1cce7d176Sdrh /* 2b19a2bc6Sdrh ** 2001 September 15 3cce7d176Sdrh ** 4b19a2bc6Sdrh ** The author disclaims copyright to this source code. In place of 5b19a2bc6Sdrh ** a legal notice, here is a blessing: 6cce7d176Sdrh ** 7b19a2bc6Sdrh ** May you do good and not evil. 8b19a2bc6Sdrh ** May you find forgiveness for yourself and forgive others. 9b19a2bc6Sdrh ** May you share freely, never taking more than you give. 10cce7d176Sdrh ** 11cce7d176Sdrh ************************************************************************* 121ccde15dSdrh ** This file contains routines used for analyzing expressions and 13b19a2bc6Sdrh ** for generating VDBE code that evaluates expressions in SQLite. 14cce7d176Sdrh */ 15cce7d176Sdrh #include "sqliteInt.h" 16a2e00042Sdrh 17e014a838Sdanielk1977 /* 18e014a838Sdanielk1977 ** Return the 'affinity' of the expression pExpr if any. 19e014a838Sdanielk1977 ** 20e014a838Sdanielk1977 ** If pExpr is a column, a reference to a column via an 'AS' alias, 21e014a838Sdanielk1977 ** or a sub-select with a column as the return value, then the 22e014a838Sdanielk1977 ** affinity of that column is returned. Otherwise, 0x00 is returned, 23e014a838Sdanielk1977 ** indicating no affinity for the expression. 24e014a838Sdanielk1977 ** 25e014a838Sdanielk1977 ** i.e. the WHERE clause expresssions in the following statements all 26e014a838Sdanielk1977 ** have an affinity: 27e014a838Sdanielk1977 ** 28e014a838Sdanielk1977 ** CREATE TABLE t1(a); 29e014a838Sdanielk1977 ** SELECT * FROM t1 WHERE a; 30e014a838Sdanielk1977 ** SELECT a AS b FROM t1 WHERE b; 31e014a838Sdanielk1977 ** SELECT * FROM t1 WHERE (select a from t1); 32e014a838Sdanielk1977 */ 33bf3b721fSdanielk1977 char sqlite3ExprAffinity(Expr *pExpr){ 34487e262fSdrh int op = pExpr->op; 35487e262fSdrh if( op==TK_SELECT ){ 366ab3a2ecSdanielk1977 assert( pExpr->flags&EP_xIsSelect ); 376ab3a2ecSdanielk1977 return sqlite3ExprAffinity(pExpr->x.pSelect->pEList->a[0].pExpr); 38a37cdde0Sdanielk1977 } 39487e262fSdrh #ifndef SQLITE_OMIT_CAST 40487e262fSdrh if( op==TK_CAST ){ 4133e619fcSdrh assert( !ExprHasProperty(pExpr, EP_IntValue) ); 4233e619fcSdrh return sqlite3AffinityType(pExpr->u.zToken); 43487e262fSdrh } 44487e262fSdrh #endif 45259a455fSdanielk1977 if( (op==TK_AGG_COLUMN || op==TK_COLUMN || op==TK_REGISTER) 46259a455fSdanielk1977 && pExpr->pTab!=0 47259a455fSdanielk1977 ){ 487d10d5a6Sdrh /* op==TK_REGISTER && pExpr->pTab!=0 happens when pExpr was originally 497d10d5a6Sdrh ** a TK_COLUMN but was previously evaluated and cached in a register */ 507d10d5a6Sdrh int j = pExpr->iColumn; 517d10d5a6Sdrh if( j<0 ) return SQLITE_AFF_INTEGER; 527d10d5a6Sdrh assert( pExpr->pTab && j<pExpr->pTab->nCol ); 537d10d5a6Sdrh return pExpr->pTab->aCol[j].affinity; 547d10d5a6Sdrh } 55a37cdde0Sdanielk1977 return pExpr->affinity; 56a37cdde0Sdanielk1977 } 57a37cdde0Sdanielk1977 5853db1458Sdrh /* 598b4c40d8Sdrh ** Set the collating sequence for expression pExpr to be the collating 608b4c40d8Sdrh ** sequence named by pToken. Return a pointer to the revised expression. 61a34001c9Sdrh ** The collating sequence is marked as "explicit" using the EP_ExpCollate 62a34001c9Sdrh ** flag. An explicit collating sequence will override implicit 63a34001c9Sdrh ** collating sequences. 648b4c40d8Sdrh */ 657d10d5a6Sdrh Expr *sqlite3ExprSetColl(Parse *pParse, Expr *pExpr, Token *pCollName){ 6639002505Sdanielk1977 char *zColl = 0; /* Dequoted name of collation sequence */ 678b4c40d8Sdrh CollSeq *pColl; 68633e6d57Sdrh sqlite3 *db = pParse->db; 697d10d5a6Sdrh zColl = sqlite3NameFromToken(db, pCollName); 7039002505Sdanielk1977 if( pExpr && zColl ){ 71c4a64facSdrh pColl = sqlite3LocateCollSeq(pParse, zColl); 728b4c40d8Sdrh if( pColl ){ 738b4c40d8Sdrh pExpr->pColl = pColl; 748b4c40d8Sdrh pExpr->flags |= EP_ExpCollate; 758b4c40d8Sdrh } 7639002505Sdanielk1977 } 77633e6d57Sdrh sqlite3DbFree(db, zColl); 788b4c40d8Sdrh return pExpr; 798b4c40d8Sdrh } 808b4c40d8Sdrh 818b4c40d8Sdrh /* 820202b29eSdanielk1977 ** Return the default collation sequence for the expression pExpr. If 830202b29eSdanielk1977 ** there is no default collation type, return 0. 840202b29eSdanielk1977 */ 857cedc8d4Sdanielk1977 CollSeq *sqlite3ExprCollSeq(Parse *pParse, Expr *pExpr){ 867cedc8d4Sdanielk1977 CollSeq *pColl = 0; 877d10d5a6Sdrh Expr *p = pExpr; 8851f49f17Sdrh while( ALWAYS(p) ){ 897e09fe0bSdrh int op; 907d10d5a6Sdrh pColl = p->pColl; 917d10d5a6Sdrh if( pColl ) break; 927d10d5a6Sdrh op = p->op; 9376d462eeSdan if( p->pTab!=0 && ( 9476d462eeSdan op==TK_AGG_COLUMN || op==TK_COLUMN || op==TK_REGISTER || op==TK_TRIGGER 9576d462eeSdan )){ 967d10d5a6Sdrh /* op==TK_REGISTER && p->pTab!=0 happens when pExpr was originally 977d10d5a6Sdrh ** a TK_COLUMN but was previously evaluated and cached in a register */ 987d10d5a6Sdrh const char *zColl; 997d10d5a6Sdrh int j = p->iColumn; 1007d10d5a6Sdrh if( j>=0 ){ 1017d10d5a6Sdrh sqlite3 *db = pParse->db; 1027d10d5a6Sdrh zColl = p->pTab->aCol[j].zColl; 103c4a64facSdrh pColl = sqlite3FindCollSeq(db, ENC(db), zColl, 0); 1047d10d5a6Sdrh pExpr->pColl = pColl; 1050202b29eSdanielk1977 } 1067d10d5a6Sdrh break; 1077d10d5a6Sdrh } 1087d10d5a6Sdrh if( op!=TK_CAST && op!=TK_UPLUS ){ 1097d10d5a6Sdrh break; 1107d10d5a6Sdrh } 1117d10d5a6Sdrh p = p->pLeft; 1120202b29eSdanielk1977 } 1137cedc8d4Sdanielk1977 if( sqlite3CheckCollSeq(pParse, pColl) ){ 1147cedc8d4Sdanielk1977 pColl = 0; 1157cedc8d4Sdanielk1977 } 1167cedc8d4Sdanielk1977 return pColl; 1170202b29eSdanielk1977 } 1180202b29eSdanielk1977 1190202b29eSdanielk1977 /* 120626a879aSdrh ** pExpr is an operand of a comparison operator. aff2 is the 121626a879aSdrh ** type affinity of the other operand. This routine returns the 12253db1458Sdrh ** type affinity that should be used for the comparison operator. 12353db1458Sdrh */ 124e014a838Sdanielk1977 char sqlite3CompareAffinity(Expr *pExpr, char aff2){ 125bf3b721fSdanielk1977 char aff1 = sqlite3ExprAffinity(pExpr); 126e014a838Sdanielk1977 if( aff1 && aff2 ){ 1278df447f0Sdrh /* Both sides of the comparison are columns. If one has numeric 1288df447f0Sdrh ** affinity, use that. Otherwise use no affinity. 129e014a838Sdanielk1977 */ 1308a51256cSdrh if( sqlite3IsNumericAffinity(aff1) || sqlite3IsNumericAffinity(aff2) ){ 131e014a838Sdanielk1977 return SQLITE_AFF_NUMERIC; 132e014a838Sdanielk1977 }else{ 133e014a838Sdanielk1977 return SQLITE_AFF_NONE; 134e014a838Sdanielk1977 } 135e014a838Sdanielk1977 }else if( !aff1 && !aff2 ){ 1365f6a87b3Sdrh /* Neither side of the comparison is a column. Compare the 1375f6a87b3Sdrh ** results directly. 138e014a838Sdanielk1977 */ 1395f6a87b3Sdrh return SQLITE_AFF_NONE; 140e014a838Sdanielk1977 }else{ 141e014a838Sdanielk1977 /* One side is a column, the other is not. Use the columns affinity. */ 142fe05af87Sdrh assert( aff1==0 || aff2==0 ); 143e014a838Sdanielk1977 return (aff1 + aff2); 144e014a838Sdanielk1977 } 145e014a838Sdanielk1977 } 146e014a838Sdanielk1977 14753db1458Sdrh /* 14853db1458Sdrh ** pExpr is a comparison operator. Return the type affinity that should 14953db1458Sdrh ** be applied to both operands prior to doing the comparison. 15053db1458Sdrh */ 151e014a838Sdanielk1977 static char comparisonAffinity(Expr *pExpr){ 152e014a838Sdanielk1977 char aff; 153e014a838Sdanielk1977 assert( pExpr->op==TK_EQ || pExpr->op==TK_IN || pExpr->op==TK_LT || 154e014a838Sdanielk1977 pExpr->op==TK_GT || pExpr->op==TK_GE || pExpr->op==TK_LE || 1556a2fe093Sdrh pExpr->op==TK_NE || pExpr->op==TK_IS || pExpr->op==TK_ISNOT ); 156e014a838Sdanielk1977 assert( pExpr->pLeft ); 157bf3b721fSdanielk1977 aff = sqlite3ExprAffinity(pExpr->pLeft); 158e014a838Sdanielk1977 if( pExpr->pRight ){ 159e014a838Sdanielk1977 aff = sqlite3CompareAffinity(pExpr->pRight, aff); 1606ab3a2ecSdanielk1977 }else if( ExprHasProperty(pExpr, EP_xIsSelect) ){ 1616ab3a2ecSdanielk1977 aff = sqlite3CompareAffinity(pExpr->x.pSelect->pEList->a[0].pExpr, aff); 1626ab3a2ecSdanielk1977 }else if( !aff ){ 163de087bd5Sdrh aff = SQLITE_AFF_NONE; 164e014a838Sdanielk1977 } 165e014a838Sdanielk1977 return aff; 166e014a838Sdanielk1977 } 167e014a838Sdanielk1977 168e014a838Sdanielk1977 /* 169e014a838Sdanielk1977 ** pExpr is a comparison expression, eg. '=', '<', IN(...) etc. 170e014a838Sdanielk1977 ** idx_affinity is the affinity of an indexed column. Return true 171e014a838Sdanielk1977 ** if the index with affinity idx_affinity may be used to implement 172e014a838Sdanielk1977 ** the comparison in pExpr. 173e014a838Sdanielk1977 */ 174e014a838Sdanielk1977 int sqlite3IndexAffinityOk(Expr *pExpr, char idx_affinity){ 175e014a838Sdanielk1977 char aff = comparisonAffinity(pExpr); 1768a51256cSdrh switch( aff ){ 1778a51256cSdrh case SQLITE_AFF_NONE: 1788a51256cSdrh return 1; 1798a51256cSdrh case SQLITE_AFF_TEXT: 1808a51256cSdrh return idx_affinity==SQLITE_AFF_TEXT; 1818a51256cSdrh default: 1828a51256cSdrh return sqlite3IsNumericAffinity(idx_affinity); 1838a51256cSdrh } 184e014a838Sdanielk1977 } 185e014a838Sdanielk1977 186a37cdde0Sdanielk1977 /* 18735573356Sdrh ** Return the P5 value that should be used for a binary comparison 188a37cdde0Sdanielk1977 ** opcode (OP_Eq, OP_Ge etc.) used to compare pExpr1 and pExpr2. 189a37cdde0Sdanielk1977 */ 19035573356Sdrh static u8 binaryCompareP5(Expr *pExpr1, Expr *pExpr2, int jumpIfNull){ 19135573356Sdrh u8 aff = (char)sqlite3ExprAffinity(pExpr2); 1921bd10f8aSdrh aff = (u8)sqlite3CompareAffinity(pExpr1, aff) | (u8)jumpIfNull; 19335573356Sdrh return aff; 194a37cdde0Sdanielk1977 } 195a37cdde0Sdanielk1977 196a2e00042Sdrh /* 1970202b29eSdanielk1977 ** Return a pointer to the collation sequence that should be used by 1980202b29eSdanielk1977 ** a binary comparison operator comparing pLeft and pRight. 1990202b29eSdanielk1977 ** 2000202b29eSdanielk1977 ** If the left hand expression has a collating sequence type, then it is 2010202b29eSdanielk1977 ** used. Otherwise the collation sequence for the right hand expression 2020202b29eSdanielk1977 ** is used, or the default (BINARY) if neither expression has a collating 2030202b29eSdanielk1977 ** type. 204bcbb04e5Sdanielk1977 ** 205bcbb04e5Sdanielk1977 ** Argument pRight (but not pLeft) may be a null pointer. In this case, 206bcbb04e5Sdanielk1977 ** it is not considered. 2070202b29eSdanielk1977 */ 208bcbb04e5Sdanielk1977 CollSeq *sqlite3BinaryCompareCollSeq( 209bcbb04e5Sdanielk1977 Parse *pParse, 210bcbb04e5Sdanielk1977 Expr *pLeft, 211bcbb04e5Sdanielk1977 Expr *pRight 212bcbb04e5Sdanielk1977 ){ 213ec41ddacSdrh CollSeq *pColl; 214ec41ddacSdrh assert( pLeft ); 215ec41ddacSdrh if( pLeft->flags & EP_ExpCollate ){ 216ec41ddacSdrh assert( pLeft->pColl ); 217ec41ddacSdrh pColl = pLeft->pColl; 218bcbb04e5Sdanielk1977 }else if( pRight && pRight->flags & EP_ExpCollate ){ 219ec41ddacSdrh assert( pRight->pColl ); 220ec41ddacSdrh pColl = pRight->pColl; 221ec41ddacSdrh }else{ 222ec41ddacSdrh pColl = sqlite3ExprCollSeq(pParse, pLeft); 2230202b29eSdanielk1977 if( !pColl ){ 2247cedc8d4Sdanielk1977 pColl = sqlite3ExprCollSeq(pParse, pRight); 2250202b29eSdanielk1977 } 226ec41ddacSdrh } 2270202b29eSdanielk1977 return pColl; 2280202b29eSdanielk1977 } 2290202b29eSdanielk1977 2300202b29eSdanielk1977 /* 231da250ea5Sdrh ** Generate the operands for a comparison operation. Before 232da250ea5Sdrh ** generating the code for each operand, set the EP_AnyAff 233da250ea5Sdrh ** flag on the expression so that it will be able to used a 234da250ea5Sdrh ** cached column value that has previously undergone an 235da250ea5Sdrh ** affinity change. 236da250ea5Sdrh */ 237da250ea5Sdrh static void codeCompareOperands( 238da250ea5Sdrh Parse *pParse, /* Parsing and code generating context */ 239da250ea5Sdrh Expr *pLeft, /* The left operand */ 240da250ea5Sdrh int *pRegLeft, /* Register where left operand is stored */ 241da250ea5Sdrh int *pFreeLeft, /* Free this register when done */ 242da250ea5Sdrh Expr *pRight, /* The right operand */ 243da250ea5Sdrh int *pRegRight, /* Register where right operand is stored */ 244da250ea5Sdrh int *pFreeRight /* Write temp register for right operand there */ 245da250ea5Sdrh ){ 246da250ea5Sdrh while( pLeft->op==TK_UPLUS ) pLeft = pLeft->pLeft; 247da250ea5Sdrh pLeft->flags |= EP_AnyAff; 248da250ea5Sdrh *pRegLeft = sqlite3ExprCodeTemp(pParse, pLeft, pFreeLeft); 249da250ea5Sdrh while( pRight->op==TK_UPLUS ) pRight = pRight->pLeft; 250da250ea5Sdrh pRight->flags |= EP_AnyAff; 251da250ea5Sdrh *pRegRight = sqlite3ExprCodeTemp(pParse, pRight, pFreeRight); 252da250ea5Sdrh } 253da250ea5Sdrh 254da250ea5Sdrh /* 255be5c89acSdrh ** Generate code for a comparison operator. 256be5c89acSdrh */ 257be5c89acSdrh static int codeCompare( 258be5c89acSdrh Parse *pParse, /* The parsing (and code generating) context */ 259be5c89acSdrh Expr *pLeft, /* The left operand */ 260be5c89acSdrh Expr *pRight, /* The right operand */ 261be5c89acSdrh int opcode, /* The comparison opcode */ 26235573356Sdrh int in1, int in2, /* Register holding operands */ 263be5c89acSdrh int dest, /* Jump here if true. */ 264be5c89acSdrh int jumpIfNull /* If true, jump if either operand is NULL */ 265be5c89acSdrh ){ 26635573356Sdrh int p5; 26735573356Sdrh int addr; 26835573356Sdrh CollSeq *p4; 26935573356Sdrh 27035573356Sdrh p4 = sqlite3BinaryCompareCollSeq(pParse, pLeft, pRight); 27135573356Sdrh p5 = binaryCompareP5(pLeft, pRight, jumpIfNull); 27235573356Sdrh addr = sqlite3VdbeAddOp4(pParse->pVdbe, opcode, in2, dest, in1, 27335573356Sdrh (void*)p4, P4_COLLSEQ); 2741bd10f8aSdrh sqlite3VdbeChangeP5(pParse->pVdbe, (u8)p5); 275e49b146fSdrh if( (p5 & SQLITE_AFF_MASK)!=SQLITE_AFF_NONE ){ 276da250ea5Sdrh sqlite3ExprCacheAffinityChange(pParse, in1, 1); 277da250ea5Sdrh sqlite3ExprCacheAffinityChange(pParse, in2, 1); 2782f7794c1Sdrh } 27935573356Sdrh return addr; 280be5c89acSdrh } 281be5c89acSdrh 2824b5255acSdanielk1977 #if SQLITE_MAX_EXPR_DEPTH>0 2834b5255acSdanielk1977 /* 2844b5255acSdanielk1977 ** Check that argument nHeight is less than or equal to the maximum 2854b5255acSdanielk1977 ** expression depth allowed. If it is not, leave an error message in 2864b5255acSdanielk1977 ** pParse. 