.busy==0 ){ 736 sqlite3ErrorMsg(pParse, "no such function: %.*s", nId, zId); 737 pNC->nErr++; 738 }else if( wrong_num_args ){ 739 sqlite3ErrorMsg(pParse,"wrong number of arguments to function %.*s()", 740 nId, zId); 741 pNC->nErr++; 742 } 743 if( is_agg ) pNC->ncFlags &= ~NC_AllowAgg; 744 sqlite3WalkExprList(pWalker, pList); 745 if( is_agg ){ 746 NameContext *pNC2 = pNC; 747 pExpr->op = TK_AGG_FUNCTION; 748 pExpr->op2 = 0; 749 while( pNC2 && !sqlite3FunctionUsesThisSrc(pExpr, pNC2->pSrcList) ){ 750 pExpr->op2++; 751 pNC2 = pNC2->pNext; 752 } 753 if( pNC2 ) pNC2->ncFlags |= NC_HasAgg; 754 pNC->ncFlags |= NC_AllowAgg; 755 } 756 /* FIX ME: Compute pExpr->affinity based on the expected return 757 ** type of the function 758 */ 759 return WRC_Prune; 760 } 761 #ifndef SQLITE_OMIT_SUBQUERY 762 case TK_SELECT: 763 case TK_EXISTS: testcase( pExpr->op==TK_EXISTS ); 764 #endif 765 case TK_IN: { 766 testcase( pExpr->op==TK_IN ); 767 if( ExprHasProperty(pExpr, EP_xIsSelect) ){ 768 int nRef = pNC->nRef; 769 notValidCheckConstraint(pParse, pNC, "subqueries"); 770 notValidPartIdxWhere(pParse, pNC, "subqueries"); 771 sqlite3WalkSelect(pWalker, pExpr->x.pSelect); 772 assert( pNC->nRef>=nRef ); 773 if( nRef!=pNC->nRef ){ 774 ExprSetProperty(pExpr, EP_VarSelect); 775 } 776 } 777 break; 778 } 779 case TK_VARIABLE: { 780 notValidCheckConstraint(pParse, pNC, "parameters"); 781 notValidPartIdxWhere(pParse, pNC, "parameters"); 782 break; 783 } 784 } 785 return (pParse->nErr || pParse->db->mallocFailed) ? WRC_Abort : WRC_Continue; 786 } 787 788 /* 789 ** pEList is a list of expressions which are really the result set of the 790 ** a SELECT statement. pE is a term in an ORDER BY or GROUP BY clause. 791 ** This routine checks to see if pE is a simple identifier which corresponds 792 ** to the AS-name of one of the terms of the expression list. If it is, 793 ** this routine return an integer between 1 and N where N is the number of 794 ** elements in pEList, corresponding to the matching entry. If there is 795 ** no match, or if pE is not a simple identifier, then this routine 796 ** return 0. 797 ** 798 ** pEList has been resolved. pE has not. 799 */ 800 static int resolveAsName( 801 Parse *pParse, /* Parsing context for error messages */ 802 ExprList *pEList, /* List of expressions to scan */ 803 Expr *pE /* Expression we are trying to match */ 804 ){ 805 int i; /* Loop counter */ 806 807 UNUSED_PARAMETER(pParse); 808 809 if( pE->op==TK_ID ){ 810 char *zCol = pE->u.zToken; 811 for(i=0; i<pEList->nExpr; i++){ 812 char *zAs = pEList->a[i].zName; 813 if( zAs!=0 && sqlite3StrICmp(zAs, zCol)==0 ){ 814 return i+1; 815 } 816 } 817 } 818 return 0; 819 } 820 821 /* 822 ** pE is a pointer to an expression which is a single term in the 823 ** ORDER BY of a compound SELECT. The expression has not been 824 ** name resolved. 825 ** 826 ** At the point this routine is called, we already know that the 827 ** ORDER BY term is not an integer index into the result set. That 828 ** case is handled by the calling routine. 829 ** 830 ** Attempt to match pE against result set columns in the left-most 831 ** SELECT statement. Return the index i of the matching column, 832 ** as an indication to the caller that it should sort by the i-th column. 