2874b5255acSdanielk1977 */ 2887d10d5a6Sdrh int sqlite3ExprCheckHeight(Parse *pParse, int nHeight){ 2894b5255acSdanielk1977 int rc = SQLITE_OK; 2904b5255acSdanielk1977 int mxHeight = pParse->db->aLimit[SQLITE_LIMIT_EXPR_DEPTH]; 2914b5255acSdanielk1977 if( nHeight>mxHeight ){ 2924b5255acSdanielk1977 sqlite3ErrorMsg(pParse, 2934b5255acSdanielk1977 "Expression tree is too large (maximum depth %d)", mxHeight 2944b5255acSdanielk1977 ); 2954b5255acSdanielk1977 rc = SQLITE_ERROR; 2964b5255acSdanielk1977 } 2974b5255acSdanielk1977 return rc; 2984b5255acSdanielk1977 } 2994b5255acSdanielk1977 3004b5255acSdanielk1977 /* The following three functions, heightOfExpr(), heightOfExprList() 3014b5255acSdanielk1977 ** and heightOfSelect(), are used to determine the maximum height 3024b5255acSdanielk1977 ** of any expression tree referenced by the structure passed as the 3034b5255acSdanielk1977 ** first argument. 3044b5255acSdanielk1977 ** 3054b5255acSdanielk1977 ** If this maximum height is greater than the current value pointed 3064b5255acSdanielk1977 ** to by pnHeight, the second parameter, then set *pnHeight to that 3074b5255acSdanielk1977 ** value. 3084b5255acSdanielk1977 */ 3094b5255acSdanielk1977 static void heightOfExpr(Expr *p, int *pnHeight){ 3104b5255acSdanielk1977 if( p ){ 3114b5255acSdanielk1977 if( p->nHeight>*pnHeight ){ 3124b5255acSdanielk1977 *pnHeight = p->nHeight; 3134b5255acSdanielk1977 } 3144b5255acSdanielk1977 } 3154b5255acSdanielk1977 } 3164b5255acSdanielk1977 static void heightOfExprList(ExprList *p, int *pnHeight){ 3174b5255acSdanielk1977 if( p ){ 3184b5255acSdanielk1977 int i; 3194b5255acSdanielk1977 for(i=0; i<p->nExpr; i++){ 3204b5255acSdanielk1977 heightOfExpr(p->a[i].pExpr, pnHeight); 3214b5255acSdanielk1977 } 3224b5255acSdanielk1977 } 3234b5255acSdanielk1977 } 3244b5255acSdanielk1977 static void heightOfSelect(Select *p, int *pnHeight){ 3254b5255acSdanielk1977 if( p ){ 3264b5255acSdanielk1977 heightOfExpr(p->pWhere, pnHeight); 3274b5255acSdanielk1977 heightOfExpr(p->pHaving, pnHeight); 3284b5255acSdanielk1977 heightOfExpr(p->pLimit, pnHeight); 3294b5255acSdanielk1977 heightOfExpr(p->pOffset, pnHeight); 3304b5255acSdanielk1977 heightOfExprList(p->pEList, pnHeight); 3314b5255acSdanielk1977 heightOfExprList(p->pGroupBy, pnHeight); 3324b5255acSdanielk1977 heightOfExprList(p->pOrderBy, pnHeight); 3334b5255acSdanielk1977 heightOfSelect(p->pPrior, pnHeight); 3344b5255acSdanielk1977 } 3354b5255acSdanielk1977 } 3364b5255acSdanielk1977 3374b5255acSdanielk1977 /* 3384b5255acSdanielk1977 ** Set the Expr.nHeight variable in the structure passed as an 3394b5255acSdanielk1977 ** argument. An expression with no children, Expr.pList or 3404b5255acSdanielk1977 ** Expr.pSelect member has a height of 1. Any other expression 3414b5255acSdanielk1977 ** has a height equal to the maximum height of any other 3424b5255acSdanielk1977 ** referenced Expr plus one. 3434b5255acSdanielk1977 */ 3444b5255acSdanielk1977 static void exprSetHeight(Expr *p){ 3454b5255acSdanielk1977 int nHeight = 0; 3464b5255acSdanielk1977 heightOfExpr(p->pLeft, &nHeight); 3474b5255acSdanielk1977 heightOfExpr(p->pRight, &nHeight); 3486ab3a2ecSdanielk1977 if( ExprHasProperty(p, EP_xIsSelect) ){ 3496ab3a2ecSdanielk1977 heightOfSelect(p->x.pSelect, &nHeight); 3506ab3a2ecSdanielk1977 }else{ 3516ab3a2ecSdanielk1977 heightOfExprList(p->x.pList, &nHeight); 3526ab3a2ecSdanielk1977 } 3534b5255acSdanielk1977 p->nHeight = nHeight + 1; 3544b5255acSdanielk1977 } 3554b5255acSdanielk1977 3564b5255acSdanielk1977 /* 3574b5255acSdanielk1977 ** Set the Expr.nHeight variable using the exprSetHeight() function. If 3584b5255acSdanielk1977 ** the height is greater than the maximum allowed expression depth, 3594b5255acSdanielk1977 ** leave an error in pParse. 3604b5255acSdanielk1977 */ 3614b5255acSdanielk1977 void sqlite3ExprSetHeight(Parse *pParse, Expr *p){ 3624b5255acSdanielk1977 exprSetHeight(p); 3637d10d5a6Sdrh sqlite3ExprCheckHeight(pParse, p->nHeight); 3644b5255acSdanielk1977 } 3654b5255acSdanielk1977 3664b5255acSdanielk1977 /* 3674b5255acSdanielk1977 ** Return the maximum height of any expression tree referenced 3684b5255acSdanielk1977 ** by the select statement passed as an argument. 3694b5255acSdanielk1977 */ 3704b5255acSdanielk1977 int sqlite3SelectExprHeight(Select *p){ 3714b5255acSdanielk1977 int nHeight = 0; 3724b5255acSdanielk1977 heightOfSelect(p, &nHeight); 3734b5255acSdanielk1977 return nHeight; 3744b5255acSdanielk1977 } 3754b5255acSdanielk1977 #else 3764b5255acSdanielk1977 #define exprSetHeight(y) 3774b5255acSdanielk1977 #endif /* SQLITE_MAX_EXPR_DEPTH>0 */ 3784b5255acSdanielk1977 379be5c89acSdrh /* 380b7916a78Sdrh ** This routine is the core allocator for Expr nodes. 381b7916a78Sdrh ** 382a76b5dfcSdrh ** Construct a new expression node and return a pointer to it. Memory 383b7916a78Sdrh ** for this node and for the pToken argument is a single allocation 384b7916a78Sdrh ** obtained from sqlite3DbMalloc(). The calling function 385a76b5dfcSdrh ** is responsible for making sure the node eventually gets freed. 386b7916a78Sdrh ** 387b7916a78Sdrh ** If dequote is true, then the token (if it exists) is dequoted. 388b7916a78Sdrh ** If dequote is false, no dequoting is performance. The deQuote 389b7916a78Sdrh ** parameter is ignored if pToken is NULL or if the token does not 390b7916a78Sdrh ** appear to be quoted. If the quotes were of the form "..." (double-quotes) 391b7916a78Sdrh ** then the EP_DblQuoted flag is set on the expression node. 39233e619fcSdrh ** 39333e619fcSdrh ** Special case: If op==TK_INTEGER and pToken points to a string that 39433e619fcSdrh ** can be translated into a 32-bit integer, then the token is not 39533e619fcSdrh ** stored in u.zToken. Instead, the integer values is written 39633e619fcSdrh ** into u.iValue and the EP_IntValue flag is set. No extra storage 39733e619fcSdrh ** is allocated to hold the integer text and the dequote flag is ignored. 398a76b5dfcSdrh */ 399b7916a78Sdrh Expr *sqlite3ExprAlloc( 400a1644fd8Sdanielk1977 sqlite3 *db, /* Handle for sqlite3DbMallocZero() (may be null) */ 40117435752Sdrh int op, /* Expression opcode */ 402b7916a78Sdrh const Token *pToken, /* Token argument. Might be NULL */ 403b7916a78Sdrh int dequote /* True to dequote */ 40417435752Sdrh ){ 405a76b5dfcSdrh Expr *pNew; 40633e619fcSdrh int nExtra = 0; 407cf697396Sshane int iValue = 0; 408b7916a78Sdrh 409b7916a78Sdrh if( pToken ){ 41033e619fcSdrh if( op!=TK_INTEGER || pToken->z==0 41133e619fcSdrh || sqlite3GetInt32(pToken->z, &iValue)==0 ){ 412b7916a78Sdrh nExtra = pToken->n+1; 41333e619fcSdrh } 414a76b5dfcSdrh } 415b7916a78Sdrh pNew = sqlite3DbMallocZero(db, sizeof(Expr)+nExtra); 416b7916a78Sdrh if( pNew ){ 4171bd10f8aSdrh pNew->op = (u8)op; 418a58fdfb1Sdanielk1977 pNew->iAgg = -1; 419a76b5dfcSdrh if( pToken ){ 42033e619fcSdrh if( nExtra==0 ){ 42133e619fcSdrh pNew->flags |= EP_IntValue; 42233e619fcSdrh pNew->u.iValue = iValue; 42333e619fcSdrh }else{ 424d9da78a2Sdrh int c; 42533e619fcSdrh pNew->u.zToken = (char*)&pNew[1]; 42633e619fcSdrh memcpy(pNew->u.zToken, pToken->z, pToken->n); 42733e619fcSdrh pNew->u.zToken[pToken->n] = 0; 428b7916a78Sdrh if( dequote && nExtra>=3 429d9da78a2Sdrh && ((c = pToken->z[0])=='\'' || c=='"' || c=='[' || c=='`') ){ 43033e619fcSdrh sqlite3Dequote(pNew->u.zToken); 43124fb627aSdrh if( c=='"' ) pNew->flags |= EP_DblQuoted; 432a34001c9Sdrh } 433a34001c9Sdrh } 43433e619fcSdrh } 435b7916a78Sdrh #if SQLITE_MAX_EXPR_DEPTH>0 436b7916a78Sdrh pNew->nHeight = 1; 437b7916a78Sdrh #endif 438a34001c9Sdrh } 439a76b5dfcSdrh return pNew; 440a76b5dfcSdrh } 441a76b5dfcSdrh 442a76b5dfcSdrh /* 443b7916a78Sdrh ** Allocate a new expression node from a zero-terminated token that has 444b7916a78Sdrh ** already been dequoted. 445b7916a78Sdrh */ 446b7916a78Sdrh Expr *sqlite3Expr( 447b7916a78Sdrh sqlite3 *db, /* Handle for sqlite3DbMallocZero() (may be null) */ 448b7916a78Sdrh int op, /* Expression opcode */ 449b7916a78Sdrh const char *zToken /* Token argument. Might be NULL */ 450b7916a78Sdrh ){ 451b7916a78Sdrh Token x; 452b7916a78Sdrh x.z = zToken; 453b7916a78Sdrh x.n = zToken ? sqlite3Strlen30(zToken) : 0; 454b7916a78Sdrh return sqlite3ExprAlloc(db, op, &x, 0); 455b7916a78Sdrh } 456b7916a78Sdrh 457b7916a78Sdrh /* 458b7916a78Sdrh ** Attach subtrees pLeft and pRight to the Expr node pRoot. 459b7916a78Sdrh ** 460b7916a78Sdrh ** If pRoot==NULL that means that a memory allocation error has occurred. 461b7916a78Sdrh ** In that case, delete the subtrees pLeft and pRight. 462b7916a78Sdrh */ 463b7916a78Sdrh void sqlite3ExprAttachSubtrees( 464b7916a78Sdrh sqlite3 *db, 465b7916a78Sdrh Expr *pRoot, 466b7916a78Sdrh Expr *pLeft, 467b7916a78Sdrh Expr *pRight 468b7916a78Sdrh ){ 469b7916a78Sdrh if( pRoot==0 ){ 470b7916a78Sdrh assert( db->mallocFailed ); 471b7916a78Sdrh sqlite3ExprDelete(db, pLeft); 472b7916a78Sdrh sqlite3ExprDelete(db, pRight); 473b7916a78Sdrh }else{ 474b7916a78Sdrh if( pRight ){ 475b7916a78Sdrh pRoot->pRight = pRight; 476b7916a78Sdrh if( pRight->flags & EP_ExpCollate ){ 477b7916a78Sdrh pRoot->flags |= EP_ExpCollate; 478b7916a78Sdrh pRoot->pColl = pRight->pColl; 479b7916a78Sdrh } 480b7916a78Sdrh } 481b7916a78Sdrh if( pLeft ){ 482b7916a78Sdrh pRoot->pLeft = pLeft; 483b7916a78Sdrh if( pLeft->flags & EP_ExpCollate ){ 484b7916a78Sdrh pRoot->flags |= EP_ExpCollate; 485b7916a78Sdrh pRoot->pColl = pLeft->pColl; 486b7916a78Sdrh } 487b7916a78Sdrh } 488b7916a78Sdrh exprSetHeight(pRoot); 489b7916a78Sdrh } 490b7916a78Sdrh } 491b7916a78Sdrh 492b7916a78Sdrh /* 493bf664469Sdrh ** Allocate a Expr node which joins as many as two subtrees. 494b7916a78Sdrh ** 495bf664469Sdrh ** One or both of the subtrees can be NULL. Return a pointer to the new 496bf664469Sdrh ** Expr node. Or, if an OOM error occurs, set pParse->db->mallocFailed, 497bf664469Sdrh ** free the subtrees and return NULL. 498206f3d96Sdrh */ 49917435752Sdrh Expr *sqlite3PExpr( 50017435752Sdrh Parse *pParse, /* Parsing context */ 50117435752Sdrh int op, /* Expression opcode */ 50217435752Sdrh Expr *pLeft, /* Left operand */ 50317435752Sdrh Expr *pRight, /* Right operand */ 50417435752Sdrh const Token *pToken /* Argument token */ 50517435752Sdrh ){ 506b7916a78Sdrh Expr *p = sqlite3ExprAlloc(pParse->db, op, pToken, 1); 507b7916a78Sdrh sqlite3ExprAttachSubtrees(pParse->db, p, pLeft, pRight); 5084e0cff60Sdrh return p; 5094e0cff60Sdrh } 5104e0cff60Sdrh 5114e0cff60Sdrh /* 51291bb0eedSdrh ** Join two expressions using an AND operator. If either expression is 51391bb0eedSdrh ** NULL, then just return the other expression. 51491bb0eedSdrh */ 5151e536953Sdanielk1977 Expr *sqlite3ExprAnd(sqlite3 *db, Expr *pLeft, Expr *pRight){ 51691bb0eedSdrh if( pLeft==0 ){ 51791bb0eedSdrh return pRight; 51891bb0eedSdrh }else if( pRight==0 ){ 51991bb0eedSdrh return pLeft; 52091bb0eedSdrh }else{ 521b7916a78Sdrh Expr *pNew = sqlite3ExprAlloc(db, TK_AND, 0, 0); 522b7916a78Sdrh sqlite3ExprAttachSubtrees(db, pNew, pLeft, pRight); 523b7916a78Sdrh return pNew; 524a76b5dfcSdrh } 525a76b5dfcSdrh } 526a76b5dfcSdrh 527a76b5dfcSdrh /* 528a76b5dfcSdrh ** Construct a new expression node for a function with multiple 529a76b5dfcSdrh ** arguments. 530a76b5dfcSdrh */ 53117435752Sdrh Expr *sqlite3ExprFunction(Parse *pParse, ExprList *pList, Token *pToken){ 532a76b5dfcSdrh Expr *pNew; 533633e6d57Sdrh sqlite3 *db = pParse->db; 5344b202ae2Sdanielk1977 assert( pToken ); 535b7916a78Sdrh pNew = sqlite3ExprAlloc(db, TK_FUNCTION, pToken, 1); 536a76b5dfcSdrh if( pNew==0 ){ 537d9da78a2Sdrh sqlite3ExprListDelete(db, pList); /* Avoid memory leak when malloc fails */ 538a76b5dfcSdrh return 0; 539a76b5dfcSdrh } 5406ab3a2ecSdanielk1977 pNew->x.pList = pList; 5416ab3a2ecSdanielk1977 assert( !ExprHasProperty(pNew, EP_xIsSelect) ); 5424b5255acSdanielk1977 sqlite3ExprSetHeight(pParse, pNew); 543a76b5dfcSdrh return pNew; 544a76b5dfcSdrh } 545a76b5dfcSdrh 546a76b5dfcSdrh /* 547fa6bc000Sdrh ** Assign a variable number to an expression that encodes a wildcard 548fa6bc000Sdrh ** in the original SQL statement. 549fa6bc000Sdrh ** 550fa6bc000Sdrh ** Wildcards consisting of a single "?" are assigned the next sequential 551fa6bc000Sdrh ** variable number. 552fa6bc000Sdrh ** 553fa6bc000Sdrh ** Wildcards of the form "?nnn" are assigned the number "nnn". We make 554fa6bc000Sdrh ** sure "nnn" is not too be to avoid a denial of service attack when 555fa6bc000Sdrh ** the SQL statement comes from an external source. 556fa6bc000Sdrh ** 55751f49f17Sdrh ** Wildcards of the form ":aaa", "@aaa", or "$aaa" are assigned the same number 558fa6bc000Sdrh ** as the previous instance of the same wildcard. Or if this is the first 559fa6bc000Sdrh ** instance of the wildcard, the next sequenial variable number is 560fa6bc000Sdrh ** assigned. 561fa6bc000Sdrh */ 562fa6bc000Sdrh void sqlite3ExprAssignVarNumber(Parse *pParse, Expr *pExpr){ 56317435752Sdrh sqlite3 *db = pParse->db; 564b7916a78Sdrh const char *z; 56517435752Sdrh 566fa6bc000Sdrh if( pExpr==0 ) return; 56733e619fcSdrh assert( !ExprHasAnyProperty(pExpr, EP_IntValue|EP_Reduced|EP_TokenOnly) ); 56833e619fcSdrh z = pExpr->u.zToken; 569b7916a78Sdrh assert( z!=0 ); 570b7916a78Sdrh assert( z[0]!=0 ); 571b7916a78Sdrh if( z[1]==0 ){ 572fa6bc000Sdrh /* Wildcard of the form "?". Assign the next variable number */ 573b7916a78Sdrh assert( z[0]=='?' ); 5748677d308Sdrh pExpr->iColumn = (ynVar)(++pParse->nVar); 575b7916a78Sdrh }else if( z[0]=='?' ){ 576fa6bc000Sdrh /* Wildcard of the form "?nnn". Convert "nnn" to an integer and 577fa6bc000Sdrh ** use it as the variable number */ 578f639c40fSshane int i = atoi((char*)&z[1]); 5798677d308Sdrh pExpr->iColumn = (ynVar)i; 580c5499befSdrh testcase( i==0 ); 581c5499befSdrh testcase( i==1 ); 582c5499befSdrh testcase( i==db->aLimit[SQLITE_LIMIT_VARIABLE_NUMBER]-1 ); 583c5499befSdrh testcase( i==db->aLimit[SQLITE_LIMIT_VARIABLE_NUMBER] ); 584bb4957f8Sdrh if( i<1 || i>db->aLimit[SQLITE_LIMIT_VARIABLE_NUMBER] ){ 585fa6bc000Sdrh sqlite3ErrorMsg(pParse, "variable number must be between ?1 and ?%d", 586bb4957f8Sdrh db->aLimit[SQLITE_LIMIT_VARIABLE_NUMBER]); 587fa6bc000Sdrh } 588fa6bc000Sdrh if( i>pParse->nVar ){ 589fa6bc000Sdrh pParse->nVar = i; 590fa6bc000Sdrh } 591fa6bc000Sdrh }else{ 59251f49f17Sdrh /* Wildcards like ":aaa", "$aaa" or "@aaa". Reuse the same variable 593fa6bc000Sdrh ** number as the prior appearance of the same name, or if the name 594fa6bc000Sdrh ** has never appeared before, reuse the same variable number 595fa6bc000Sdrh */ 5961bd10f8aSdrh int i; 5971bd10f8aSdrh u32 n; 598b7916a78Sdrh n = sqlite3Strlen30(z); 599fa6bc000Sdrh for(i=0; i<pParse->nVarExpr; i++){ 60051f49f17Sdrh Expr *pE = pParse->apVarExpr[i]; 60151f49f17Sdrh assert( pE!