833 ** The left-most column is 1. In other words, the value returned is the 834 ** same integer value that would be used in the SQL statement to indicate 835 ** the column. 836 ** 837 ** If there is no match, return 0. Return -1 if an error occurs. 838 */ 839 static int resolveOrderByTermToExprList( 840 Parse *pParse, /* Parsing context for error messages */ 841 Select *pSelect, /* The SELECT statement with the ORDER BY clause */ 842 Expr *pE /* The specific ORDER BY term */ 843 ){ 844 int i; /* Loop counter */ 845 ExprList *pEList; /* The columns of the result set */ 846 NameContext nc; /* Name context for resolving pE */ 847 sqlite3 *db; /* Database connection */ 848 int rc; /* Return code from subprocedures */ 849 u8 savedSuppErr; /* Saved value of db->suppressErr */ 850 851 assert( sqlite3ExprIsInteger(pE, &i)==0 ); 852 pEList = pSelect->pEList; 853 854 /* Resolve all names in the ORDER BY term expression 855 */ 856 memset(&nc, 0, sizeof(nc)); 857 nc.pParse = pParse; 858 nc.pSrcList = pSelect->pSrc; 859 nc.pEList = pEList; 860 nc.ncFlags = NC_AllowAgg; 861 nc.nErr = 0; 862 db = pParse->db; 863 savedSuppErr = db->suppressErr; 864 db->suppressErr = 1; 865 rc = sqlite3ResolveExprNames(&nc, pE); 866 db->suppressErr = savedSuppErr; 867 if( rc ) return 0; 868 869 /* Try to match the ORDER BY expression against an expression 870 ** in the result set. Return an 1-based index of the matching 871 ** result-set entry. 872 */ 873 for(i=0; i<pEList->nExpr; i++){ 874 if( sqlite3ExprCompare(pEList->a[i].pExpr, pE, -1)<2 ){ 875 return i+1; 876 } 877 } 878 879 /* If no match, return 0. */ 880 return 0; 881 } 882 883 /* 884 ** Generate an ORDER BY or GROUP BY term out-of-range error. 885 */ 886 static void resolveOutOfRangeError( 887 Parse *pParse, /* The error context into which to write the error */ 888 const char *zType, /* "ORDER" or "GROUP" */ 889 int i, /* The index (1-based) of the term out of range */ 890 int mx /* Largest permissible value of i */ 891 ){ 892 sqlite3ErrorMsg(pParse, 893 "%r %s BY term out of range - should be " 894 "between 1 and %d", i, zType, mx); 895 } 896 897 /* 898 ** Analyze the ORDER BY clause in a compound SELECT statement. Modify 899 ** each term of the ORDER BY clause is a constant integer between 1 900 ** and N where N is the number of columns in the compound SELECT. 901 ** 902 ** ORDER BY terms that are already an integer between 1 and N are 903 ** unmodified. ORDER BY terms that are integers outside the range of 904 ** 1 through N generate an error. ORDER BY terms that are expressions 905 ** are matched against result set expressions of compound SELECT 906 ** beginning with the left-most SELECT and working toward the right. 907 ** At the first match, the ORDER BY expression is transformed into 908 ** the integer column number. 