=0 ); 60233e619fcSdrh if( memcmp(pE->u.zToken, z, n)==0 && pE->u.zToken[n]==0 ){ 603937d0deaSdan pExpr->iColumn = pE->iColumn; 604fa6bc000Sdrh break; 605fa6bc000Sdrh } 606fa6bc000Sdrh } 607fa6bc000Sdrh if( i>=pParse->nVarExpr ){ 6088677d308Sdrh pExpr->iColumn = (ynVar)(++pParse->nVar); 609fa6bc000Sdrh if( pParse->nVarExpr>=pParse->nVarExprAlloc-1 ){ 610fa6bc000Sdrh pParse->nVarExprAlloc += pParse->nVarExprAlloc + 10; 61117435752Sdrh pParse->apVarExpr = 61217435752Sdrh sqlite3DbReallocOrFree( 61317435752Sdrh db, 61417435752Sdrh pParse->apVarExpr, 61517435752Sdrh pParse->nVarExprAlloc*sizeof(pParse->apVarExpr[0]) 61617435752Sdrh ); 617fa6bc000Sdrh } 61817435752Sdrh if( !db->mallocFailed ){ 619fa6bc000Sdrh assert( pParse->apVarExpr!=0 ); 620fa6bc000Sdrh pParse->apVarExpr[pParse->nVarExpr++] = pExpr; 621fa6bc000Sdrh } 622fa6bc000Sdrh } 623fa6bc000Sdrh } 624bb4957f8Sdrh if( !pParse->nErr && pParse->nVar>db->aLimit[SQLITE_LIMIT_VARIABLE_NUMBER] ){ 625832b2664Sdanielk1977 sqlite3ErrorMsg(pParse, "too many SQL variables"); 626832b2664Sdanielk1977 } 627fa6bc000Sdrh } 628fa6bc000Sdrh 629fa6bc000Sdrh /* 63010fe840eSdrh ** Clear an expression structure without deleting the structure itself. 63110fe840eSdrh ** Substructure is deleted. 632a2e00042Sdrh */ 63310fe840eSdrh void sqlite3ExprClear(sqlite3 *db, Expr *p){ 63433e619fcSdrh assert( p!=0 ); 635b7916a78Sdrh if( !ExprHasAnyProperty(p, EP_TokenOnly) ){ 636633e6d57Sdrh sqlite3ExprDelete(db, p->pLeft); 637633e6d57Sdrh sqlite3ExprDelete(db, p->pRight); 63833e619fcSdrh if( !ExprHasProperty(p, EP_Reduced) && (p->flags2 & EP2_MallocedToken)!=0 ){ 63933e619fcSdrh sqlite3DbFree(db, p->u.zToken); 6406ab3a2ecSdanielk1977 } 6416ab3a2ecSdanielk1977 if( ExprHasProperty(p, EP_xIsSelect) ){ 6426ab3a2ecSdanielk1977 sqlite3SelectDelete(db, p->x.pSelect); 6436ab3a2ecSdanielk1977 }else{ 6446ab3a2ecSdanielk1977 sqlite3ExprListDelete(db, p->x.pList); 6456ab3a2ecSdanielk1977 } 6466ab3a2ecSdanielk1977 } 64710fe840eSdrh } 64810fe840eSdrh 64910fe840eSdrh /* 65010fe840eSdrh ** Recursively delete an expression tree. 65110fe840eSdrh */ 65210fe840eSdrh void sqlite3ExprDelete(sqlite3 *db, Expr *p){ 65310fe840eSdrh if( p==0 ) return; 65410fe840eSdrh sqlite3ExprClear(db, p); 65533e619fcSdrh if( !ExprHasProperty(p, EP_Static) ){ 656633e6d57Sdrh sqlite3DbFree(db, p); 657a2e00042Sdrh } 65833e619fcSdrh } 659a2e00042Sdrh 660d2687b77Sdrh /* 6616ab3a2ecSdanielk1977 ** Return the number of bytes allocated for the expression structure 6626ab3a2ecSdanielk1977 ** passed as the first argument. This is always one of EXPR_FULLSIZE, 6636ab3a2ecSdanielk1977 ** EXPR_REDUCEDSIZE or EXPR_TOKENONLYSIZE. 6646ab3a2ecSdanielk1977 */ 6656ab3a2ecSdanielk1977 static int exprStructSize(Expr *p){ 6666ab3a2ecSdanielk1977 if( ExprHasProperty(p, EP_TokenOnly) ) return EXPR_TOKENONLYSIZE; 6676ab3a2ecSdanielk1977 if( ExprHasProperty(p, EP_Reduced) ) return EXPR_REDUCEDSIZE; 6686ab3a2ecSdanielk1977 return EXPR_FULLSIZE; 6696ab3a2ecSdanielk1977 } 6706ab3a2ecSdanielk1977 6716ab3a2ecSdanielk1977 /* 67233e619fcSdrh ** The dupedExpr*Size() routines each return the number of bytes required 67333e619fcSdrh ** to store a copy of an expression or expression tree. They differ in 67433e619fcSdrh ** how much of the tree is measured. 67533e619fcSdrh ** 67633e619fcSdrh ** dupedExprStructSize() Size of only the Expr structure 67733e619fcSdrh ** dupedExprNodeSize() Size of Expr + space for token 67833e619fcSdrh ** dupedExprSize() Expr + token + subtree components 67933e619fcSdrh ** 68033e619fcSdrh *************************************************************************** 68133e619fcSdrh ** 68233e619fcSdrh ** The dupedExprStructSize() function returns two values OR-ed together: 68333e619fcSdrh ** (1) the space required for a copy of the Expr structure only and 68433e619fcSdrh ** (2) the EP_xxx flags that indicate what the structure size should be. 68533e619fcSdrh ** The return values is always one of: 68633e619fcSdrh ** 68733e619fcSdrh ** EXPR_FULLSIZE 68833e619fcSdrh ** EXPR_REDUCEDSIZE | EP_Reduced 68933e619fcSdrh ** EXPR_TOKENONLYSIZE | EP_TokenOnly 69033e619fcSdrh ** 69133e619fcSdrh ** The size of the structure can be found by masking the return value 69233e619fcSdrh ** of this routine with 0xfff. The flags can be found by masking the 69333e619fcSdrh ** return value with EP_Reduced|EP_TokenOnly. 69433e619fcSdrh ** 69533e619fcSdrh ** Note that with flags==EXPRDUP_REDUCE, this routines works on full-size 69633e619fcSdrh ** (unreduced) Expr objects as they or originally constructed by the parser. 69733e619fcSdrh ** During expression analysis, extra information is computed and moved into 69833e619fcSdrh ** later parts of teh Expr object and that extra information might get chopped 69933e619fcSdrh ** off if the expression is reduced. Note also that it does not work to 70033e619fcSdrh ** make a EXPRDUP_REDUCE copy of a reduced expression. It is only legal 70133e619fcSdrh ** to reduce a pristine expression tree from the parser. The implementation 70233e619fcSdrh ** of dupedExprStructSize() contain multiple assert() statements that attempt 70333e619fcSdrh ** to enforce this constraint. 7046ab3a2ecSdanielk1977 */ 7056ab3a2ecSdanielk1977 static int dupedExprStructSize(Expr *p, int flags){ 7066ab3a2ecSdanielk1977 int nSize; 70733e619fcSdrh assert( flags==EXPRDUP_REDUCE || flags==0 ); /* Only one flag value allowed */ 7086ab3a2ecSdanielk1977 if( 0==(flags&EXPRDUP_REDUCE) ){ 7096ab3a2ecSdanielk1977 nSize = EXPR_FULLSIZE; 7106ab3a2ecSdanielk1977 }else{ 71133e619fcSdrh assert( !ExprHasAnyProperty(p, EP_TokenOnly|EP_Reduced) ); 71233e619fcSdrh assert( !ExprHasProperty(p, EP_FromJoin) ); 71333e619fcSdrh assert( (p->flags2 & EP2_MallocedToken)==0 ); 71433e619fcSdrh assert( (p->flags2 & EP2_Irreducible)==0 ); 71533e619fcSdrh if( p->pLeft || p->pRight || p->pColl || p->x.pList ){ 71633e619fcSdrh nSize = EXPR_REDUCEDSIZE | EP_Reduced; 71733e619fcSdrh }else{ 71833e619fcSdrh nSize = EXPR_TOKENONLYSIZE | EP_TokenOnly; 71933e619fcSdrh } 7206ab3a2ecSdanielk1977 } 7216ab3a2ecSdanielk1977 return nSize; 7226ab3a2ecSdanielk1977 } 7236ab3a2ecSdanielk1977 7246ab3a2ecSdanielk1977 /* 72533e619fcSdrh ** This function returns the space in bytes required to store the copy 72633e619fcSdrh ** of the Expr structure and a copy of the Expr.u.zToken string (if that 72733e619fcSdrh ** string is defined.) 7286ab3a2ecSdanielk1977 */ 7296ab3a2ecSdanielk1977 static int dupedExprNodeSize(Expr *p, int flags){ 73033e619fcSdrh int nByte = dupedExprStructSize(p, flags) & 0xfff; 73133e619fcSdrh if( !ExprHasProperty(p, EP_IntValue) && p->u.zToken ){ 73233e619fcSdrh nByte += sqlite3Strlen30(p->u.zToken)+1; 7336ab3a2ecSdanielk1977 } 734bc73971dSdanielk1977 return ROUND8(nByte); 7356ab3a2ecSdanielk1977 } 7366ab3a2ecSdanielk1977 7376ab3a2ecSdanielk1977 /* 7386ab3a2ecSdanielk1977 ** Return the number of bytes required to create a duplicate of the 7396ab3a2ecSdanielk1977 ** expression passed as the first argument. The second argument is a 7406ab3a2ecSdanielk1977 ** mask containing EXPRDUP_XXX flags. 7416ab3a2ecSdanielk1977 ** 7426ab3a2ecSdanielk1977 ** The value returned includes space to create a copy of the Expr struct 74333e619fcSdrh ** itself and the buffer referred to by Expr.u.zToken, if any. 7446ab3a2ecSdanielk1977 ** 7456ab3a2ecSdanielk1977 ** If the EXPRDUP_REDUCE flag is set, then the return value includes 7466ab3a2ecSdanielk1977 ** space to duplicate all Expr nodes in the tree formed by Expr.pLeft 7476ab3a2ecSdanielk1977 ** and Expr.pRight variables (but not for any structures pointed to or 7486ab3a2ecSdanielk1977 ** descended from the Expr.x.pList or Expr.x.pSelect variables). 7496ab3a2ecSdanielk1977 */ 7506ab3a2ecSdanielk1977 static int dupedExprSize(Expr *p, int flags){ 7516ab3a2ecSdanielk1977 int nByte = 0; 7526ab3a2ecSdanielk1977 if( p ){ 7536ab3a2ecSdanielk1977 nByte = dupedExprNodeSize(p, flags); 7546ab3a2ecSdanielk1977 if( flags&EXPRDUP_REDUCE ){ 755b7916a78Sdrh nByte += dupedExprSize(p->pLeft, flags) + dupedExprSize(p->pRight, flags); 7566ab3a2ecSdanielk1977 } 7576ab3a2ecSdanielk1977 } 7586ab3a2ecSdanielk1977 return nByte; 7596ab3a2ecSdanielk1977 } 7606ab3a2ecSdanielk1977 7616ab3a2ecSdanielk1977 /* 7626ab3a2ecSdanielk1977 ** This function is similar to sqlite3ExprDup(), except that if pzBuffer 7636ab3a2ecSdanielk1977 ** is not NULL then *pzBuffer is assumed to point to a buffer large enough 76433e619fcSdrh ** to store the copy of expression p, the copies of p->u.zToken 7656ab3a2ecSdanielk1977 ** (if applicable), and the copies of the p->pLeft and p->pRight expressions, 7666ab3a2ecSdanielk1977 ** if any. Before returning, *pzBuffer is set to the first byte passed the 7676ab3a2ecSdanielk1977 ** portion of the buffer copied into by this function. 7686ab3a2ecSdanielk1977 */ 7696ab3a2ecSdanielk1977 static Expr *exprDup(sqlite3 *db, Expr *p, int flags, u8 **pzBuffer){ 7706ab3a2ecSdanielk1977 Expr *pNew = 0; /* Value to return */ 7716ab3a2ecSdanielk1977 if( p ){ 7726ab3a2ecSdanielk1977 const int isReduced = (flags&EXPRDUP_REDUCE); 7736ab3a2ecSdanielk1977 u8 *zAlloc; 77433e619fcSdrh u32 staticFlag = 0; 7756ab3a2ecSdanielk1977 7766ab3a2ecSdanielk1977 assert( pzBuffer==0 || isReduced ); 7776ab3a2ecSdanielk1977 7786ab3a2ecSdanielk1977 /* Figure out where to write the new Expr structure. */ 7796ab3a2ecSdanielk1977 if( pzBuffer ){ 7806ab3a2ecSdanielk1977 zAlloc = *pzBuffer; 78133e619fcSdrh staticFlag = EP_Static; 7826ab3a2ecSdanielk1977 }else{ 7836ab3a2ecSdanielk1977 zAlloc = sqlite3DbMallocRaw(db, dupedExprSize(p, flags)); 7846ab3a2ecSdanielk1977 } 7856ab3a2ecSdanielk1977 pNew = (Expr *)zAlloc; 7866ab3a2ecSdanielk1977 7876ab3a2ecSdanielk1977 if( pNew ){ 7886ab3a2ecSdanielk1977 /* Set nNewSize to the size allocated for the structure pointed to 7896ab3a2ecSdanielk1977 ** by pNew. This is either EXPR_FULLSIZE, EXPR_REDUCEDSIZE or 7906ab3a2ecSdanielk1977 ** EXPR_TOKENONLYSIZE. nToken is set to the number of bytes consumed 79133e619fcSdrh ** by the copy of the p->u.zToken string (if any). 7926ab3a2ecSdanielk1977 */ 79333e619fcSdrh const unsigned nStructSize = dupedExprStructSize(p, flags); 79433e619fcSdrh const int nNewSize = nStructSize & 0xfff; 79533e619fcSdrh int nToken; 79633e619fcSdrh if( !ExprHasProperty(p, EP_IntValue) && p->u.zToken ){ 79733e619fcSdrh nToken = sqlite3Strlen30(p->u.zToken) + 1; 79833e619fcSdrh }else{ 79933e619fcSdrh nToken = 0; 80033e619fcSdrh } 8016ab3a2ecSdanielk1977 if( isReduced ){ 8026ab3a2ecSdanielk1977 assert( ExprHasProperty(p, EP_Reduced)==0 ); 8036ab3a2ecSdanielk1977 memcpy(zAlloc, p, nNewSize); 8046ab3a2ecSdanielk1977 }else{ 8056ab3a2ecSdanielk1977 int nSize = exprStructSize(p); 8066ab3a2ecSdanielk1977 memcpy(zAlloc, p, nSize); 8076ab3a2ecSdanielk1977 memset(&zAlloc[nSize], 0, EXPR_FULLSIZE-nSize); 8086ab3a2ecSdanielk1977 } 8096ab3a2ecSdanielk1977 81033e619fcSdrh /* Set the EP_Reduced, EP_TokenOnly, and EP_Static flags appropriately. */ 81133e619fcSdrh pNew->flags &= ~(EP_Reduced|EP_TokenOnly|EP_Static); 81233e619fcSdrh pNew->flags |= nStructSize & (EP_Reduced|EP_TokenOnly); 81333e619fcSdrh pNew->flags |= staticFlag; 8146ab3a2ecSdanielk1977 81533e619fcSdrh /* Copy the p->u.zToken string, if any. */ 8166ab3a2ecSdanielk1977 if( nToken ){ 81733e619fcSdrh char *zToken = pNew->u.zToken = (char*)&zAlloc[nNewSize]; 81833e619fcSdrh memcpy(zToken, p->u.zToken, nToken); 8196ab3a2ecSdanielk1977 } 8206ab3a2ecSdanielk1977 8216ab3a2ecSdanielk1977 if( 0==((p->flags|pNew->flags) & EP_TokenOnly) ){ 8226ab3a2ecSdanielk1977 /* Fill in the pNew->x.pSelect or pNew->x.pList member. */ 8236ab3a2ecSdanielk1977 if( ExprHasProperty(p, EP_xIsSelect) ){ 8246ab3a2ecSdanielk1977 pNew->x.pSelect = sqlite3SelectDup(db, p->x.pSelect, isReduced); 8256ab3a2ecSdanielk1977 }else{ 8266ab3a2ecSdanielk1977 pNew->x.pList = sqlite3ExprListDup(db, p->x.pList, isReduced); 8276ab3a2ecSdanielk1977 } 8286ab3a2ecSdanielk1977 } 8296ab3a2ecSdanielk1977 8306ab3a2ecSdanielk1977 /* Fill in pNew->pLeft and pNew->pRight. */ 831b7916a78Sdrh if( ExprHasAnyProperty(pNew, EP_Reduced|EP_TokenOnly) ){ 8326ab3a2ecSdanielk1977 zAlloc += dupedExprNodeSize(p, flags); 8336ab3a2ecSdanielk1977 if( ExprHasProperty(pNew, EP_Reduced) ){ 8346ab3a2ecSdanielk1977 pNew->pLeft = exprDup(db, p->pLeft, EXPRDUP_REDUCE, &zAlloc); 8356ab3a2ecSdanielk1977 pNew->pRight = exprDup(db, p->pRight, EXPRDUP_REDUCE, &zAlloc); 8366ab3a2ecSdanielk1977 } 8376ab3a2ecSdanielk1977 if( pzBuffer ){ 8386ab3a2ecSdanielk1977 *pzBuffer = zAlloc; 8396ab3a2ecSdanielk1977 } 840b7916a78Sdrh }else{ 841b7916a78Sdrh pNew->flags2 = 0; 842b7916a78Sdrh if( !ExprHasAnyProperty(p, EP_TokenOnly) ){ 8436ab3a2ecSdanielk1977 pNew->pLeft = sqlite3ExprDup(db, p->pLeft, 0); 8446ab3a2ecSdanielk1977 pNew->pRight = sqlite3ExprDup(db, p->pRight, 0); 8456ab3a2ecSdanielk1977 } 8466ab3a2ecSdanielk1977 } 847b7916a78Sdrh 848b7916a78Sdrh } 8496ab3a2ecSdanielk1977 } 8506ab3a2ecSdanielk1977 return pNew; 8516ab3a2ecSdanielk1977 } 8526ab3a2ecSdanielk1977 8536ab3a2ecSdanielk1977 /* 854ff78bd2fSdrh ** The following group of routines make deep copies of expressions, 855ff78bd2fSdrh ** expression lists, ID lists, and select statements. The copies can 856ff78bd2fSdrh ** be deleted (by being passed to their respective ...Delete() routines) 857ff78bd2fSdrh ** without effecting the originals. 858ff78bd2fSdrh ** 8594adee20fSdanielk1977 ** The expression list, ID, and source lists return by sqlite3ExprListDup(), 8604adee20fSdanielk1977 ** sqlite3IdListDup(), and sqlite3SrcListDup() can not be further expanded 861ad3cab52Sdrh ** by subsequent calls to sqlite*ListAppend() routines. 862ff78bd2fSdrh ** 863ad3cab52Sdrh ** Any tables that the SrcList might point to are not duplicated. 8646ab3a2ecSdanielk1977 ** 865b7916a78Sdrh ** The flags parameter contains a combination of the EXPRDUP_XXX flags. 8666ab3a2ecSdanielk1977 ** If the EXPRDUP_REDUCE flag is set, then the structure returned is a 8676ab3a2ecSdanielk1977 ** truncated version of the usual Expr structure that will be stored as 8686ab3a2ecSdanielk1977 ** part of the in-memory representation of the database schema. 