909 ** 910 ** Return the number of errors seen. 911 */ 912 static int resolveCompoundOrderBy( 913 Parse *pParse, /* Parsing context. Leave error messages here */ 914 Select *pSelect /* The SELECT statement containing the ORDER BY */ 915 ){ 916 int i; 917 ExprList *pOrderBy; 918 ExprList *pEList; 919 sqlite3 *db; 920 int moreToDo = 1; 921 922 pOrderBy = pSelect->pOrderBy; 923 if( pOrderBy==0 ) return 0; 924 db = pParse->db; 925 #if SQLITE_MAX_COLUMN 926 if( pOrderBy->nExpr>db->aLimit[SQLITE_LIMIT_COLUMN] ){ 927 sqlite3ErrorMsg(pParse, "too many terms in ORDER BY clause"); 928 return 1; 929 } 930 #endif 931 for(i=0; i<pOrderBy->nExpr; i++){ 932 pOrderBy->a[i].done = 0; 933 } 934 pSelect->pNext = 0; 935 while( pSelect->pPrior ){ 936 pSelect->pPrior->pNext = pSelect; 937 pSelect = pSelect->pPrior; 938 } 939 while( pSelect && moreToDo ){ 940 struct ExprList_item *pItem; 941 moreToDo = 0; 942 pEList = pSelect->pEList; 943 assert( pEList!=0 ); 944 for(i=0, pItem=pOrderBy->a; i<pOrderBy->nExpr; i++, pItem++){ 945 int iCol = -1; 946 Expr *pE, *pDup; 947 if( pItem->done ) continue; 948 pE = sqlite3ExprSkipCollate(pItem->pExpr); 949 if( sqlite3ExprIsInteger(pE, &iCol) ){ 950 if( iCol<=0 || iCol>pEList->nExpr ){ 951 resolveOutOfRangeError(pParse, "ORDER", i+1, pEList->nExpr); 952 return 1; 953 } 954 }else{ 955 iCol = resolveAsName(pParse, pEList, pE); 956 if( iCol==0 ){ 957 pDup = sqlite3ExprDup(db, pE, 0); 958 if( !db->mallocFailed ){ 959 assert(pDup); 960 iCol = resolveOrderByTermToExprList(pParse, pSelect, pDup); 961 } 962 sqlite3ExprDelete(db, pDup); 963 } 964 } 965 if( iCol>0 ){ 966 /* Convert the ORDER BY term into an integer column number iCol, 967 ** taking care to preserve the COLLATE clause if it exists */ 968 Expr *pNew = sqlite3Expr(db, TK_INTEGER, 0); 969 if( pNew==0 ) return 1; 970 pNew->flags |= EP_IntValue; 971 pNew->u.iValue = iCol; 972 if( pItem->pExpr==pE ){ 973 pItem->pExpr = pNew; 974 }else{ 975 assert( pItem->pExpr->op==TK_COLLATE ); 976 assert( pItem->pExpr->pLeft==pE ); 977 pItem->pExpr->pLeft = pNew; 978 } 979 sqlite3ExprDelete(db, pE); 980 pItem->u.x.iOrderByCol = (u16)iCol; 981 pItem->done = 1; 982 }else{ 983 moreToDo = 1; 984 } 985 } 986 pSelect = pSelect->pNext; 987 } 988 for(i=0; i<pOrderBy->nExpr; i++){ 989 if( pOrderBy->a[i].done==0 ){ 990 sqlite3ErrorMsg(pParse, "%r ORDER BY term does not match any " 991 "column in the result set", i+1); 992 return 1; 993 } 994 } 995 return 0; 996 } 997 998 /* 999 ** Check every term in the ORDER BY or GROUP BY clause pOrderBy of 1000 ** the SELECT statement pSelect. If any term is reference to a 1001 ** result set expression (as determined by the ExprList.a.u.x.iOrderByCol 1002 ** field) then convert that term into a copy of the corresponding result set 1003 ** column. 1004 ** 1005 ** If any errors are detected, add an error message to pParse and 1006 ** return non-zero. Return zero if no errors are seen. 1007 */ 1008 int sqlite3ResolveOrderGroupBy( 1009 Parse *pParse, /* Parsing context. Leave error messages here */ 1010 Select *pSelect, /* The SELECT statement containing the clause */ 1011 ExprList *pOrderBy, /* The ORDER BY or GROUP BY clause to be processed */ 1012 const char *zType /* "ORDER" or "GROUP" */ 1013 ){ 1014 int i; 1015 sqlite3 *db = pParse->db; 1016 ExprList *pEList; 1017 struct ExprList_item *pItem; 1018 1019 if( pOrderBy==0 || pParse->db->mallocFailed ) return 0; 1020 #if SQLITE_MAX_COLUMN 1021 if( pOrderBy->nExpr>db->aLimit[SQLITE_LIMIT_COLUMN] ){ 1022 sqlite3ErrorMsg(pParse, "too many terms in %s BY clause", zType); 1023 return 1; 1024 } 1025 #endif 1026 pEList = pSelect->pEList; 1027 assert( pEList!=0 ); /* sqlite3SelectNew() guarantees this */ 1028 for(i=0, pItem=pOrderBy->a; i<pOrderBy->nExpr; i++, pItem++){ 1029 if( pItem->u.x.iOrderByCol ){ 1030 if( pItem->u.x.iOrderByCol>pEList->nExpr ){ 1031 resolveOutOfRangeError(pParse, zType, i+1, pEList->nExpr); 1032 return 1; 1033 } 1034 resolveAlias(pParse, pEList, pItem->u.x.iOrderByCol-1, pItem->pExpr, zType,0); 1035 } 1036 } 1037 return 0; 1038 } 1039 1040 /* 1041 ** pOrderBy is an ORDER BY or GROUP BY clause in SELECT statement pSelect. 1042 ** The Name context of the SELECT statement is pNC. zType is either 1043 ** "ORDER" or "GROUP" depending on which type of clause pOrderBy is. 1044 ** 1045 ** This routine resolves each term of the clause into an expression. 1046 ** If the order-by term is an integer I between 1 and N (where N is the 1047 ** number of columns in the result set of the SELECT) then the expression 1048 ** in the resolution is a copy of the I-th result-set expression. If 1049 ** the order-by term is an identifier that corresponds to the AS-name of 1050 ** a result-set expression, then the term resolves to a copy of the 1051 ** result-set expression. Otherwise, the expression is resolved in 1052 ** the usual way - using sqlite3ResolveExprNames(). 1053 ** 1054 ** This routine returns the number of errors. If errors occur, then 1055 ** an appropriate error message might be left in pParse. (OOM errors 1056 ** excepted.) 1057 */ 1058 static int resolveOrderGroupBy( 1059 NameContext *pNC, /* The name context of the SELECT statement */ 1060 Select *pSelect, /* The SELECT statement holding pOrderBy */ 1061 ExprList *pOrderBy, /* An ORDER BY or GROUP BY clause to resolve */ 1062 const char *zType /* Either "ORDER" or "GROUP", as appropriate */ 1063 ){ 1064 int i, j; /* Loop counters */ 1065 int iCol; /* Column number */ 1066 struct ExprList_item *pItem; /* A term of the ORDER BY clause */ 1067 Parse *pParse; /* Parsing context */ 1068 int nResult; /* Number of terms in the result set */ 1069 1070 if( pOrderBy==0 ) return 0; 1071 nResult = pSelect->pEList->nExpr; 1072 pParse = pNC->pParse; 1073 for(i=0, pItem=pOrderBy->a; i<pOrderBy->nExpr; i++, pItem++){ 1074 Expr *pE = pItem->pExpr; 1075 Expr *pE2 = sqlite3ExprSkipCollate(pE); 1076 if( zType[0]!='G' ){ 1077 iCol = resolveAsName(pParse, pSelect->pEList, pE2); 1078 if( iCol>0 ){ 1079 /* If an AS-name match is found, mark this ORDER BY column as being 1080 ** a copy of the iCol-th result-set column. The subsequent call to 1081 ** sqlite3ResolveOrderGroupBy() will convert the expression to a 1082 ** copy of the iCol-th result-set expression. */ 1083 pItem->u.x.iOrderByCol = (u16)iCol; 1084 continue; 1085 } 1086 } 1087 if( sqlite3ExprIsInteger(pE2, &iCol) ){ 1088 /* The ORDER BY term is an integer constant. Again, set the column 1089 ** number so that sqlite3ResolveOrderGroupBy() will convert the 1090 ** order-by term to a copy of the result-set expression */ 1091 if( iCol<1 || iCol>0xffff ){ 1092 