869ff78bd2fSdrh */ 8706ab3a2ecSdanielk1977 Expr *sqlite3ExprDup(sqlite3 *db, Expr *p, int flags){ 8716ab3a2ecSdanielk1977 return exprDup(db, p, flags, 0); 872ff78bd2fSdrh } 8736ab3a2ecSdanielk1977 ExprList *sqlite3ExprListDup(sqlite3 *db, ExprList *p, int flags){ 874ff78bd2fSdrh ExprList *pNew; 875145716b3Sdrh struct ExprList_item *pItem, *pOldItem; 876ff78bd2fSdrh int i; 877ff78bd2fSdrh if( p==0 ) return 0; 87817435752Sdrh pNew = sqlite3DbMallocRaw(db, sizeof(*pNew) ); 879ff78bd2fSdrh if( pNew==0 ) return 0; 88031dad9daSdanielk1977 pNew->iECursor = 0; 8814305d103Sdrh pNew->nExpr = pNew->nAlloc = p->nExpr; 88217435752Sdrh pNew->a = pItem = sqlite3DbMallocRaw(db, p->nExpr*sizeof(p->a[0]) ); 883e0048400Sdanielk1977 if( pItem==0 ){ 884633e6d57Sdrh sqlite3DbFree(db, pNew); 885e0048400Sdanielk1977 return 0; 886e0048400Sdanielk1977 } 887145716b3Sdrh pOldItem = p->a; 888145716b3Sdrh for(i=0; i<p->nExpr; i++, pItem++, pOldItem++){ 8896ab3a2ecSdanielk1977 Expr *pOldExpr = pOldItem->pExpr; 890b5526ea6Sdrh pItem->pExpr = sqlite3ExprDup(db, pOldExpr, flags); 89117435752Sdrh pItem->zName = sqlite3DbStrDup(db, pOldItem->zName); 892b7916a78Sdrh pItem->zSpan = sqlite3DbStrDup(db, pOldItem->zSpan); 893145716b3Sdrh pItem->sortOrder = pOldItem->sortOrder; 8943e7bc9caSdrh pItem->done = 0; 8957d10d5a6Sdrh pItem->iCol = pOldItem->iCol; 8968b213899Sdrh pItem->iAlias = pOldItem->iAlias; 897ff78bd2fSdrh } 898ff78bd2fSdrh return pNew; 899ff78bd2fSdrh } 90093758c8dSdanielk1977 90193758c8dSdanielk1977 /* 90293758c8dSdanielk1977 ** If cursors, triggers, views and subqueries are all omitted from 90393758c8dSdanielk1977 ** the build, then none of the following routines, except for 90493758c8dSdanielk1977 ** sqlite3SelectDup(), can be called. sqlite3SelectDup() is sometimes 90593758c8dSdanielk1977 ** called with a NULL argument. 90693758c8dSdanielk1977 */ 9076a67fe8eSdanielk1977 #if !defined(SQLITE_OMIT_VIEW) || !defined(SQLITE_OMIT_TRIGGER) \ 9086a67fe8eSdanielk1977 || !defined(SQLITE_OMIT_SUBQUERY) 9096ab3a2ecSdanielk1977 SrcList *sqlite3SrcListDup(sqlite3 *db, SrcList *p, int flags){ 910ad3cab52Sdrh SrcList *pNew; 911ad3cab52Sdrh int i; 912113088ecSdrh int nByte; 913ad3cab52Sdrh if( p==0 ) return 0; 914113088ecSdrh nByte = sizeof(*p) + (p->nSrc>0 ? sizeof(p->a[0]) * (p->nSrc-1) : 0); 91517435752Sdrh pNew = sqlite3DbMallocRaw(db, nByte ); 916ad3cab52Sdrh if( pNew==0 ) return 0; 9174305d103Sdrh pNew->nSrc = pNew->nAlloc = p->nSrc; 918ad3cab52Sdrh for(i=0; i<p->nSrc; i++){ 9194efc4754Sdrh struct SrcList_item *pNewItem = &pNew->a[i]; 9204efc4754Sdrh struct SrcList_item *pOldItem = &p->a[i]; 921ed8a3bb1Sdrh Table *pTab; 92217435752Sdrh pNewItem->zDatabase = sqlite3DbStrDup(db, pOldItem->zDatabase); 92317435752Sdrh pNewItem->zName = sqlite3DbStrDup(db, pOldItem->zName); 92417435752Sdrh pNewItem->zAlias = sqlite3DbStrDup(db, pOldItem->zAlias); 9254efc4754Sdrh pNewItem->jointype = pOldItem->jointype; 9264efc4754Sdrh pNewItem->iCursor = pOldItem->iCursor; 9271787ccabSdanielk1977 pNewItem->isPopulated = pOldItem->isPopulated; 92885574e31Sdanielk1977 pNewItem->zIndex = sqlite3DbStrDup(db, pOldItem->zIndex); 92985574e31Sdanielk1977 pNewItem->notIndexed = pOldItem->notIndexed; 93085574e31Sdanielk1977 pNewItem->pIndex = pOldItem->pIndex; 931ed8a3bb1Sdrh pTab = pNewItem->pTab = pOldItem->pTab; 932ed8a3bb1Sdrh if( pTab ){ 933ed8a3bb1Sdrh pTab->nRef++; 934a1cb183dSdanielk1977 } 9356ab3a2ecSdanielk1977 pNewItem->pSelect = sqlite3SelectDup(db, pOldItem->pSelect, flags); 9366ab3a2ecSdanielk1977 pNewItem->pOn = sqlite3ExprDup(db, pOldItem->pOn, flags); 93717435752Sdrh pNewItem->pUsing = sqlite3IdListDup(db, pOldItem->pUsing); 9386c18b6e0Sdanielk1977 pNewItem->colUsed = pOldItem->colUsed; 939ad3cab52Sdrh } 940ad3cab52Sdrh return pNew; 941ad3cab52Sdrh } 94217435752Sdrh IdList *sqlite3IdListDup(sqlite3 *db, IdList *p){ 943ff78bd2fSdrh IdList *pNew; 944ff78bd2fSdrh int i; 945ff78bd2fSdrh if( p==0 ) return 0; 94617435752Sdrh pNew = sqlite3DbMallocRaw(db, sizeof(*pNew) ); 947ff78bd2fSdrh if( pNew==0 ) return 0; 9484305d103Sdrh pNew->nId = pNew->nAlloc = p->nId; 94917435752Sdrh pNew->a = sqlite3DbMallocRaw(db, p->nId*sizeof(p->a[0]) ); 950d5d56523Sdanielk1977 if( pNew->a==0 ){ 951633e6d57Sdrh sqlite3DbFree(db, pNew); 952d5d56523Sdanielk1977 return 0; 953d5d56523Sdanielk1977 } 954ff78bd2fSdrh for(i=0; i<p->nId; i++){ 9554efc4754Sdrh struct IdList_item *pNewItem = &pNew->a[i]; 9564efc4754Sdrh struct IdList_item *pOldItem = &p->a[i]; 95717435752Sdrh pNewItem->zName = sqlite3DbStrDup(db, pOldItem->zName); 9584efc4754Sdrh pNewItem->idx = pOldItem->idx; 959ff78bd2fSdrh } 960ff78bd2fSdrh return pNew; 961ff78bd2fSdrh } 9626ab3a2ecSdanielk1977 Select *sqlite3SelectDup(sqlite3 *db, Select *p, int flags){ 963ff78bd2fSdrh Select *pNew; 964ff78bd2fSdrh if( p==0 ) return 0; 96517435752Sdrh pNew = sqlite3DbMallocRaw(db, sizeof(*p) ); 966ff78bd2fSdrh if( pNew==0 ) return 0; 967b7916a78Sdrh pNew->pEList = sqlite3ExprListDup(db, p->pEList, flags); 9686ab3a2ecSdanielk1977 pNew->pSrc = sqlite3SrcListDup(db, p->pSrc, flags); 9696ab3a2ecSdanielk1977 pNew->pWhere = sqlite3ExprDup(db, p->pWhere, flags); 9706ab3a2ecSdanielk1977 pNew->pGroupBy = sqlite3ExprListDup(db, p->pGroupBy, flags); 9716ab3a2ecSdanielk1977 pNew->pHaving = sqlite3ExprDup(db, p->pHaving, flags); 9726ab3a2ecSdanielk1977 pNew->pOrderBy = sqlite3ExprListDup(db, p->pOrderBy, flags); 973ff78bd2fSdrh pNew->op = p->op; 9746ab3a2ecSdanielk1977 pNew->pPrior = sqlite3SelectDup(db, p->pPrior, flags); 9756ab3a2ecSdanielk1977 pNew->pLimit = sqlite3ExprDup(db, p->pLimit, flags); 9766ab3a2ecSdanielk1977 pNew->pOffset = sqlite3ExprDup(db, p->pOffset, flags); 97792b01d53Sdrh pNew->iLimit = 0; 97892b01d53Sdrh pNew->iOffset = 0; 9797d10d5a6Sdrh pNew->selFlags = p->selFlags & ~SF_UsesEphemeral; 9800342b1f5Sdrh pNew->pRightmost = 0; 981b9bb7c18Sdrh pNew->addrOpenEphm[0] = -1; 982b9bb7c18Sdrh pNew->addrOpenEphm[1] = -1; 983b9bb7c18Sdrh pNew->addrOpenEphm[2] = -1; 984ff78bd2fSdrh return pNew; 985ff78bd2fSdrh } 98693758c8dSdanielk1977 #else 9876ab3a2ecSdanielk1977 Select *sqlite3SelectDup(sqlite3 *db, Select *p, int flags){ 98893758c8dSdanielk1977 assert( p==0 ); 98993758c8dSdanielk1977 return 0; 99093758c8dSdanielk1977 } 99193758c8dSdanielk1977 #endif 992ff78bd2fSdrh 993ff78bd2fSdrh 994ff78bd2fSdrh /* 995a76b5dfcSdrh ** Add a new element to the end of an expression list. If pList is 996a76b5dfcSdrh ** initially NULL, then create a new expression list. 997b7916a78Sdrh ** 998b7916a78Sdrh ** If a memory allocation error occurs, the entire list is freed and 999b7916a78Sdrh ** NULL is returned. If non-NULL is returned, then it is guaranteed 1000b7916a78Sdrh ** that the new entry was successfully appended. 1001a76b5dfcSdrh */ 100217435752Sdrh ExprList *sqlite3ExprListAppend( 100317435752Sdrh Parse *pParse, /* Parsing context */ 100417435752Sdrh ExprList *pList, /* List to which to append. Might be NULL */ 1005b7916a78Sdrh Expr *pExpr /* Expression to be appended. Might be NULL */ 100617435752Sdrh ){ 100717435752Sdrh sqlite3 *db = pParse->db; 1008a76b5dfcSdrh if( pList==0 ){ 100917435752Sdrh pList = sqlite3DbMallocZero(db, sizeof(ExprList) ); 1010a76b5dfcSdrh if( pList==0 ){ 1011d5d56523Sdanielk1977 goto no_mem; 1012a76b5dfcSdrh } 10134efc4754Sdrh assert( pList->nAlloc==0 ); 1014a76b5dfcSdrh } 10154305d103Sdrh if( pList->nAlloc<=pList->nExpr ){ 1016d5d56523Sdanielk1977 struct ExprList_item *a; 1017d5d56523Sdanielk1977 int n = pList->nAlloc*2 + 4; 101826783a58Sdanielk1977 a = sqlite3DbRealloc(db, pList->a, n*sizeof(pList->a[0])); 1019d5d56523Sdanielk1977 if( a==0 ){ 1020d5d56523Sdanielk1977 goto no_mem; 1021a76b5dfcSdrh } 1022d5d56523Sdanielk1977 pList->a = a; 10236a1e071fSdrh pList->nAlloc = sqlite3DbMallocSize(db, a)/sizeof(a[0]); 1024a76b5dfcSdrh } 10254efc4754Sdrh assert( pList->a!=0 ); 1026b7916a78Sdrh if( 1 ){ 10274efc4754Sdrh struct ExprList_item *pItem = &pList->a[pList->nExpr++]; 10284efc4754Sdrh memset(pItem, 0, sizeof(*pItem)); 1029e94ddc9eSdanielk1977 pItem->pExpr = pExpr; 1030a76b5dfcSdrh } 1031a76b5dfcSdrh return pList; 1032d5d56523Sdanielk1977 1033d5d56523Sdanielk1977 no_mem: 1034d5d56523Sdanielk1977 /* Avoid leaking memory if malloc has failed. */ 1035633e6d57Sdrh sqlite3ExprDelete(db, pExpr); 1036633e6d57Sdrh sqlite3ExprListDelete(db, pList); 1037d5d56523Sdanielk1977 return 0; 1038a76b5dfcSdrh } 1039a76b5dfcSdrh 1040a76b5dfcSdrh /* 1041b7916a78Sdrh ** Set the ExprList.a[].zName element of the most recently added item 1042b7916a78Sdrh ** on the expression list. 1043b7916a78Sdrh ** 1044b7916a78Sdrh ** pList might be NULL following an OOM error. But pName should never be 1045b7916a78Sdrh ** NULL. If a memory allocation fails, the pParse->db->mallocFailed flag 1046b7916a78Sdrh ** is set. 1047b7916a78Sdrh */ 1048b7916a78Sdrh void sqlite3ExprListSetName( 1049b7916a78Sdrh Parse *pParse, /* Parsing context */ 1050b7916a78Sdrh ExprList *pList, /* List to which to add the span. */ 1051b7916a78Sdrh Token *pName, /* Name to be added */ 1052b7916a78Sdrh int dequote /* True to cause the name to be dequoted */ 1053b7916a78Sdrh ){ 1054b7916a78Sdrh assert( pList!=0 || pParse->db->mallocFailed!=0 ); 1055b7916a78Sdrh if( pList ){ 1056b7916a78Sdrh struct ExprList_item *pItem; 1057b7916a78Sdrh assert( pList->nExpr>0 ); 1058b7916a78Sdrh pItem = &pList->a[pList->nExpr-1]; 1059b7916a78Sdrh assert( pItem->zName==0 ); 1060b7916a78Sdrh pItem->zName = sqlite3DbStrNDup(pParse->db, pName->z, pName->n); 1061b7916a78Sdrh if( dequote && pItem->zName ) sqlite3Dequote(pItem->zName); 1062b7916a78Sdrh } 1063b7916a78Sdrh } 1064b7916a78Sdrh 1065b7916a78Sdrh /* 1066b7916a78Sdrh ** Set the ExprList.a[].zSpan element of the most recently added item 1067b7916a78Sdrh ** on the expression list. 1068b7916a78Sdrh ** 1069b7916a78Sdrh ** pList might be NULL following an OOM error. But pSpan should never be 1070b7916a78Sdrh ** NULL. If a memory allocation fails, the pParse->db->mallocFailed flag 1071b7916a78Sdrh ** is set. 1072b7916a78Sdrh */ 1073b7916a78Sdrh void sqlite3ExprListSetSpan( 1074b7916a78Sdrh Parse *pParse, /* Parsing context */ 1075b7916a78Sdrh ExprList *pList, /* List to which to add the span. */ 1076b7916a78Sdrh ExprSpan *pSpan /* The span to be added */ 1077b7916a78Sdrh ){ 1078b7916a78Sdrh sqlite3 *db = pParse->db; 1079b7916a78Sdrh assert( pList!=0 || db->mallocFailed!=0 ); 1080b7916a78Sdrh if( pList ){ 1081b7916a78Sdrh struct ExprList_item *pItem = &pList->a[pList->nExpr-1]; 1082b7916a78Sdrh assert( pList->nExpr>0 ); 1083b7916a78Sdrh assert( db->mallocFailed || pItem->pExpr==pSpan->pExpr ); 1084b7916a78Sdrh sqlite3DbFree(db, pItem->zSpan); 1085b7916a78Sdrh pItem->zSpan = sqlite3DbStrNDup(db, (char*)pSpan->zStart, 1086cf697396Sshane (int)(pSpan->zEnd - pSpan->zStart)); 1087b7916a78Sdrh } 1088b7916a78Sdrh } 1089b7916a78Sdrh 1090b7916a78Sdrh /* 10917a15a4beSdanielk1977 ** If the expression list pEList contains more than iLimit elements, 10927a15a4beSdanielk1977 ** leave an error message in pParse. 10937a15a4beSdanielk1977 */ 10947a15a4beSdanielk1977 void sqlite3ExprListCheckLength( 10957a15a4beSdanielk1977 Parse *pParse, 10967a15a4beSdanielk1977 ExprList *pEList, 10977a15a4beSdanielk1977 const char *zObject 10987a15a4beSdanielk1977 ){ 1099b1a6c3c1Sdrh int mx = pParse->db->aLimit[SQLITE_LIMIT_COLUMN]; 1100c5499befSdrh testcase( pEList && pEList->nExpr==mx ); 1101c5499befSdrh testcase( pEList && pEList->nExpr==mx+1 ); 1102b1a6c3c1Sdrh if( pEList && pEList->nExpr>mx ){ 11037a15a4beSdanielk1977 sqlite3ErrorMsg(pParse, "too many columns in %s", zObject); 11047a15a4beSdanielk1977 } 11057a15a4beSdanielk1977 } 11067a15a4beSdanielk1977 11077a15a4beSdanielk1977 /* 1108a76b5dfcSdrh ** Delete an entire expression list. 1109a76b5dfcSdrh */ 1110633e6d57Sdrh void sqlite3ExprListDelete(sqlite3 *db, ExprList *pList){ 1111a76b5dfcSdrh int i; 1112be5c89acSdrh struct ExprList_item *pItem; 1113a76b5dfcSdrh if( pList==0 ) return; 11141bdd9b57Sdrh assert( pList->a!=0 || (pList->nExpr==0 && pList->nAlloc==0) ); 11151bdd9b57Sdrh assert( pList->nExpr<=pList->nAlloc ); 1116be5c89acSdrh for(pItem=pList->a, i=0; i<pList->nExpr; i++, pItem++){ 1117633e6d57Sdrh sqlite3ExprDelete(db, pItem->pExpr); 1118633e6d57Sdrh sqlite3DbFree(db, pItem->zName); 1119b7916a78Sdrh sqlite3DbFree(db, pItem->zSpan); 1120a76b5dfcSdrh } 1121633e6d57Sdrh sqlite3DbFree(db, pList->a); 1122633e6d57Sdrh sqlite3DbFree(db, pList); 1123a76b5dfcSdrh } 1124a76b5dfcSdrh 1125a76b5dfcSdrh /* 11267d10d5a6Sdrh ** These routines are Walker callbacks. Walker.u.pi is a pointer 11277d10d5a6Sdrh ** to an integer. These routines are checking an expression to see 11287d10d5a6Sdrh ** if it is a constant. Set *Walker.u.pi to 0 if the expression is 11297d10d5a6Sdrh ** not constant. 113073b211abSdrh ** 11317d10d5a6Sdrh ** These callback routines are used to implement the following: 1132626a879aSdrh ** 11337d10d5a6Sdrh ** sqlite3ExprIsConstant() 11347d10d5a6Sdrh ** sqlite3ExprIsConstantNotJoin() 11357d10d5a6Sdrh ** sqlite3ExprIsConstantOrFunction() 113687abf5c0Sdrh ** 1137626a879aSdrh */ 11387d10d5a6Sdrh static int exprNodeIsConstant(Walker *pWalker, Expr *pExpr){ 1139626a879aSdrh 11407d10d5a6Sdrh /* If pWalker->u.i is 3 then any term of the expression that comes from 11410a168377Sdrh ** the ON or USING clauses of a join disqualifies the expression 11420a168377Sdrh ** from being considered constant. */ 11437d10d5a6Sdrh if( pWalker->u.i==3 && ExprHasAnyProperty(pExpr, EP_FromJoin) ){ 11447d10d5a6Sdrh pWalker->u.i = 0; 11457d10d5a6Sdrh return WRC_Abort; 11460a168377Sdrh } 11470a168377Sdrh 1148626a879aSdrh switch( pExpr->op ){ 1149eb55bd2fSdrh /* Consider functions to be constant if all their arguments are constant 11507d10d5a6Sdrh ** and pWalker->u.i==2 */ 1151eb55bd2fSdrh case TK_FUNCTION: 11527d10d5a6Sdrh if( pWalker->u.i==2 ) return 0; 1153eb55bd2fSdrh /* Fall through */ 1154626a879aSdrh case TK_ID: 1155626a879aSdrh case TK_COLUMN: 1156626a879aSdrh case TK_AGG_FUNCTION: 115713449892Sdrh case TK_AGG_COLUMN: 1158c5499befSdrh testcase( pExpr->op==TK_ID ); 1159c5499befSdrh testcase( pExpr->op==TK_COLUMN ); 1160c5499befSdrh testcase( pExpr->op==TK_AGG_FUNCTION ); 1161c5499befSdrh testcase( pExpr->op==TK_AGG_COLUMN ); 11627d10d5a6Sdrh pWalker->u.i = 0; 11637d10d5a6Sdrh return WRC_Abort; 1164626a879aSdrh default: 1165b74b1017Sdrh testcase( pExpr->op==TK_SELECT ); /* selectNodeIsConstant will disallow */ 1166b74b1017Sdrh testcase( pExpr->op==TK_EXISTS ); /* selectNodeIsConstant will disallow */ 11677d10d5a6Sdrh return WRC_Continue; 1168626a879aSdrh } 1169626a879aSdrh } 117062c14b34Sdanielk1977 static int selectNodeIsConstant(Walker *pWalker, Select *NotUsed){ 117162c14b34Sdanielk1977 UNUSED_PARAMETER(NotUsed); 11727d10d5a6Sdrh pWalker->u.i = 0; 11737d10d5a6Sdrh return WRC_Abort; 11747d10d5a6Sdrh } 11757d10d5a6Sdrh static int exprIsConst(Expr *p, int initFlag){ 11767d10d5a6Sdrh Walker w; 11777d10d5a6Sdrh w.u.i = initFlag; 11787d10d5a6Sdrh w.xExprCallback = exprNodeIsConstant; 11797d10d5a6Sdrh w.xSelectCallback = selectNodeIsConstant; 11807d10d5a6Sdrh sqlite3WalkExpr(&w, p); 11817d10d5a6Sdrh return w.u.i; 11827d10d5a6Sdrh } 1183626a879aSdrh 1184626a879aSdrh /* 1185fef5208cSdrh ** Walk an expression tree. Return 1 if the expression is constant 1186eb55bd2fSdrh ** and 0 if it involves variables or function calls. 