resolveOutOfRangeError(pParse, zType, i+1, nResult); 1093 return 1; 1094 } 1095 pItem->u.x.iOrderByCol = (u16)iCol; 1096 continue; 1097 } 1098 1099 /* Otherwise, treat the ORDER BY term as an ordinary expression */ 1100 pItem->u.x.iOrderByCol = 0; 1101 if( sqlite3ResolveExprNames(pNC, pE) ){ 1102 return 1; 1103 } 1104 for(j=0; j<pSelect->pEList->nExpr; j++){ 1105 if( sqlite3ExprCompare(pE, pSelect->pEList->a[j].pExpr, -1)==0 ){ 1106 pItem->u.x.iOrderByCol = j+1; 1107 } 1108 } 1109 } 1110 return sqlite3ResolveOrderGroupBy(pParse, pSelect, pOrderBy, zType); 1111 } 1112 1113 /* 1114 ** Resolve names in the SELECT statement p and all of its descendents. 1115 */ 1116 static int resolveSelectStep(Walker *pWalker, Select *p){ 1117 NameContext *pOuterNC; /* Context that contains this SELECT */ 1118 NameContext sNC; /* Name context of this SELECT */ 1119 int isCompound; /* True if p is a compound select */ 1120 int nCompound; /* Number of compound terms processed so far */ 1121 Parse *pParse; /* Parsing context */ 1122 ExprList *pEList; /* Result set expression list */ 1123 int i; /* Loop counter */ 1124 ExprList *pGroupBy; /* The GROUP BY clause */ 1125 Select *pLeftmost; /* Left-most of SELECT of a compound */ 1126 sqlite3 *db; /* Database connection */ 1127 1128 1129 assert( p!=0 ); 1130 if( p->selFlags & SF_Resolved ){ 1131 return WRC_Prune; 1132 } 1133 pOuterNC = pWalker->u.pNC; 1134 pParse = pWalker->pParse; 1135 db = pParse->db; 1136 1137 /* Normally sqlite3SelectExpand() will be called first and will have 1138 ** already expanded this SELECT. However, if this is a subquery within 1139 ** an expression, sqlite3ResolveExprNames() will be called without a 1140 ** prior call to sqlite3SelectExpand(). When that happens, let 1141 ** sqlite3SelectPrep() do all of the processing for this SELECT. 1142 ** sqlite3SelectPrep() will invoke both sqlite3SelectExpand() and 1143 ** this routine in the correct order. 1144 */ 1145 if( (p->selFlags & SF_Expanded)==0 ){ 1146 sqlite3SelectPrep(pParse, p, pOuterNC); 1147 return (pParse->nErr || db->mallocFailed) ? WRC_Abort : WRC_Prune; 1148 } 1149 1150 isCompound = p->pPrior!=0; 1151 nCompound = 0; 1152 pLeftmost = p; 1153 while( p ){ 1154 assert( (p->selFlags & SF_Expanded)!=0 ); 1155 assert( (p->selFlags & SF_Resolved)==0 ); 1156 p->selFlags |= SF_Resolved; 1157 1158 /* Resolve the expressions in the LIMIT and OFFSET clauses. These 1159 ** are not allowed to refer to any names, so pass an empty NameContext. 1160 */ 1161 memset(&sNC, 0, sizeof(sNC)); 1162 sNC.pParse = pParse; 1163 if( sqlite3ResolveExprNames(&sNC, p->pLimit) || 1164 sqlite3ResolveExprNames(&sNC, p->pOffset) ){ 1165 return WRC_Abort; 1166 } 1167 1168 /* Recursively resolve names in all subqueries 1169 */ 1170 for(i=0; i<p->pSrc->nSrc; i++){ 1171 struct SrcList_item *pItem = &p->pSrc->a[i]; 1172 if( pItem->pSelect ){ 1173 NameContext *pNC; /* Used to iterate name contexts */ 1174 int nRef = 0; /* Refcount for pOuterNC and outer contexts */ 1175 const char *zSavedContext = pParse->zAuthContext; 1176 1177 /* Count the total number of references to pOuterNC and all of its 1178 ** parent contexts. After resolving references to expressions