11872398937bSdrh ** 11882398937bSdrh ** For the purposes of this function, a double-quoted string (ex: "abc") 11892398937bSdrh ** is considered a variable but a single-quoted string (ex: 'abc') is 11902398937bSdrh ** a constant. 1191fef5208cSdrh */ 11924adee20fSdanielk1977 int sqlite3ExprIsConstant(Expr *p){ 11937d10d5a6Sdrh return exprIsConst(p, 1); 1194fef5208cSdrh } 1195fef5208cSdrh 1196fef5208cSdrh /* 1197eb55bd2fSdrh ** Walk an expression tree. Return 1 if the expression is constant 11980a168377Sdrh ** that does no originate from the ON or USING clauses of a join. 11990a168377Sdrh ** Return 0 if it involves variables or function calls or terms from 12000a168377Sdrh ** an ON or USING clause. 12010a168377Sdrh */ 12020a168377Sdrh int sqlite3ExprIsConstantNotJoin(Expr *p){ 12037d10d5a6Sdrh return exprIsConst(p, 3); 12040a168377Sdrh } 12050a168377Sdrh 12060a168377Sdrh /* 12070a168377Sdrh ** Walk an expression tree. Return 1 if the expression is constant 1208eb55bd2fSdrh ** or a function call with constant arguments. Return and 0 if there 1209eb55bd2fSdrh ** are any variables. 1210eb55bd2fSdrh ** 1211eb55bd2fSdrh ** For the purposes of this function, a double-quoted string (ex: "abc") 1212eb55bd2fSdrh ** is considered a variable but a single-quoted string (ex: 'abc') is 1213eb55bd2fSdrh ** a constant. 1214eb55bd2fSdrh */ 1215eb55bd2fSdrh int sqlite3ExprIsConstantOrFunction(Expr *p){ 12167d10d5a6Sdrh return exprIsConst(p, 2); 1217eb55bd2fSdrh } 1218eb55bd2fSdrh 1219eb55bd2fSdrh /* 122073b211abSdrh ** If the expression p codes a constant integer that is small enough 1221202b2df7Sdrh ** to fit in a 32-bit integer, return 1 and put the value of the integer 1222202b2df7Sdrh ** in *pValue. If the expression is not an integer or if it is too big 1223202b2df7Sdrh ** to fit in a signed 32-bit integer, return 0 and leave *pValue unchanged. 1224e4de1febSdrh */ 12254adee20fSdanielk1977 int sqlite3ExprIsInteger(Expr *p, int *pValue){ 122692b01d53Sdrh int rc = 0; 122792b01d53Sdrh if( p->flags & EP_IntValue ){ 122833e619fcSdrh *pValue = p->u.iValue; 1229e4de1febSdrh return 1; 1230e4de1febSdrh } 123192b01d53Sdrh switch( p->op ){ 123292b01d53Sdrh case TK_INTEGER: { 123333e619fcSdrh rc = sqlite3GetInt32(p->u.zToken, pValue); 123433e619fcSdrh assert( rc==0 ); 1235202b2df7Sdrh break; 1236202b2df7Sdrh } 12374b59ab5eSdrh case TK_UPLUS: { 123892b01d53Sdrh rc = sqlite3ExprIsInteger(p->pLeft, pValue); 1239f6e369a1Sdrh break; 12404b59ab5eSdrh } 1241e4de1febSdrh case TK_UMINUS: { 1242e4de1febSdrh int v; 12434adee20fSdanielk1977 if( sqlite3ExprIsInteger(p->pLeft, &v) ){ 1244e4de1febSdrh *pValue = -v; 124592b01d53Sdrh rc = 1; 1246e4de1febSdrh } 1247e4de1febSdrh break; 1248e4de1febSdrh } 1249e4de1febSdrh default: break; 1250e4de1febSdrh } 125192b01d53Sdrh if( rc ){ 125233e619fcSdrh assert( ExprHasAnyProperty(p, EP_Reduced|EP_TokenOnly) 125333e619fcSdrh || (p->flags2 & EP2_MallocedToken)==0 ); 125492b01d53Sdrh p->op = TK_INTEGER; 125592b01d53Sdrh p->flags |= EP_IntValue; 125633e619fcSdrh p->u.iValue = *pValue; 125792b01d53Sdrh } 125892b01d53Sdrh return rc; 1259e4de1febSdrh } 1260e4de1febSdrh 1261e4de1febSdrh /* 1262*039fc32eSdrh ** Return FALSE if there is no chance that the expression can be NULL. 1263*039fc32eSdrh ** 1264*039fc32eSdrh ** If the expression might be NULL or if the expression is too complex 1265*039fc32eSdrh ** to tell return TRUE. 1266*039fc32eSdrh ** 1267*039fc32eSdrh ** This routine is used as an optimization, to skip OP_IsNull opcodes 1268*039fc32eSdrh ** when we know that a value cannot be NULL. Hence, a false positive 1269*039fc32eSdrh ** (returning TRUE when in fact the expression can never be NULL) might 1270*039fc32eSdrh ** be a small performance hit but is otherwise harmless. On the other 1271*039fc32eSdrh ** hand, a false negative (returning FALSE when the result could be NULL) 1272*039fc32eSdrh ** will likely result in an incorrect answer. So when in doubt, return 1273*039fc32eSdrh ** TRUE. 1274*039fc32eSdrh */ 1275*039fc32eSdrh int sqlite3ExprCanBeNull(const Expr *p){ 1276*039fc32eSdrh u8 op; 1277*039fc32eSdrh while( p->op==TK_UPLUS || p->op==TK_MINUS ){ p = p->pLeft; } 1278*039fc32eSdrh op = p->op; 1279*039fc32eSdrh if( op==TK_REGISTER ) op = p->op2; 1280*039fc32eSdrh switch( op ){ 1281*039fc32eSdrh case TK_INTEGER: 1282*039fc32eSdrh case TK_STRING: 1283*039fc32eSdrh case TK_FLOAT: 1284*039fc32eSdrh case TK_BLOB: 1285*039fc32eSdrh return 0; 1286*039fc32eSdrh default: 1287*039fc32eSdrh return 1; 1288*039fc32eSdrh } 1289*039fc32eSdrh } 1290*039fc32eSdrh 1291*039fc32eSdrh /* 1292*039fc32eSdrh ** Return TRUE if the given expression is a constant which would be 1293*039fc32eSdrh ** unchanged by OP_Affinity with the affinity given in the second 1294*039fc32eSdrh ** argument. 1295*039fc32eSdrh ** 1296*039fc32eSdrh ** This routine is used to determine if the OP_Affinity operation 1297*039fc32eSdrh ** can be omitted. When in doubt return FALSE. A false negative 1298*039fc32eSdrh ** is harmless. A false positive, however, can result in the wrong 1299*039fc32eSdrh ** answer. 1300*039fc32eSdrh */ 1301*039fc32eSdrh int sqlite3ExprNeedsNoAffinityChange(const Expr *p, char aff){ 1302*039fc32eSdrh u8 op; 1303*039fc32eSdrh if( aff==SQLITE_AFF_NONE ) return 1; 1304*039fc32eSdrh while( p->op==TK_UPLUS || p->op==TK_MINUS ){ p = p->pLeft; } 1305*039fc32eSdrh op = p->op; 1306*039fc32eSdrh if( op==TK_REGISTER ) op = p->op2; 1307*039fc32eSdrh switch( op ){ 1308*039fc32eSdrh case TK_INTEGER: { 1309*039fc32eSdrh return aff==SQLITE_AFF_INTEGER || aff==SQLITE_AFF_NUMERIC; 1310*039fc32eSdrh } 1311*039fc32eSdrh case TK_FLOAT: { 1312*039fc32eSdrh return aff==SQLITE_AFF_REAL || aff==SQLITE_AFF_NUMERIC; 1313*039fc32eSdrh } 1314*039fc32eSdrh case TK_STRING: { 1315*039fc32eSdrh return aff==SQLITE_AFF_TEXT; 1316*039fc32eSdrh } 1317*039fc32eSdrh case TK_BLOB: { 1318*039fc32eSdrh return 1; 1319*039fc32eSdrh } 1320*039fc32eSdrh default: { 1321*039fc32eSdrh return 0; 1322*039fc32eSdrh } 1323*039fc32eSdrh } 1324*039fc32eSdrh } 1325*039fc32eSdrh 1326*039fc32eSdrh /* 1327c4a3c779Sdrh ** Return TRUE if the given string is a row-id column name. 1328c4a3c779Sdrh */ 13294adee20fSdanielk1977 int sqlite3IsRowid(const char *z){ 13304adee20fSdanielk1977 if( sqlite3StrICmp(z, "_ROWID_")==0 ) return 1; 13314adee20fSdanielk1977 if( sqlite3StrICmp(z, "ROWID")==0 ) return 1; 13324adee20fSdanielk1977 if( sqlite3StrICmp(z, "OID")==0 ) return 1; 1333c4a3c779Sdrh return 0; 1334c4a3c779Sdrh } 1335c4a3c779Sdrh 13369a96b668Sdanielk1977 /* 1337b74b1017Sdrh ** Return true if we are able to the IN operator optimization on a 1338b74b1017Sdrh ** query of the form 1339b287f4b6Sdrh ** 1340b74b1017Sdrh ** x IN (SELECT ...) 1341b287f4b6Sdrh ** 1342b74b1017Sdrh ** Where the SELECT... clause is as specified by the parameter to this 1343b74b1017Sdrh ** routine. 1344b74b1017Sdrh ** 1345b74b1017Sdrh ** The Select object passed in has already been preprocessed and no 1346b74b1017Sdrh ** errors have been found. 1347b287f4b6Sdrh */ 1348b287f4b6Sdrh #ifndef SQLITE_OMIT_SUBQUERY 1349b287f4b6Sdrh static int isCandidateForInOpt(Select *p){ 1350b287f4b6Sdrh SrcList *pSrc; 1351b287f4b6Sdrh ExprList *pEList; 1352b287f4b6Sdrh Table *pTab; 1353b287f4b6Sdrh if( p==0 ) return 0; /* right-hand side of IN is SELECT */ 1354b287f4b6Sdrh if( p->pPrior ) return 0; /* Not a compound SELECT */ 13557d10d5a6Sdrh if( p->selFlags & (SF_Distinct|SF_Aggregate) ){ 1356b74b1017Sdrh testcase( (p->selFlags & (SF_Distinct|SF_Aggregate))==SF_Distinct ); 1357b74b1017Sdrh testcase( (p->selFlags & (SF_Distinct|SF_Aggregate))==SF_Aggregate ); 13587d10d5a6Sdrh return 0; /* No DISTINCT keyword and no aggregate functions */ 13597d10d5a6Sdrh } 1360b74b1017Sdrh assert( p->pGroupBy==0 ); /* Has no GROUP BY clause */ 1361b287f4b6Sdrh if( p->pLimit ) return 0; /* Has no LIMIT clause */ 1362b74b1017Sdrh assert( p->pOffset==0 ); /* No LIMIT means no OFFSET */ 1363b287f4b6Sdrh if( p->pWhere ) return 0; /* Has no WHERE clause */ 1364b287f4b6Sdrh pSrc = p->pSrc; 1365d1fa7bcaSdrh assert( pSrc!=0 ); 1366d1fa7bcaSdrh if( pSrc->nSrc!=1 ) return 0; /* Single term in FROM clause */ 1367b74b1017Sdrh if( pSrc->a[0].pSelect ) return 0; /* FROM is not a subquery or view */ 1368b287f4b6Sdrh pTab = pSrc->a[0].pTab; 1369b74b1017Sdrh if( NEVER(pTab==0) ) return 0; 1370b74b1017Sdrh assert( pTab->pSelect==0 ); /* FROM clause is not a view */ 1371b287f4b6Sdrh if( IsVirtual(pTab) ) return 0; /* FROM clause not a virtual table */ 1372b287f4b6Sdrh pEList = p->pEList; 1373b287f4b6Sdrh if( pEList->nExpr!=1 ) return 0; /* One column in the result set */ 1374b287f4b6Sdrh if( pEList->a[0].pExpr->op!=TK_COLUMN ) return 0; /* Result is a column */ 1375b287f4b6Sdrh return 1; 1376b287f4b6Sdrh } 1377b287f4b6Sdrh #endif /* SQLITE_OMIT_SUBQUERY */ 1378b287f4b6Sdrh 1379b287f4b6Sdrh /* 13809a96b668Sdanielk1977 ** This function is used by the implementation of the IN (...) operator. 13819a96b668Sdanielk1977 ** It's job is to find or create a b-tree structure that may be used 13829a96b668Sdanielk1977 ** either to test for membership of the (...) set or to iterate through 138385b623f2Sdrh ** its members, skipping duplicates. 13849a96b668Sdanielk1977 ** 1385b74b1017Sdrh ** The index of the cursor opened on the b-tree (database table, database index 13869a96b668Sdanielk1977 ** or ephermal table) is stored in pX->iTable before this function returns. 1387b74b1017Sdrh ** The returned value of this function indicates the b-tree type, as follows: 13889a96b668Sdanielk1977 ** 13899a96b668Sdanielk1977 ** IN_INDEX_ROWID - The cursor was opened on a database table. 13902d401ab8Sdrh ** IN_INDEX_INDEX - The cursor was opened on a database index. 13919a96b668Sdanielk1977 ** IN_INDEX_EPH - The cursor was opened on a specially created and 13929a96b668Sdanielk1977 ** populated epheremal table. 13939a96b668Sdanielk1977 ** 1394b74b1017Sdrh ** An existing b-tree may only be used if the SELECT is of the simple 13959a96b668Sdanielk1977 ** form: 13969a96b668Sdanielk1977 ** 13979a96b668Sdanielk1977 ** SELECT <column> FROM <table> 13989a96b668Sdanielk1977 ** 1399b74b1017Sdrh ** If the prNotFound parameter is 0, then the b-tree will be used to iterate 14009a96b668Sdanielk1977 ** through the set members, skipping any duplicates. In this case an 14019a96b668Sdanielk1977 ** epheremal table must be used unless the selected <column> is guaranteed 14029a96b668Sdanielk1977 ** to be unique - either because it is an INTEGER PRIMARY KEY or it 1403b74b1017Sdrh ** has a UNIQUE constraint or UNIQUE index. 14040cdc022eSdanielk1977 ** 1405b74b1017Sdrh ** If the prNotFound parameter is not 0, then the b-tree will be used 14060cdc022eSdanielk1977 ** for fast set membership tests. In this case an epheremal table must 14070cdc022eSdanielk1977 ** be used unless <column> is an INTEGER PRIMARY KEY or an index can 14080cdc022eSdanielk1977 ** be found with <column> as its left-most column. 14090cdc022eSdanielk1977 ** 1410b74b1017Sdrh ** When the b-tree is being used for membership tests, the calling function 14110cdc022eSdanielk1977 ** needs to know whether or not the structure contains an SQL NULL 14120cdc022eSdanielk1977 ** value in order to correctly evaluate expressions like "X IN (Y, Z)". 1413e3365e6cSdrh ** If there is any chance that the (...) might contain a NULL value at 14140cdc022eSdanielk1977 ** runtime, then a register is allocated and the register number written 1415e3365e6cSdrh ** to *prNotFound. If there is no chance that the (...) contains a 14160cdc022eSdanielk1977 ** NULL value, then *prNotFound is left unchanged. 14170cdc022eSdanielk1977 ** 14180cdc022eSdanielk1977 ** If a register is allocated and its location stored in *prNotFound, then 1419e3365e6cSdrh ** its initial value is NULL. If the (...) does not remain constant 1420e3365e6cSdrh ** for the duration of the query (i.e. the SELECT within the (...) 1421b74b1017Sdrh ** is a correlated subquery) then the value of the allocated register is 1422e3365e6cSdrh ** reset to NULL each time the subquery is rerun. This allows the 1423b74b1017Sdrh ** caller to use vdbe code equivalent to the following: 14240cdc022eSdanielk1977 ** 14250cdc022eSdanielk1977 ** if( register==NULL ){ 14260cdc022eSdanielk1977 ** has_null = <test if data structure contains null> 14270cdc022eSdanielk1977 ** register = 1 14280cdc022eSdanielk1977 ** } 14290cdc022eSdanielk1977 ** 14300cdc022eSdanielk1977 ** in order to avoid running the <test if data structure contains null> 14310cdc022eSdanielk1977 ** test more often than is necessary. 14329a96b668Sdanielk1977 */ 1433284f4acaSdanielk1977 #ifndef SQLITE_OMIT_SUBQUERY 14340cdc022eSdanielk1977 int sqlite3FindInIndex(Parse *pParse, Expr *pX, int *prNotFound){ 1435b74b1017Sdrh Select *p; /* SELECT to the right of IN operator */ 1436b74b1017Sdrh int eType = 0; /* Type of RHS table. IN_INDEX_* */ 1437b74b1017Sdrh int iTab = pParse->nTab++; /* Cursor of the RHS table */ 1438b74b1017Sdrh int mustBeUnique = (prNotFound==0); /* True if RHS must be unique */ 14399a96b668Sdanielk1977 14401450bc6eSdrh assert( pX->op==TK_IN ); 14411450bc6eSdrh 1442b74b1017Sdrh /* Check to see if an existing table or index can be used to 1443b74b1017Sdrh ** satisfy the query. This is preferable to generating a new 1444b74b1017Sdrh ** ephemeral table. 14459a96b668Sdanielk1977 */ 14466ab3a2ecSdanielk1977 p = (ExprHasProperty(pX, EP_xIsSelect) ? pX->x.pSelect : 0); 1447fd773cf9Sdrh if( ALWAYS(pParse->nErr==0) && isCandidateForInOpt(p) ){ 1448e1fb65a0Sdanielk1977 sqlite3 *db = pParse->db; /* Database connection */ 1449e1fb65a0Sdanielk1977 Expr *pExpr = p->pEList->a[0].pExpr; /* Expression <column> */ 1450e1fb65a0Sdanielk1977 int iCol = pExpr->iColumn; /* Index of column <column> */ 1451e1fb65a0Sdanielk1977 Vdbe *v = sqlite3GetVdbe(pParse); /* Virtual machine being coded */ 1452e1fb65a0Sdanielk1977 Table *pTab = p->pSrc->a[0].pTab; /* Table <table>. */ 1453e1fb65a0Sdanielk1977 int iDb; /* Database idx for pTab */ 1454e1fb65a0Sdanielk1977 1455e1fb65a0Sdanielk1977 /* Code an OP_VerifyCookie and OP_TableLock for <table>. */ 1456e1fb65a0Sdanielk1977 iDb = sqlite3SchemaToIndex(db, pTab->pSchema); 1457e1fb65a0Sdanielk1977 sqlite3CodeVerifySchema(pParse, iDb); 1458e1fb65a0Sdanielk1977 sqlite3TableLock(pParse, iDb, pTab->tnum, 0, pTab->zName); 14599a96b668Sdanielk1977 14609a96b668Sdanielk1977 /* This function is only called from two places. In both cases the vdbe 14619a96b668Sdanielk1977 ** has already been allocated. So assume sqlite3GetVdbe() is always 14629a96b668Sdanielk1977 ** successful here. 14639a96b668Sdanielk1977 */ 14649a96b668Sdanielk1977 assert(v); 14659a96b668Sdanielk1977 if( iCol<0 ){ 14660a07c107Sdrh int iMem = ++pParse->nMem; 14679a96b668Sdanielk1977 int iAddr; 14689a96b668Sdanielk1977 1469892d3179Sdrh iAddr = sqlite3VdbeAddOp1(v, OP_If, iMem); 14704c583128Sdrh sqlite3VdbeAddOp2(v, OP_Integer, 1, iMem); 14719a96b668Sdanielk1977 14729a96b668Sdanielk1977 sqlite3OpenTable(pParse, iTab, iDb, pTab, OP_OpenRead); 14739a96b668Sdanielk1977 eType = IN_INDEX_ROWID; 14749a96b668Sdanielk1977 14759a96b668Sdanielk1977 sqlite3VdbeJumpHere(v, iAddr); 14769a96b668Sdanielk1977 }else{ 1477e1fb65a0Sdanielk1977 Index *pIdx; /* Iterator variable */ 1478e1fb65a0Sdanielk1977 14799a96b668Sdanielk1977 /* The collation sequence used by the comparison. If an index is to 14809a96b668Sdanielk1977 ** be used in place of a temp-table, it must be ordered according 1481e1fb65a0Sdanielk1977 ** to this collation sequence. */ 14829a96b668Sdanielk1977 CollSeq *pReq = sqlite3BinaryCompareCollSeq(pParse, pX->pLeft, pExpr); 14839a96b668Sdanielk1977 14849a96b668Sdanielk1977 /* Check that the affinity that will be used to perform the 14859a96b668Sdanielk1977 ** comparison is the same as the affinity of the column. If 14869a96b668Sdanielk1977 ** it is not, it is not possible to use any index. 14879a96b668Sdanielk1977 */ 14889a96b668Sdanielk1977 char aff = comparisonAffinity(pX); 14899a96b668Sdanielk1977 int affinity_ok = (pTab->aCol[iCol].affinity==aff||aff==SQLITE_AFF_NONE); 14909a96b668Sdanielk1977 14919a96b668Sdanielk1977 for(pIdx=pTab->pIndex; pIdx && eType==0 && affinity_ok; pIdx=pIdx->pNext){ 14929a96b668Sdanielk1977 if( (pIdx->aiColumn[0]==iCol) 1493b74b1017Sdrh && sqlite3FindCollSeq(db, ENC(db), pIdx->azColl[0], 0)==pReq 14949a96b668Sdanielk1977 && (!mustBeUnique || (pIdx->nColumn==1 && pIdx->onError!=OE_None)) 14959a96b668Sdanielk1977 ){ 14960a07c107Sdrh int iMem = ++pParse->nMem; 14979a96b668Sdanielk1977 int iAddr; 14989a96b668Sdanielk1977 char *pKey; 14999a96b668Sdanielk1977 15009a96b668Sdanielk1977 pKey = (char *)sqlite3IndexKeyinfo(pParse, pIdx); 1501892d3179Sdrh iAddr = sqlite3VdbeAddOp1(v, OP_If, iMem); 15024c583128Sdrh sqlite3VdbeAddOp2(v, OP_Integer, 1, iMem); 15039a96b668Sdanielk1977 1504207872a4Sdanielk1977 sqlite3VdbeAddOp4(v, OP_OpenRead, iTab, pIdx->tnum, iDb, 150566a5167bSdrh pKey,P4_KEYINFO_HANDOFF); 1506207872a4Sdanielk1977 VdbeComment((v, "%s", pIdx->zName)); 15079a96b668Sdanielk1977 eType = IN_INDEX_INDEX; 15089a96b668Sdanielk1977 15099a96b668Sdanielk1977 sqlite3VdbeJumpHere(v, iAddr); 15100cdc022eSdanielk1977 if( prNotFound && !pTab->aCol[iCol].notNull ){ 15110cdc022eSdanielk1977 *prNotFound = ++pParse->nMem; 15120cdc022eSdanielk1977 } 15139a96b668Sdanielk1977 } 15149a96b668Sdanielk1977 } 15159a96b668Sdanielk1977 } 15169a96b668Sdanielk1977 } 15179a96b668Sdanielk1977 15189a96b668Sdanielk1977 if( eType==0 ){ 15191450bc6eSdrh /* Could not found an existing table or index to use as the RHS b-tree. 1520b74b1017Sdrh ** We will have to generate an ephemeral table to do the job. 1521b74b1017Sdrh */ 15220cdc022eSdanielk1977 int rMayHaveNull = 0; 152341a05b7bSdanielk1977 eType = IN_INDEX_EPH; 15240cdc022eSdanielk1977 if( prNotFound ){ 15250cdc022eSdanielk1977 *prNotFound = rMayHaveNull = ++pParse->nMem; 15266ab3a2ecSdanielk1977 }else if( pX->pLeft->iColumn<0 && !ExprHasAnyProperty(pX, EP_xIsSelect) ){ 152741a05b7bSdanielk1977 eType = IN_INDEX_ROWID; 15280cdc022eSdanielk1977 } 152941a05b7bSdanielk1977 sqlite3CodeSubselect(pParse, pX, rMayHaveNull, eType==IN_INDEX_ROWID); 15309a96b668Sdanielk1977 }else{ 15319a96b668Sdanielk1977 pX->iTable = iTab; 15329a96b668Sdanielk1977 } 15339a96b668Sdanielk1977 return eType; 15349a96b668Sdanielk1977 } 1535284f4acaSdanielk1977 #endif 1536626a879aSdrh 1537626a879aSdrh /* 15389cbe6352Sdrh ** Generate code for scalar subqueries used as an expression 15399cbe6352Sdrh ** and IN operators. Examples: 1540626a879aSdrh ** 15419cbe6352Sdrh ** (SELECT a FROM b) -- subquery 15429cbe6352Sdrh ** EXISTS (SELECT a FROM b) -- EXISTS subquery 15439cbe6352Sdrh ** x IN (4,5,11) -- IN operator with list on right-hand side 15449cbe6352Sdrh ** x IN (SELECT a FROM b) -- IN operator with subquery on the right 1545fef5208cSdrh ** 15469cbe6352Sdrh ** The pExpr parameter describes the expression that contains the IN 15479cbe6352Sdrh ** operator or subquery. 154841a05b7bSdanielk1977 ** 154941a05b7bSdanielk1977 ** If parameter isRowid is non-zero, then expression pExpr is guaranteed 155041a05b7bSdanielk1977 ** to be of the form "<rowid> IN (?, ?, ?)", where <rowid> is a reference 155141a05b7bSdanielk1977 ** to some integer key column of a table B-Tree. In this case, use an 155241a05b7bSdanielk1977 ** intkey B-Tree to store the set of IN(...) values instead of the usual 155341a05b7bSdanielk1977 ** (slower) variable length keys B-Tree. 1554fd773cf9Sdrh ** 1555fd773cf9Sdrh ** If rMayHaveNull is non-zero, that means that the operation is an IN 1556fd773cf9Sdrh ** (not a SELECT or EXISTS) and that the RHS might contains NULLs. 1557fd773cf9Sdrh ** Furthermore, the IN is in a WHERE clause and that we really want 1558fd773cf9Sdrh ** to iterate over the RHS of the IN operator in order to quickly locate 1559fd773cf9Sdrh ** all corresponding LHS elements. All this routine does is initialize 1560fd773cf9Sdrh ** the register given by rMayHaveNull to NULL. Calling routines will take 1561fd773cf9Sdrh ** care of changing this register value to non-NULL if the RHS is NULL-free. 1562fd773cf9Sdrh ** 1563fd773cf9Sdrh ** If rMayHaveNull is zero, that means that the subquery is being used 1564fd773cf9Sdrh ** for membership testing only. There is no need to initialize any 1565fd773cf9Sdrh ** registers to indicate the presense or absence of NULLs on the RHS. 15661450bc6eSdrh ** 15671450bc6eSdrh ** For a SELECT or EXISTS operator, return the register that holds the 15681450bc6eSdrh ** result. For IN operators or if an error occurs, the return value is 0. 1569cce7d176Sdrh */ 157051522cd3Sdrh #ifndef SQLITE_OMIT_SUBQUERY 15711450bc6eSdrh int sqlite3CodeSubselect( 1572fd773cf9Sdrh Parse *pParse, /* Parsing context */ 1573fd773cf9Sdrh Expr *pExpr, /* The IN, SELECT, or EXISTS operator */ 1574fd773cf9Sdrh int rMayHaveNull, /* Register that records whether NULLs exist in RHS */ 1575fd773cf9Sdrh int isRowid /* If true, LHS of IN operator is a rowid */ 157641a05b7bSdanielk1977 ){ 157757dbd7b3Sdrh int testAddr = 0; /* One-time test address */ 15781450bc6eSdrh int rReg = 0; /* Register storing resulting */ 1579b3bce662Sdanielk1977 Vdbe *v = sqlite3GetVdbe(pParse); 15801450bc6eSdrh if( NEVER(v==0) ) return 0; 1581ceea3321Sdrh sqlite3ExprCachePush(pParse); 1582fc976065Sdanielk1977 158357dbd7b3Sdrh /* This code must be run in its entirety every time it is encountered 158457dbd7b3Sdrh ** if any of the following is true: 158557dbd7b3Sdrh ** 158657dbd7b3Sdrh ** * The right-hand side is a correlated subquery 158757dbd7b3Sdrh ** * The right-hand side is an expression list containing variables 158857dbd7b3Sdrh ** * We are inside a trigger 158957dbd7b3Sdrh ** 159057dbd7b3Sdrh ** If all of the above are false, then we can run this code just once 159157dbd7b3Sdrh ** save the results, and reuse the same result on subsequent invocations. 1592b3bce662Sdanielk1977 */ 1593165921a7Sdan if( !ExprHasAnyProperty(pExpr, EP_VarSelect) && !pParse->pTriggerTab ){ 15940a07c107Sdrh int mem = ++pParse->nMem; 1595892d3179Sdrh sqlite3VdbeAddOp1(v, OP_If, mem); 1596892d3179Sdrh testAddr = sqlite3VdbeAddOp2(v, OP_Integer, 1, mem); 159717435752Sdrh assert( testAddr>0 || pParse->db->mallocFailed ); 1598b3bce662Sdanielk1977 } 1599b3bce662Sdanielk1977 1600cce7d176Sdrh switch( pExpr->op ){ 1601fef5208cSdrh case TK_IN: { 1602e014a838Sdanielk1977 char affinity; 1603d3d39e93Sdrh KeyInfo keyInfo; 1604b9bb7c18Sdrh int addr; /* Address of OP_OpenEphemeral instruction */ 160541a05b7bSdanielk1977 Expr *pLeft = pExpr->pLeft; 1606d3d39e93Sdrh 16070cdc022eSdanielk1977 if( rMayHaveNull ){ 16080cdc022eSdanielk1977 sqlite3VdbeAddOp2(v, OP_Null, 0, rMayHaveNull); 16090cdc022eSdanielk1977 } 16100cdc022eSdanielk1977 161141a05b7bSdanielk1977 affinity = sqlite3ExprAffinity(pLeft); 1612e014a838Sdanielk1977 1613e014a838Sdanielk1977 /* Whether this is an 'x IN(SELECT...)' or an 'x IN(<exprlist>)' 16148cff69dfSdrh ** expression it is handled the same way. An ephemeral table is 1615e014a838Sdanielk1977 ** filled with single-field index keys representing the results 1616e014a838Sdanielk1977 ** from the SELECT or the <exprlist>. 1617fef5208cSdrh ** 1618e014a838Sdanielk1977 ** If the 'x' expression is a column value, or the SELECT... 1619e014a838Sdanielk1977 ** statement returns a column value, then the affinity of that 1620e014a838Sdanielk1977 ** column is used to build the index keys. If both 'x' and the 1621e014a838Sdanielk1977 ** SELECT... statement are columns, then numeric affinity is used 1622e014a838Sdanielk1977 ** if either column has NUMERIC or INTEGER affinity. If neither 1623e014a838Sdanielk1977 ** 'x' nor the SELECT... statement are columns, then numeric affinity 1624e014a838Sdanielk1977 ** is used. 1625fef5208cSdrh */ 1626832508b7Sdrh pExpr->iTable = pParse->nTab++; 162741a05b7bSdanielk1977 addr = sqlite3VdbeAddOp2(v, OP_OpenEphemeral, pExpr->iTable, !isRowid); 1628d3d39e93Sdrh memset(&keyInfo, 0, sizeof(keyInfo)); 1629d3d39e93Sdrh keyInfo.nField = 1; 1630e014a838Sdanielk1977 16316ab3a2ecSdanielk1977 if( ExprHasProperty(pExpr, EP_xIsSelect) ){ 1632e014a838Sdanielk1977 /* Case 1: expr IN (SELECT ...) 1633e014a838Sdanielk1977 ** 1634e014a838Sdanielk1977 ** Generate code to write the results of the select into the temporary 1635e014a838Sdanielk1977 ** table allocated and opened above. 1636e014a838Sdanielk1977 */ 16371013c932Sdrh SelectDest dest; 1638be5c89acSdrh ExprList *pEList; 16391013c932Sdrh 164041a05b7bSdanielk1977 assert( !isRowid ); 16411013c932Sdrh sqlite3SelectDestInit(&dest, SRT_Set, pExpr->iTable); 16421bd10f8aSdrh dest.affinity = (u8)affinity; 1643e014a838Sdanielk1977 assert( (pExpr->iTable&0x0000FFFF)==pExpr->iTable ); 16446ab3a2ecSdanielk1977 if( sqlite3Select(pParse, pExpr->x.pSelect, &dest) ){ 16451450bc6eSdrh return 0; 164694ccde58Sdrh } 16476ab3a2ecSdanielk1977 pEList = pExpr->x.pSelect->pEList; 1648fd773cf9Sdrh if( ALWAYS(pEList!=0 && pEList->nExpr>0) ){ 1649bcbb04e5Sdanielk1977 keyInfo.aColl[0] = sqlite3BinaryCompareCollSeq(pParse, pExpr->pLeft, 1650be5c89acSdrh pEList->a[0].pExpr); 16510202b29eSdanielk1977 } 1652fd773cf9Sdrh }else if( pExpr->x.pList!=0 ){ 1653fef5208cSdrh /* Case 2: expr IN (exprlist) 1654fef5208cSdrh ** 1655e014a838Sdanielk1977 ** For each expression, build an index key from the evaluation and 1656e014a838Sdanielk1977 ** store it in the temporary table. If <expr> is a column, then use 1657e014a838Sdanielk1977 ** that columns affinity when building index keys. If <expr> is not 1658e014a838Sdanielk1977 ** a column, use numeric affinity. 1659fef5208cSdrh */ 1660e014a838Sdanielk1977 int i; 16616ab3a2ecSdanielk1977 ExprList *pList = pExpr->x.pList; 166257dbd7b3Sdrh struct ExprList_item *pItem; 1663ecc31805Sdrh int r1, r2, r3; 166457dbd7b3Sdrh 1665e014a838Sdanielk1977 if( !affinity ){ 16668159a35fSdrh affinity = SQLITE_AFF_NONE; 1667e014a838Sdanielk1977 } 16687d10d5a6Sdrh keyInfo.aColl[0] = sqlite3ExprCollSeq(pParse, pExpr->pLeft); 1669e014a838Sdanielk1977 1670e014a838Sdanielk1977 /* Loop through each expression in <exprlist>. */ 16712d401ab8Sdrh r1 = sqlite3GetTempReg(pParse); 16722d401ab8Sdrh r2 = sqlite3GetTempReg(pParse); 16734e7f36a2Sdanielk1977 sqlite3VdbeAddOp2(v, OP_Null, 0, r2); 167457dbd7b3Sdrh for(i=pList->nExpr, pItem=pList->a; i>0; i--, pItem++){ 167557dbd7b3Sdrh Expr *pE2 = pItem->pExpr; 1676e05c929bSdrh int iValToIns; 1677e014a838Sdanielk1977 167857dbd7b3Sdrh /* If the expression is not constant then we will need to 167957dbd7b3Sdrh ** disable the test that was generated above that makes sure 168057dbd7b3Sdrh ** this code only executes once. Because for a non-constant 168157dbd7b3Sdrh ** expression we need to rerun this code each time. 168257dbd7b3Sdrh */ 1683892d3179Sdrh if( testAddr && !sqlite3ExprIsConstant(pE2) ){ 1684892d3179Sdrh sqlite3VdbeChangeToNoop(v, testAddr-1, 2); 168557dbd7b3Sdrh testAddr = 0; 16864794b980Sdrh } 1687e014a838Sdanielk1977 1688e014a838Sdanielk1977 /* Evaluate the expression and insert it into the temp table */ 1689e05c929bSdrh if( isRowid && sqlite3ExprIsInteger(pE2, &iValToIns) ){ 1690e05c929bSdrh sqlite3VdbeAddOp3(v, OP_InsertInt, pExpr->iTable, r2, iValToIns); 1691e05c929bSdrh }else{ 1692ecc31805Sdrh r3 = sqlite3ExprCodeTarget(pParse, pE2, r1); 169341a05b7bSdanielk1977 if( isRowid ){ 1694e05c929bSdrh sqlite3VdbeAddOp2(v, OP_MustBeInt, r3, 1695e05c929bSdrh sqlite3VdbeCurrentAddr(v)+2); 169641a05b7bSdanielk1977 sqlite3VdbeAddOp3(v, OP_Insert, pExpr->iTable, r2, r3); 169741a05b7bSdanielk1977 }else{ 1698ecc31805Sdrh sqlite3VdbeAddOp4(v, OP_MakeRecord, r3, 1, r2, &affinity, 1); 16993c31fc23Sdrh sqlite3ExprCacheAffinityChange(pParse, r3, 1); 17002d401ab8Sdrh sqlite3VdbeAddOp2(v, OP_IdxInsert, pExpr->iTable, r2); 1701fef5208cSdrh } 170241a05b7bSdanielk1977 } 1703e05c929bSdrh } 17042d401ab8Sdrh sqlite3ReleaseTempReg(pParse, r1); 17052d401ab8Sdrh sqlite3ReleaseTempReg(pParse, r2); 1706fef5208cSdrh } 170741a05b7bSdanielk1977 if( !isRowid ){ 170866a5167bSdrh sqlite3VdbeChangeP4(v, addr, (void *)&keyInfo, P4_KEYINFO); 170941a05b7bSdanielk1977 } 1710b3bce662Sdanielk1977 break; 1711fef5208cSdrh } 1712fef5208cSdrh 171351522cd3Sdrh case TK_EXISTS: 1714fd773cf9Sdrh case TK_SELECT: 1715fd773cf9Sdrh default: { 1716fd773cf9Sdrh /* If this has to be a scalar SELECT. Generate code to put the 1717fef5208cSdrh ** value of this select in a memory cell and record the number 1718fd773cf9Sdrh ** of the memory cell in iColumn. If this is an EXISTS, write 1719fd773cf9Sdrh ** an integer 0 (not exists) or 1 (exists) into a memory cell 1720fd773cf9Sdrh ** and record that memory cell in iColumn. 