in 1179 ** pItem->pSelect, check if this value has changed. If so, then 1180 ** SELECT statement pItem->pSelect must be correlated. Set the 1181 ** pItem->isCorrelated flag if this is the case. */ 1182 for(pNC=pOuterNC; pNC; pNC=pNC->pNext) nRef += pNC->nRef; 1183 1184 if( pItem->zName ) pParse->zAuthContext = pItem->zName; 1185 sqlite3ResolveSelectNames(pParse, pItem->pSelect, pOuterNC); 1186 pParse->zAuthContext = zSavedContext; 1187 if( pParse->nErr || db->mallocFailed ) return WRC_Abort; 1188 1189 for(pNC=pOuterNC; pNC; pNC=pNC->pNext) nRef -= pNC->nRef; 1190 assert( pItem->isCorrelated==0 && nRef<=0 ); 1191 pItem->isCorrelated = (nRef!=0); 1192 } 1193 } 1194 1195 /* Set up the local name-context to pass to sqlite3ResolveExprNames() to 1196 ** resolve the result-set expression list. 1197 */ 1198 sNC.ncFlags = NC_AllowAgg; 1199 sNC.pSrcList = p->pSrc; 1200 sNC.pNext = pOuterNC; 1201 1202 /* Resolve names in the result set. */ 1203 pEList = p->pEList; 1204 assert( pEList!=0 ); 1205 for(i=0; i<pEList->nExpr; i++){ 1206 Expr *pX = pEList->a[i].pExpr; 1207 if( sqlite3ResolveExprNames(&sNC, pX) ){ 1208 return WRC_Abort; 1209 } 1210 } 1211 1212 /* If there are no aggregate functions in the result-set, and no GROUP BY 1213 ** expression, do not allow aggregates in any of the other expressions. 1214 */ 1215 assert( (p->selFlags & SF_Aggregate)==0 ); 1216 pGroupBy = p->pGroupBy; 1217 if( pGroupBy || (sNC.ncFlags & NC_HasAgg)!=0 ){ 1218 p->selFlags |= SF_Aggregate; 1219 }else{ 1220 sNC.ncFlags &= ~NC_AllowAgg; 1221 } 1222 1223 /* If a HAVING clause is present, then there must be a GROUP BY clause. 1224 */ 1225 if( p->pHaving && !pGroupBy ){ 1226 sqlite3ErrorMsg(pParse, "a GROUP BY clause is required before HAVING"); 1227 return WRC_Abort; 1228 } 1229 1230 /* Add the output column list to the name-context before parsing the 1231 ** other expressions in the SELECT statement. This is so that 1232 ** expressions in the WHERE clause (etc.) can refer to expressions by 1233 ** aliases in the result set. 1234 ** 1235 ** Minor point: If this is the case, then the expression will be 1236 ** re-evaluated for each reference to it. 1237 */ 1238 sNC.pEList = p->pEList; 1239 if( sqlite3ResolveExprNames(&sNC, p->pHaving) ) return WRC_Abort; 1240 if( sqlite3ResolveExprNames(&sNC, p->pWhere) ) return WRC_Abort; 1241 1242 /* The ORDER BY and GROUP BY clauses may not refer to terms in 1243 ** outer queries 1244 */ 1245 sNC.pNext = 0; 1246 sNC.ncFlags |= NC_AllowAgg; 1247 1248 /* Process the ORDER BY clause for singleton SELECT statements. 1249 ** The ORDER BY clause for compounds SELECT statements is handled 1250 ** below, after all of the result-sets for all of the elements of 1251 ** the compound have been resolved. 1252 */ 1253 if( !isCompound && resolveOrderGroupBy(&sNC, p, p->pOrderBy, "ORDER") ){ 1254 return WRC_Abort; 1255 } 1256 if( db->mallocFailed ){ 1257 return WRC_Abort; 1258 } 1259 1260 /* Resolve the GROUP BY clause. At the same time, make sure 1261 ** the GROUP BY clause does not contain aggregate functions. 