1721fef5208cSdrh */ 1722fd773cf9Sdrh static const Token one = { "1", 1 }; /* Token for literal value 1 */ 1723fd773cf9Sdrh Select *pSel; /* SELECT statement to encode */ 1724fd773cf9Sdrh SelectDest dest; /* How to deal with SELECt result */ 17251398ad36Sdrh 1726cf697396Sshane testcase( pExpr->op==TK_EXISTS ); 1727cf697396Sshane testcase( pExpr->op==TK_SELECT ); 1728cf697396Sshane assert( pExpr->op==TK_EXISTS || pExpr->op==TK_SELECT ); 1729cf697396Sshane 17306ab3a2ecSdanielk1977 assert( ExprHasProperty(pExpr, EP_xIsSelect) ); 17316ab3a2ecSdanielk1977 pSel = pExpr->x.pSelect; 17321013c932Sdrh sqlite3SelectDestInit(&dest, 0, ++pParse->nMem); 173351522cd3Sdrh if( pExpr->op==TK_SELECT ){ 17346c8c8ce0Sdanielk1977 dest.eDest = SRT_Mem; 17354c583128Sdrh sqlite3VdbeAddOp2(v, OP_Null, 0, dest.iParm); 1736d4e70ebdSdrh VdbeComment((v, "Init subquery result")); 173751522cd3Sdrh }else{ 17386c8c8ce0Sdanielk1977 dest.eDest = SRT_Exists; 17394c583128Sdrh sqlite3VdbeAddOp2(v, OP_Integer, 0, dest.iParm); 1740d4e70ebdSdrh VdbeComment((v, "Init EXISTS result")); 174151522cd3Sdrh } 1742633e6d57Sdrh sqlite3ExprDelete(pParse->db, pSel->pLimit); 1743a1644fd8Sdanielk1977 pSel->pLimit = sqlite3PExpr(pParse, TK_INTEGER, 0, 0, &one); 17447d10d5a6Sdrh if( sqlite3Select(pParse, pSel, &dest) ){ 17451450bc6eSdrh return 0; 174694ccde58Sdrh } 17471450bc6eSdrh rReg = dest.iParm; 174833e619fcSdrh ExprSetIrreducible(pExpr); 1749b3bce662Sdanielk1977 break; 175019a775c2Sdrh } 1751cce7d176Sdrh } 1752b3bce662Sdanielk1977 175357dbd7b3Sdrh if( testAddr ){ 1754892d3179Sdrh sqlite3VdbeJumpHere(v, testAddr-1); 1755b3bce662Sdanielk1977 } 1756ceea3321Sdrh sqlite3ExprCachePop(pParse, 1); 1757fc976065Sdanielk1977 17581450bc6eSdrh return rReg; 1759cce7d176Sdrh } 176051522cd3Sdrh #endif /* SQLITE_OMIT_SUBQUERY */ 1761cce7d176Sdrh 1762e3365e6cSdrh #ifndef SQLITE_OMIT_SUBQUERY 1763e3365e6cSdrh /* 1764e3365e6cSdrh ** Generate code for an IN expression. 1765e3365e6cSdrh ** 1766e3365e6cSdrh ** x IN (SELECT ...) 1767e3365e6cSdrh ** x IN (value, value, ...) 1768e3365e6cSdrh ** 1769e3365e6cSdrh ** The left-hand side (LHS) is a scalar expression. The right-hand side (RHS) 1770e3365e6cSdrh ** is an array of zero or more values. The expression is true if the LHS is 1771e3365e6cSdrh ** contained within the RHS. The value of the expression is unknown (NULL) 1772e3365e6cSdrh ** if the LHS is NULL or if the LHS is not contained within the RHS and the 1773e3365e6cSdrh ** RHS contains one or more NULL values. 1774e3365e6cSdrh ** 1775e3365e6cSdrh ** This routine generates code will jump to destIfFalse if the LHS is not 1776e3365e6cSdrh ** contained within the RHS. If due to NULLs we cannot determine if the LHS 1777e3365e6cSdrh ** is contained in the RHS then jump to destIfNull. If the LHS is contained 1778e3365e6cSdrh ** within the RHS then fall through. 1779e3365e6cSdrh */ 1780e3365e6cSdrh static void sqlite3ExprCodeIN( 1781e3365e6cSdrh Parse *pParse, /* Parsing and code generating context */ 1782e3365e6cSdrh Expr *pExpr, /* The IN expression */ 1783e3365e6cSdrh int destIfFalse, /* Jump here if LHS is not contained in the RHS */ 1784e3365e6cSdrh int destIfNull /* Jump here if the results are unknown due to NULLs */ 1785e3365e6cSdrh ){ 1786e3365e6cSdrh int rRhsHasNull = 0; /* Register that is true if RHS contains NULL values */ 1787e3365e6cSdrh char affinity; /* Comparison affinity to use */ 1788e3365e6cSdrh int eType; /* Type of the RHS */ 1789e3365e6cSdrh int r1; /* Temporary use register */ 1790e3365e6cSdrh Vdbe *v; /* Statement under construction */ 1791e3365e6cSdrh 1792e3365e6cSdrh /* Compute the RHS. After this step, the table with cursor 1793e3365e6cSdrh ** pExpr->iTable will contains the values that make up the RHS. 1794e3365e6cSdrh */ 1795e3365e6cSdrh v = pParse->pVdbe; 1796e3365e6cSdrh assert( v!=0 ); /* OOM detected prior to this routine */ 1797e3365e6cSdrh VdbeNoopComment((v, "begin IN expr")); 1798e3365e6cSdrh eType = sqlite3FindInIndex(pParse, pExpr, &rRhsHasNull); 1799e3365e6cSdrh 1800e3365e6cSdrh /* Figure out the affinity to use to create a key from the results 1801e3365e6cSdrh ** of the expression. affinityStr stores a static string suitable for 1802e3365e6cSdrh ** P4 of OP_MakeRecord. 1803e3365e6cSdrh */ 1804e3365e6cSdrh affinity = comparisonAffinity(pExpr); 1805e3365e6cSdrh 1806e3365e6cSdrh /* Code the LHS, the <expr> from "<expr> IN (...)". 1807e3365e6cSdrh */ 1808e3365e6cSdrh sqlite3ExprCachePush(pParse); 1809e3365e6cSdrh r1 = sqlite3GetTempReg(pParse); 1810e3365e6cSdrh sqlite3ExprCode(pParse, pExpr->pLeft, r1); 1811e3365e6cSdrh sqlite3VdbeAddOp2(v, OP_IsNull, r1, destIfNull); 1812e3365e6cSdrh 1813e3365e6cSdrh 1814e3365e6cSdrh if( eType==IN_INDEX_ROWID ){ 1815e3365e6cSdrh /* In this case, the RHS is the ROWID of table b-tree 1816e3365e6cSdrh */ 1817e3365e6cSdrh sqlite3VdbeAddOp2(v, OP_MustBeInt, r1, destIfFalse); 1818e3365e6cSdrh sqlite3VdbeAddOp3(v, OP_NotExists, pExpr->iTable, destIfFalse, r1); 1819e3365e6cSdrh }else{ 1820e3365e6cSdrh /* In this case, the RHS is an index b-tree. 1821e3365e6cSdrh */ 18228cff69dfSdrh sqlite3VdbeAddOp4(v, OP_Affinity, r1, 1, 0, &affinity, 1); 1823e3365e6cSdrh 1824e3365e6cSdrh /* If the set membership test fails, then the result of the 1825e3365e6cSdrh ** "x IN (...)" expression must be either 0 or NULL. If the set 1826e3365e6cSdrh ** contains no NULL values, then the result is 0. If the set 1827e3365e6cSdrh ** contains one or more NULL values, then the result of the 1828e3365e6cSdrh ** expression is also NULL. 1829e3365e6cSdrh */ 1830e3365e6cSdrh if( rRhsHasNull==0 || destIfFalse==destIfNull ){ 1831e3365e6cSdrh /* This branch runs if it is known at compile time that the RHS 1832e3365e6cSdrh ** cannot contain NULL values. This happens as the result 1833e3365e6cSdrh ** of a "NOT NULL" constraint in the database schema. 1834e3365e6cSdrh ** 1835e3365e6cSdrh ** Also run this branch if NULL is equivalent to FALSE 1836e3365e6cSdrh ** for this particular IN operator. 1837e3365e6cSdrh */ 18388cff69dfSdrh sqlite3VdbeAddOp4Int(v, OP_NotFound, pExpr->iTable, destIfFalse, r1, 1); 1839e3365e6cSdrh 1840e3365e6cSdrh }else{ 1841e3365e6cSdrh /* In this branch, the RHS of the IN might contain a NULL and 1842e3365e6cSdrh ** the presence of a NULL on the RHS makes a difference in the 1843e3365e6cSdrh ** outcome. 1844e3365e6cSdrh */ 1845e3365e6cSdrh int j1, j2, j3; 1846e3365e6cSdrh 1847e3365e6cSdrh /* First check to see if the LHS is contained in the RHS. If so, 1848e3365e6cSdrh ** then the presence of NULLs in the RHS does not matter, so jump 1849e3365e6cSdrh ** over all of the code that follows. 1850e3365e6cSdrh */ 18518cff69dfSdrh j1 = sqlite3VdbeAddOp4Int(v, OP_Found, pExpr->iTable, 0, r1, 1); 1852e3365e6cSdrh 1853e3365e6cSdrh /* Here we begin generating code that runs if the LHS is not 1854e3365e6cSdrh ** contained within the RHS. Generate additional code that 1855e3365e6cSdrh ** tests the RHS for NULLs. If the RHS contains a NULL then 1856e3365e6cSdrh ** jump to destIfNull. If there are no NULLs in the RHS then 1857e3365e6cSdrh ** jump to destIfFalse. 1858e3365e6cSdrh */ 1859e3365e6cSdrh j2 = sqlite3VdbeAddOp1(v, OP_NotNull, rRhsHasNull); 18608cff69dfSdrh j3 = sqlite3VdbeAddOp4Int(v, OP_Found, pExpr->iTable, 0, rRhsHasNull, 1); 1861e3365e6cSdrh sqlite3VdbeAddOp2(v, OP_Integer, -1, rRhsHasNull); 1862e3365e6cSdrh sqlite3VdbeJumpHere(v, j3); 1863e3365e6cSdrh sqlite3VdbeAddOp2(v, OP_AddImm, rRhsHasNull, 1); 1864e3365e6cSdrh sqlite3VdbeJumpHere(v, j2); 1865e3365e6cSdrh 1866e3365e6cSdrh /* Jump to the appropriate target depending on whether or not 1867e3365e6cSdrh ** the RHS contains a NULL 1868e3365e6cSdrh */ 1869e3365e6cSdrh sqlite3VdbeAddOp2(v, OP_If, rRhsHasNull, destIfNull); 1870e3365e6cSdrh sqlite3VdbeAddOp2(v, OP_Goto, 0, destIfFalse); 1871e3365e6cSdrh 1872e3365e6cSdrh /* The OP_Found at the top of this branch jumps here when true, 1873e3365e6cSdrh ** causing the overall IN expression evaluation to fall through. 1874e3365e6cSdrh */ 1875e3365e6cSdrh sqlite3VdbeJumpHere(v, j1); 1876e3365e6cSdrh } 1877e3365e6cSdrh } 1878e3365e6cSdrh sqlite3ReleaseTempReg(pParse, r1); 1879e3365e6cSdrh sqlite3ExprCachePop(pParse, 1); 1880e3365e6cSdrh VdbeComment((v, "end IN expr")); 1881e3365e6cSdrh } 1882e3365e6cSdrh #endif /* SQLITE_OMIT_SUBQUERY */ 1883e3365e6cSdrh 1884cce7d176Sdrh /* 1885598f1340Sdrh ** Duplicate an 8-byte value 1886598f1340Sdrh */ 1887598f1340Sdrh static char *dup8bytes(Vdbe *v, const char *in){ 1888598f1340Sdrh char *out = sqlite3DbMallocRaw(sqlite3VdbeDb(v), 8); 1889598f1340Sdrh if( out ){ 1890598f1340Sdrh memcpy(out, in, 8); 1891598f1340Sdrh } 1892598f1340Sdrh return out; 1893598f1340Sdrh } 1894598f1340Sdrh 1895598f1340Sdrh /* 1896598f1340Sdrh ** Generate an instruction that will put the floating point 18979cbf3425Sdrh ** value described by z[0..n-1] into register iMem. 18980cf19ed8Sdrh ** 18990cf19ed8Sdrh ** The z[] string will probably not be zero-terminated. But the 19000cf19ed8Sdrh ** z[n] character is guaranteed to be something that does not look 19010cf19ed8Sdrh ** like the continuation of the number. 1902598f1340Sdrh */ 1903b7916a78Sdrh static void codeReal(Vdbe *v, const char *z, int negateFlag, int iMem){ 1904fd773cf9Sdrh if( ALWAYS(z!=0) ){ 1905598f1340Sdrh double value; 1906598f1340Sdrh char *zV; 1907598f1340Sdrh sqlite3AtoF(z, &value); 1908d0015161Sdrh assert( !sqlite3IsNaN(value) ); /* The new AtoF never returns NaN */ 1909598f1340Sdrh if( negateFlag ) value = -value; 1910598f1340Sdrh zV = dup8bytes(v, (char*)&value); 19119de221dfSdrh sqlite3VdbeAddOp4(v, OP_Real, 0, iMem, 0, zV, P4_REAL); 1912598f1340Sdrh } 1913598f1340Sdrh } 1914598f1340Sdrh 1915598f1340Sdrh 1916598f1340Sdrh /* 1917fec19aadSdrh ** Generate an instruction that will put the integer describe by 19189cbf3425Sdrh ** text z[0..n-1] into register iMem. 19190cf19ed8Sdrh ** 19200cf19ed8Sdrh ** The z[] string will probably not be zero-terminated. But the 19210cf19ed8Sdrh ** z[n] character is guaranteed to be something that does not look 19220cf19ed8Sdrh ** like the continuation of the number. 1923fec19aadSdrh */ 192492b01d53Sdrh static void codeInteger(Vdbe *v, Expr *pExpr, int negFlag, int iMem){ 192592b01d53Sdrh if( pExpr->flags & EP_IntValue ){ 192633e619fcSdrh int i = pExpr->u.iValue; 192792b01d53Sdrh if( negFlag ) i = -i; 192892b01d53Sdrh sqlite3VdbeAddOp2(v, OP_Integer, i, iMem); 1929fd773cf9Sdrh }else{ 1930fd773cf9Sdrh const char *z = pExpr->u.zToken; 1931fd773cf9Sdrh assert( z!=0 ); 1932fd773cf9Sdrh if( sqlite3FitsIn64Bits(z, negFlag) ){ 1933598f1340Sdrh i64 value; 1934598f1340Sdrh char *zV; 1935598f1340Sdrh sqlite3Atoi64(z, &value); 19369de221dfSdrh if( negFlag ) value = -value; 1937598f1340Sdrh zV = dup8bytes(v, (char*)&value); 19389de221dfSdrh sqlite3VdbeAddOp4(v, OP_Int64, 0, iMem, 0, zV, P4_INT64); 1939fec19aadSdrh }else{ 1940b7916a78Sdrh codeReal(v, z, negFlag, iMem); 1941fec19aadSdrh } 1942fec19aadSdrh } 1943c9cf901dSdanielk1977 } 1944fec19aadSdrh 1945ceea3321Sdrh /* 1946ceea3321Sdrh ** Clear a cache entry. 1947ceea3321Sdrh */ 1948ceea3321Sdrh static void cacheEntryClear(Parse *pParse, struct yColCache *p){ 1949ceea3321Sdrh if( p->tempReg ){ 1950ceea3321Sdrh if( pParse->nTempReg<ArraySize(pParse->aTempReg) ){ 1951ceea3321Sdrh pParse->aTempReg[pParse->nTempReg++] = p->iReg; 1952ceea3321Sdrh } 1953ceea3321Sdrh p->tempReg = 0; 1954ceea3321Sdrh } 1955ceea3321Sdrh } 1956ceea3321Sdrh 1957ceea3321Sdrh 1958ceea3321Sdrh /* 1959ceea3321Sdrh ** Record in the column cache that a particular column from a 1960ceea3321Sdrh ** particular table is stored in a particular register. 1961ceea3321Sdrh */ 1962ceea3321Sdrh void sqlite3ExprCacheStore(Parse *pParse, int iTab, int iCol, int iReg){ 1963ceea3321Sdrh int i; 1964ceea3321Sdrh int minLru; 1965ceea3321Sdrh int idxLru; 1966ceea3321Sdrh struct yColCache *p; 1967ceea3321Sdrh 196820411ea7Sdrh assert( iReg>0 ); /* Register numbers are always positive */ 196920411ea7Sdrh assert( iCol>=-1 && iCol<32768 ); /* Finite column numbers */ 197020411ea7Sdrh 1971ceea3321Sdrh /* First replace any existing entry */ 1972ceea3321Sdrh for(i=0, p=pParse->aColCache; i<SQLITE_N_COLCACHE; i++, p++){ 1973ceea3321Sdrh if( p->iReg && p->iTable==iTab && p->iColumn==iCol ){ 1974ceea3321Sdrh cacheEntryClear(pParse, p); 1975ceea3321Sdrh p->iLevel = pParse->iCacheLevel; 1976ceea3321Sdrh p->iReg = iReg; 1977ceea3321Sdrh p->affChange = 0; 1978ceea3321Sdrh p->lru = pParse->iCacheCnt++; 1979ceea3321Sdrh return; 1980ceea3321Sdrh } 1981ceea3321Sdrh } 1982ceea3321Sdrh 1983ceea3321Sdrh /* Find an empty slot and replace it */ 1984ceea3321Sdrh for(i=0, p=pParse->aColCache; i<SQLITE_N_COLCACHE; i++, p++){ 1985ceea3321Sdrh if( p->iReg==0 ){ 1986ceea3321Sdrh p->iLevel = pParse->iCacheLevel; 1987ceea3321Sdrh p->iTable = iTab; 1988ceea3321Sdrh p->iColumn = iCol; 1989ceea3321Sdrh p->iReg = iReg; 1990ceea3321Sdrh p->affChange = 0; 1991ceea3321Sdrh p->tempReg = 0; 1992ceea3321Sdrh p->lru = pParse->iCacheCnt++; 1993ceea3321Sdrh return; 1994ceea3321Sdrh } 1995ceea3321Sdrh } 1996ceea3321Sdrh 1997ceea3321Sdrh /* Replace the last recently used */ 1998ceea3321Sdrh minLru = 0x7fffffff; 1999ceea3321Sdrh idxLru = -1; 2000ceea3321Sdrh for(i=0, p=pParse->aColCache; i<SQLITE_N_COLCACHE; i++, p++){ 2001ceea3321Sdrh if( p->lru<minLru ){ 2002ceea3321Sdrh idxLru = i; 2003ceea3321Sdrh minLru = p->lru; 2004ceea3321Sdrh } 2005ceea3321Sdrh } 200620411ea7Sdrh if( ALWAYS(idxLru>=0) ){ 2007ceea3321Sdrh p = &pParse->aColCache[idxLru]; 2008ceea3321Sdrh p->iLevel = pParse->iCacheLevel; 2009ceea3321Sdrh p->iTable = iTab; 2010ceea3321Sdrh p->iColumn = iCol; 2011ceea3321Sdrh p->iReg = iReg; 2012ceea3321Sdrh p->affChange = 0; 2013ceea3321Sdrh p->tempReg = 0; 2014ceea3321Sdrh p->lru = pParse->iCacheCnt++; 2015ceea3321Sdrh return; 2016ceea3321Sdrh } 2017ceea3321Sdrh } 2018ceea3321Sdrh 2019ceea3321Sdrh /* 2020ceea3321Sdrh ** Indicate that a register is being overwritten. Purge the register 2021ceea3321Sdrh ** from the column cache. 