1262 */ 1263 if( pGroupBy ){ 1264 struct ExprList_item *pItem; 1265 1266 if( resolveOrderGroupBy(&sNC, p, pGroupBy, "GROUP") || db->mallocFailed ){ 1267 return WRC_Abort; 1268 } 1269 for(i=0, pItem=pGroupBy->a; i<pGroupBy->nExpr; i++, pItem++){ 1270 if( ExprHasProperty(pItem->pExpr, EP_Agg) ){ 1271 sqlite3ErrorMsg(pParse, "aggregate functions are not allowed in " 1272 "the GROUP BY clause"); 1273 return WRC_Abort; 1274 } 1275 } 1276 } 1277 1278 /* Advance to the next term of the compound 1279 */ 1280 p = p->pPrior; 1281 nCompound++; 1282 } 1283 1284 /* Resolve the ORDER BY on a compound SELECT after all terms of 1285 ** the compound have been resolved. 1286 */ 1287 if( isCompound && resolveCompoundOrderBy(pParse, pLeftmost) ){ 1288 return WRC_Abort; 1289 } 1290 1291 return WRC_Prune; 1292 } 1293 1294 /* 1295 ** This routine walks an expression tree and resolves references to 1296 ** table columns and result-set columns. At the same time, do error 1297 ** checking on function usage and set a flag if any aggregate functions 1298 ** are seen. 1299 ** 1300 ** To resolve table columns references we look for nodes (or subtrees) of the 1301 ** form X.Y.Z or Y.Z or just Z where 1302 ** 1303 ** X: The name of a database. Ex: "main" or "temp" or 1304 ** the symbolic name assigned to an ATTACH-ed database. 1305 ** 1306 ** Y: The name of a table in a FROM clause. Or in a trigger 1307 ** one of the special names "old" or "new". 1308 ** 1309 ** Z: The name of a column in table Y. 1310 ** 1311 ** The node at the root of the subtree is modified as follows: 1312 ** 1313 ** Expr.op Changed to TK_COLUMN 1314 ** Expr.pTab Points to the Table object for X.Y 1315 ** Expr.iColumn The column index in X.Y. -1 for the rowid. 1316 ** Expr.iTable The VDBE cursor number for X.Y 1317 ** 1318 ** 1319 ** To resolve result-set references, look for expression nodes of the 1320 ** form Z (with no X and Y prefix) where the Z matches the right-hand 1321 ** size of an AS clause in the result-set of a SELECT. The Z expression 1322 ** is replaced by a copy of the left-hand side of the result-set expression. 1323 ** Table-name and function resolution occurs on the substituted expression 1324 ** tree. For example, in: 1325 ** 1326 ** SELECT a+b AS x, c+d AS y FROM t1 ORDER BY x; 1327 ** 1328 ** The "x" term of the order by is replaced by "a+b" to render: 1329 ** 1330 ** SELECT a+b AS x, c+d AS y FROM t1 ORDER BY a+b; 1331 ** 1332 ** Function calls are checked to make sure that the function is 1333 ** defined and that the correct number of arguments are specified. 1334 ** If the function is an aggregate function, then the NC_HasAgg flag is 1335 ** set and the opcode is changed from TK_FUNCTION to TK_AGG_FUNCTION. 1336 ** If an expression contains aggregate functions then the EP_Agg 1337 ** property on the expression is set. 1338 ** 1339 ** An error message is left in pParse if anything is amiss. The number 1340 ** if errors is returned. 1341 */ 1342 int sqlite3ResolveExprNames( 1343 NameContext *pNC, /* Namespace to resolve expressions in. */ 1344 Expr *pExpr /* The expression to be analyzed. */ 1345 ){ 1346 u8 savedHasAgg; 1347 Walker w; 1348 1349 if( pExpr==0 ) return 0; 1350 #if SQLITE_MAX_EXPR_DEPTH>0 1351 { 1352 Parse *pParse = pNC->pParse; 1353 if( sqlite3ExprCheckHeight(pParse, pExpr->nHeight+pNC->pParse->nHeight) ){ 1354 return 1; 1355 } 1356 pParse->nHeight += pExpr->nHeight; 1357 } 1358 #endif 1359 savedHasAgg = pNC->ncFlags & NC_HasAgg; 1360 pNC->ncFlags &= ~NC_HasAgg; 1361 memset(&w, 0, sizeof(w)); 1362 w.xExprCallback = resolveExprStep; 1363 w.xSelectCallback = resolveSelectStep; 1364 w.pParse = pNC->pParse; 1365 w.u.pNC = pNC; 1366 sqlite3WalkExpr(&w, pExpr); 1367 #if SQLITE_MAX_EXPR_DEPTH>0 1368 pNC->pParse->nHeight -= pExpr->nHeight; 1369 #endif 1370 if( pNC->nErr>0 || w.pParse->nErr>0 ){ 1371 ExprSetProperty(pExpr, EP_Error); 1372 } 1373 if( pNC->ncFlags & NC_HasAgg ){ 1374 ExprSetProperty(pExpr, EP_Agg); 1375 }else if( savedHasAgg ){ 1376 pNC->ncFlags |= NC_HasAgg; 1377 } 1378 return ExprHasProperty(pExpr, EP_Error); 1379 } 1380 1381 1382 /* 1383 ** Resolve all names in all expressions of a SELECT and in all 1384 ** decendents of the SELECT, including compounds off of p->pPrior, 1385 ** subqueries in expressions, and subqueries used as FROM clause 1386 ** terms. 1387 ** 1388 ** See sqlite3ResolveExprNames() for a description of the kinds of 1389 ** transformations that occur. 1390 ** 1391 ** All SELECT statements should have been expanded using 1392 ** sqlite3SelectExpand() prior to invoking this routine. 1393 */ 1394 void sqlite3ResolveSelectNames( 1395 Parse *pParse, /* The parser context */ 1396 Select *p, /* The SELECT statement being coded. */ 1397 NameContext *pOuterNC /* Name context for parent SELECT statement */ 1398 ){ 1399 Walker w; 1400 1401 assert( p!=0 ); 1402 memset(&w, 0, sizeof(w)); 1403 w.xExprCallback = resolveExprStep; 1404 w.xSelectCallback = resolveSelectStep; 1405 w.pParse = pParse; 1406 w.u.pNC = pOuterNC; 1407 sqlite3WalkSelect(&w, p); 1408 } 1409 1410 /* 1411 ** Resolve names in expressions that can only reference a single table: 1412 ** 1413 ** * CHECK constraints 1414 ** * WHERE clauses on partial indices 1415 ** 1416 ** The Expr.iTable value for Expr.op==TK_COLUMN nodes of the expression 1417 ** is set to -1 and the Expr.iColumn value is set to the column number. 1418 ** 1419 ** Any errors cause an error message to be set in pParse. 1420 */ 1421 void sqlite3ResolveSelfReference( 1422 Parse *pParse, /* Parsing context */ 1423 Table *pTab, /* The table being referenced */ 1424 int type, /* NC_IsCheck or NC_PartIdx */ 1425 Expr *pExpr, /* Expression to resolve. May be NULL. */ 1426 ExprList *pList /* Expression list to resolve. May be NUL. */ 1427 ){ 1428 SrcList sSrc; /* Fake SrcList for pParse->pNewTable */ 1429 NameContext sNC; /* Name context for pParse->pNewTable */ 1430 int i; /* Loop counter */ 1431 1432 assert( type==NC_IsCheck || type==NC_PartIdx ); 1433 memset(&sNC, 0, sizeof(sNC)); 1434 memset(&sSrc, 0, sizeof(sSrc)); 1435 sSrc.nSrc = 1; 1436 sSrc.a[0].zName = pTab->zName; 1437 sSrc.a[0].pTab = pTab; 1438 sSrc.a[0].iCursor = -1; 1439 sNC.pParse = pParse; 1440 sNC.pSrcList = &sSrc; 1441 sNC.ncFlags = type; 1442 if( sqlite3ResolveExprNames(&sNC, pExpr) ) return; 1443 if( pList ){ 1444 for(i=0; i<pList->nExpr; i++){ 1445 if( sqlite3ResolveExprNames(&sNC, pList->a[i].pExpr) ){ 1446 return; 1447 } 1448 } 1449 } 1450 } 1451