2022ceea3321Sdrh */ 2023ceea3321Sdrh void sqlite3ExprCacheRemove(Parse *pParse, int iReg){ 2024ceea3321Sdrh int i; 2025ceea3321Sdrh struct yColCache *p; 2026ceea3321Sdrh for(i=0, p=pParse->aColCache; i<SQLITE_N_COLCACHE; i++, p++){ 2027ceea3321Sdrh if( p->iReg==iReg ){ 2028ceea3321Sdrh cacheEntryClear(pParse, p); 2029ceea3321Sdrh p->iReg = 0; 2030ceea3321Sdrh } 2031ceea3321Sdrh } 2032ceea3321Sdrh } 2033ceea3321Sdrh 2034ceea3321Sdrh /* 2035ceea3321Sdrh ** Remember the current column cache context. Any new entries added 2036ceea3321Sdrh ** added to the column cache after this call are removed when the 2037ceea3321Sdrh ** corresponding pop occurs. 2038ceea3321Sdrh */ 2039ceea3321Sdrh void sqlite3ExprCachePush(Parse *pParse){ 2040ceea3321Sdrh pParse->iCacheLevel++; 2041ceea3321Sdrh } 2042ceea3321Sdrh 2043ceea3321Sdrh /* 2044ceea3321Sdrh ** Remove from the column cache any entries that were added since the 2045ceea3321Sdrh ** the previous N Push operations. In other words, restore the cache 2046ceea3321Sdrh ** to the state it was in N Pushes ago. 2047ceea3321Sdrh */ 2048ceea3321Sdrh void sqlite3ExprCachePop(Parse *pParse, int N){ 2049ceea3321Sdrh int i; 2050ceea3321Sdrh struct yColCache *p; 2051ceea3321Sdrh assert( N>0 ); 2052ceea3321Sdrh assert( pParse->iCacheLevel>=N ); 2053ceea3321Sdrh pParse->iCacheLevel -= N; 2054ceea3321Sdrh for(i=0, p=pParse->aColCache; i<SQLITE_N_COLCACHE; i++, p++){ 2055ceea3321Sdrh if( p->iReg && p->iLevel>pParse->iCacheLevel ){ 2056ceea3321Sdrh cacheEntryClear(pParse, p); 2057ceea3321Sdrh p->iReg = 0; 2058ceea3321Sdrh } 2059ceea3321Sdrh } 2060ceea3321Sdrh } 2061945498f3Sdrh 2062945498f3Sdrh /* 20635cd79239Sdrh ** When a cached column is reused, make sure that its register is 20645cd79239Sdrh ** no longer available as a temp register. ticket #3879: that same 20655cd79239Sdrh ** register might be in the cache in multiple places, so be sure to 20665cd79239Sdrh ** get them all. 20675cd79239Sdrh */ 20685cd79239Sdrh static void sqlite3ExprCachePinRegister(Parse *pParse, int iReg){ 20695cd79239Sdrh int i; 20705cd79239Sdrh struct yColCache *p; 20715cd79239Sdrh for(i=0, p=pParse->aColCache; i<SQLITE_N_COLCACHE; i++, p++){ 20725cd79239Sdrh if( p->iReg==iReg ){ 20735cd79239Sdrh p->tempReg = 0; 20745cd79239Sdrh } 20755cd79239Sdrh } 20765cd79239Sdrh } 20775cd79239Sdrh 20785cd79239Sdrh /* 2079945498f3Sdrh ** Generate code that will extract the iColumn-th column from 2080e55cbd72Sdrh ** table pTab and store the column value in a register. An effort 2081e55cbd72Sdrh ** is made to store the column value in register iReg, but this is 2082e55cbd72Sdrh ** not guaranteed. The location of the column value is returned. 2083e55cbd72Sdrh ** 2084e55cbd72Sdrh ** There must be an open cursor to pTab in iTable when this routine 2085e55cbd72Sdrh ** is called. If iColumn<0 then code is generated that extracts the rowid. 2086da250ea5Sdrh ** 2087da250ea5Sdrh ** This routine might attempt to reuse the value of the column that 2088da250ea5Sdrh ** has already been loaded into a register. The value will always 2089da250ea5Sdrh ** be used if it has not undergone any affinity changes. But if 2090da250ea5Sdrh ** an affinity change has occurred, then the cached value will only be 2091da250ea5Sdrh ** used if allowAffChng is true. 2092945498f3Sdrh */ 2093e55cbd72Sdrh int sqlite3ExprCodeGetColumn( 2094e55cbd72Sdrh Parse *pParse, /* Parsing and code generating context */ 20952133d822Sdrh Table *pTab, /* Description of the table we are reading from */ 20962133d822Sdrh int iColumn, /* Index of the table column */ 20972133d822Sdrh int iTable, /* The cursor pointing to the table */ 2098da250ea5Sdrh int iReg, /* Store results here */ 2099da250ea5Sdrh int allowAffChng /* True if prior affinity changes are OK */ 21002133d822Sdrh ){ 2101e55cbd72Sdrh Vdbe *v = pParse->pVdbe; 2102e55cbd72Sdrh int i; 2103da250ea5Sdrh struct yColCache *p; 2104e55cbd72Sdrh 2105ceea3321Sdrh for(i=0, p=pParse->aColCache; i<SQLITE_N_COLCACHE; i++, p++){ 2106ceea3321Sdrh if( p->iReg>0 && p->iTable==iTable && p->iColumn==iColumn 2107da250ea5Sdrh && (!p->affChange || allowAffChng) ){ 2108ceea3321Sdrh p->lru = pParse->iCacheCnt++; 21095cd79239Sdrh sqlite3ExprCachePinRegister(pParse, p->iReg); 2110da250ea5Sdrh return p->iReg; 2111e55cbd72Sdrh } 2112e55cbd72Sdrh } 2113e55cbd72Sdrh assert( v!=0 ); 2114945498f3Sdrh if( iColumn<0 ){ 2115044925beSdrh sqlite3VdbeAddOp2(v, OP_Rowid, iTable, iReg); 211620411ea7Sdrh }else if( ALWAYS(pTab!=0) ){ 2117945498f3Sdrh int op = IsVirtual(pTab) ? OP_VColumn : OP_Column; 21182133d822Sdrh sqlite3VdbeAddOp3(v, op, iTable, iColumn, iReg); 2119c7538b5fSdanielk1977 sqlite3ColumnDefault(v, pTab, iColumn, iReg); 2120945498f3Sdrh } 2121ceea3321Sdrh sqlite3ExprCacheStore(pParse, iTable, iColumn, iReg); 2122e55cbd72Sdrh return iReg; 2123e55cbd72Sdrh } 2124e55cbd72Sdrh 2125e55cbd72Sdrh /* 2126ceea3321Sdrh ** Clear all column cache entries. 2127e55cbd72Sdrh */ 2128ceea3321Sdrh void sqlite3ExprCacheClear(Parse *pParse){ 2129e55cbd72Sdrh int i; 2130ceea3321Sdrh struct yColCache *p; 2131ceea3321Sdrh 2132ceea3321Sdrh for(i=0, p=pParse->aColCache; i<SQLITE_N_COLCACHE; i++, p++){ 2133ceea3321Sdrh if( p->iReg ){ 2134ceea3321Sdrh cacheEntryClear(pParse, p); 2135ceea3321Sdrh p->iReg = 0; 2136e55cbd72Sdrh } 2137da250ea5Sdrh } 2138da250ea5Sdrh } 2139e55cbd72Sdrh 2140e55cbd72Sdrh /* 2141da250ea5Sdrh ** Record the fact that an affinity change has occurred on iCount 2142da250ea5Sdrh ** registers starting with iStart. 2143e55cbd72Sdrh */ 2144da250ea5Sdrh void sqlite3ExprCacheAffinityChange(Parse *pParse, int iStart, int iCount){ 2145da250ea5Sdrh int iEnd = iStart + iCount - 1; 2146e55cbd72Sdrh int i; 2147ceea3321Sdrh struct yColCache *p; 2148ceea3321Sdrh for(i=0, p=pParse->aColCache; i<SQLITE_N_COLCACHE; i++, p++){ 2149ceea3321Sdrh int r = p->iReg; 2150da250ea5Sdrh if( r>=iStart && r<=iEnd ){ 2151ceea3321Sdrh p->affChange = 1; 2152e55cbd72Sdrh } 2153e55cbd72Sdrh } 2154e55cbd72Sdrh } 2155e55cbd72Sdrh 2156e55cbd72Sdrh /* 2157b21e7c70Sdrh ** Generate code to move content from registers iFrom...iFrom+nReg-1 2158b21e7c70Sdrh ** over to iTo..iTo+nReg-1. Keep the column cache up-to-date. 2159e55cbd72Sdrh */ 2160b21e7c70Sdrh void sqlite3ExprCodeMove(Parse *pParse, int iFrom, int iTo, int nReg){ 2161e55cbd72Sdrh int i; 2162ceea3321Sdrh struct yColCache *p; 216320411ea7Sdrh if( NEVER(iFrom==iTo) ) return; 2164b21e7c70Sdrh sqlite3VdbeAddOp3(pParse->pVdbe, OP_Move, iFrom, iTo, nReg); 2165ceea3321Sdrh for(i=0, p=pParse->aColCache; i<SQLITE_N_COLCACHE; i++, p++){ 2166ceea3321Sdrh int x = p->iReg; 2167b21e7c70Sdrh if( x>=iFrom && x<iFrom+nReg ){ 2168ceea3321Sdrh p->iReg += iTo-iFrom; 2169e55cbd72Sdrh } 2170e55cbd72Sdrh } 2171945498f3Sdrh } 2172945498f3Sdrh 2173fec19aadSdrh /* 217492b01d53Sdrh ** Generate code to copy content from registers iFrom...iFrom+nReg-1 217592b01d53Sdrh ** over to iTo..iTo+nReg-1. 217692b01d53Sdrh */ 217792b01d53Sdrh void sqlite3ExprCodeCopy(Parse *pParse, int iFrom, int iTo, int nReg){ 217892b01d53Sdrh int i; 217920411ea7Sdrh if( NEVER(iFrom==iTo) ) return; 218092b01d53Sdrh for(i=0; i<nReg; i++){ 218192b01d53Sdrh sqlite3VdbeAddOp2(pParse->pVdbe, OP_Copy, iFrom+i, iTo+i); 218292b01d53Sdrh } 218392b01d53Sdrh } 218492b01d53Sdrh 218592b01d53Sdrh /* 2186652fbf55Sdrh ** Return true if any register in the range iFrom..iTo (inclusive) 2187652fbf55Sdrh ** is used as part of the column cache. 2188652fbf55Sdrh */ 2189652fbf55Sdrh static int usedAsColumnCache(Parse *pParse, int iFrom, int iTo){ 2190652fbf55Sdrh int i; 2191ceea3321Sdrh struct yColCache *p; 2192ceea3321Sdrh for(i=0, p=pParse->aColCache; i<SQLITE_N_COLCACHE; i++, p++){ 2193ceea3321Sdrh int r = p->iReg; 2194652fbf55Sdrh if( r>=iFrom && r<=iTo ) return 1; 2195652fbf55Sdrh } 2196652fbf55Sdrh return 0; 2197652fbf55Sdrh } 2198652fbf55Sdrh 2199652fbf55Sdrh /* 2200191b54cbSdrh ** If the last instruction coded is an ephemeral copy of any of 2201191b54cbSdrh ** the registers in the nReg registers beginning with iReg, then 2202191b54cbSdrh ** convert the last instruction from OP_SCopy to OP_Copy. 2203191b54cbSdrh */ 2204191b54cbSdrh void sqlite3ExprHardCopy(Parse *pParse, int iReg, int nReg){ 2205191b54cbSdrh VdbeOp *pOp; 2206191b54cbSdrh Vdbe *v; 2207191b54cbSdrh 220820411ea7Sdrh assert( pParse->db->mallocFailed==0 ); 2209191b54cbSdrh v = pParse->pVdbe; 221020411ea7Sdrh assert( v!=0 ); 221120411ea7Sdrh pOp = sqlite3VdbeGetOp(v, -1); 221220411ea7Sdrh assert( pOp!=0 ); 221320411ea7Sdrh if( pOp->opcode==OP_SCopy && pOp->p1>=iReg && pOp->p1<iReg+nReg ){ 2214191b54cbSdrh pOp->opcode = OP_Copy; 2215191b54cbSdrh } 2216191b54cbSdrh } 2217191b54cbSdrh 2218191b54cbSdrh /* 22198b213899Sdrh ** Generate code to store the value of the iAlias-th alias in register 22208b213899Sdrh ** target. The first time this is called, pExpr is evaluated to compute 22218b213899Sdrh ** the value of the alias. The value is stored in an auxiliary register 22228b213899Sdrh ** and the number of that register is returned. On subsequent calls, 22238b213899Sdrh ** the register number is returned without generating any code. 22248b213899Sdrh ** 22258b213899Sdrh ** Note that in order for this to work, code must be generated in the 22268b213899Sdrh ** same order that it is executed. 22278b213899Sdrh ** 22288b213899Sdrh ** Aliases are numbered starting with 1. So iAlias is in the range 22298b213899Sdrh ** of 1 to pParse->nAlias inclusive. 22308b213899Sdrh ** 22318b213899Sdrh ** pParse->aAlias[iAlias-1] records the register number where the value 22328b213899Sdrh ** of the iAlias-th alias is stored. If zero, that means that the 22338b213899Sdrh ** alias has not yet been computed. 22348b213899Sdrh */ 223531daa63fSdrh static int codeAlias(Parse *pParse, int iAlias, Expr *pExpr, int target){ 2236ceea3321Sdrh #if 0 22378b213899Sdrh sqlite3 *db = pParse->db; 22388b213899Sdrh int iReg; 2239555f8de7Sdrh if( pParse->nAliasAlloc<pParse->nAlias ){ 2240555f8de7Sdrh pParse->aAlias = sqlite3DbReallocOrFree(db, pParse->aAlias, 22418b213899Sdrh sizeof(pParse->aAlias[0])*pParse->nAlias ); 2242555f8de7Sdrh testcase( db->mallocFailed && pParse->nAliasAlloc>0 ); 22438b213899Sdrh if( db->mallocFailed ) return 0; 2244555f8de7Sdrh memset(&pParse->aAlias[pParse->nAliasAlloc], 0, 2245555f8de7Sdrh (pParse->nAlias-pParse->nAliasAlloc)*sizeof(pParse->aAlias[0])); 2246555f8de7Sdrh pParse->nAliasAlloc = pParse->nAlias; 22478b213899Sdrh } 22488b213899Sdrh assert( iAlias>0 && iAlias<=pParse->nAlias ); 22498b213899Sdrh iReg = pParse->aAlias[iAlias-1]; 22508b213899Sdrh if( iReg==0 ){ 2251ceea3321Sdrh if( pParse->iCacheLevel>0 ){ 225231daa63fSdrh iReg = sqlite3ExprCodeTarget(pParse, pExpr, target); 225331daa63fSdrh }else{ 22548b213899Sdrh iReg = ++pParse->nMem; 22558b213899Sdrh sqlite3ExprCode(pParse, pExpr, iReg); 22568b213899Sdrh pParse->aAlias[iAlias-1] = iReg; 22578b213899Sdrh } 225831daa63fSdrh } 22598b213899Sdrh return iReg; 2260ceea3321Sdrh #else 226160a4b538Sshane UNUSED_PARAMETER(iAlias); 2262ceea3321Sdrh return sqlite3ExprCodeTarget(pParse, pExpr, target); 2263ceea3321Sdrh #endif 22648b213899Sdrh } 22658b213899Sdrh 22668b213899Sdrh /* 2267cce7d176Sdrh ** Generate code into the current Vdbe to evaluate the given 22682dcef11bSdrh ** expression. Attempt to store the results in register "target". 22692dcef11bSdrh ** Return the register where results are stored. 2270389a1adbSdrh ** 22718b213899Sdrh ** With this routine, there is no guarantee that results will 22722dcef11bSdrh ** be stored in target. The result might be stored in some other 22732dcef11bSdrh ** register if it is convenient to do so. The calling function 22742dcef11bSdrh ** must check the return code and move the results to the desired 22752dcef11bSdrh ** register. 2276cce7d176Sdrh */ 2277678ccce8Sdrh int sqlite3ExprCodeTarget(Parse *pParse, Expr *pExpr, int target){ 22782dcef11bSdrh Vdbe *v = pParse->pVdbe; /* The VM under construction */ 22792dcef11bSdrh int op; /* The opcode being coded */ 22802dcef11bSdrh int inReg = target; /* Results stored in register inReg */ 22812dcef11bSdrh int regFree1 = 0; /* If non-zero free this temporary register */ 22822dcef11bSdrh int regFree2 = 0; /* If non-zero free this temporary register */ 2283678ccce8Sdrh int r1, r2, r3, r4; /* Various register numbers */ 228420411ea7Sdrh sqlite3 *db = pParse->db; /* The database connection */ 2285ffe07b2dSdrh 22869cbf3425Sdrh assert( target>0 && target<=pParse->nMem ); 228720411ea7Sdrh if( v==0 ){ 228820411ea7Sdrh assert( pParse->db->mallocFailed ); 228920411ea7Sdrh return 0; 229020411ea7Sdrh } 2291389a1adbSdrh 2292389a1adbSdrh if( pExpr==0 ){ 2293389a1adbSdrh op = TK_NULL; 2294389a1adbSdrh }else{ 2295f2bc013cSdrh op = pExpr->op; 2296389a1adbSdrh } 2297f2bc013cSdrh switch( op ){ 229813449892Sdrh case TK_AGG_COLUMN: { 229913449892Sdrh AggInfo *pAggInfo = pExpr->pAggInfo; 230013449892Sdrh struct AggInfo_col *pCol = &pAggInfo->aCol[pExpr->iAgg]; 230113449892Sdrh if( !pAggInfo->directMode ){ 23029de221dfSdrh assert( pCol->iMem>0 ); 23039de221dfSdrh inReg = pCol->iMem; 230413449892Sdrh break; 230513449892Sdrh }else if( pAggInfo->useSortingIdx ){ 2306389a1adbSdrh sqlite3VdbeAddOp3(v, OP_Column, pAggInfo->sortingIdx, 2307389a1adbSdrh pCol->iSorterColumn, target); 230813449892Sdrh break; 230913449892Sdrh } 231013449892Sdrh /* Otherwise, fall thru into the TK_COLUMN case */ 231113449892Sdrh } 2312967e8b73Sdrh case TK_COLUMN: { 2313ffe07b2dSdrh if( pExpr->iTable<0 ){ 2314ffe07b2dSdrh /* This only happens when coding check constraints */ 2315aa9b8963Sdrh assert( pParse->ckBase>0 ); 2316aa9b8963Sdrh inReg = pExpr->iColumn + pParse->ckBase; 2317c4a3c779Sdrh }else{ 2318c5499befSdrh testcase( (pExpr->flags & EP_AnyAff)!=0 ); 2319e55cbd72Sdrh inReg = sqlite3ExprCodeGetColumn(pParse, pExpr->pTab, 2320da250ea5Sdrh pExpr->iColumn, pExpr->iTable, target, 2321da250ea5Sdrh pExpr->flags & EP_AnyAff); 23222282792aSdrh } 2323cce7d176Sdrh break; 2324cce7d176Sdrh } 2325cce7d176Sdrh case TK_INTEGER: { 232692b01d53Sdrh codeInteger(v, pExpr, 0, target); 2327fec19aadSdrh break; 232851e9a445Sdrh } 2329598f1340Sdrh case TK_FLOAT: { 233033e619fcSdrh assert( !ExprHasProperty(pExpr, EP_IntValue) ); 233133e619fcSdrh codeReal(v, pExpr->u.zToken, 0, target); 2332598f1340Sdrh break; 2333598f1340Sdrh } 2334fec19aadSdrh case TK_STRING: { 233533e619fcSdrh assert( !ExprHasProperty(pExpr, EP_IntValue) ); 233633e619fcSdrh sqlite3VdbeAddOp4(v, OP_String8, 0, target, 0, pExpr->u.zToken, 0); 2337cce7d176Sdrh break; 2338cce7d176Sdrh } 2339f0863fe5Sdrh case TK_NULL: { 23409de221dfSdrh sqlite3VdbeAddOp2(v, OP_Null, 0, target); 2341f0863fe5Sdrh break; 2342f0863fe5Sdrh } 23435338a5f7Sdanielk1977 #ifndef SQLITE_OMIT_BLOB_LITERAL 2344c572ef7fSdanielk1977 case TK_BLOB: { 23456c8c6cecSdrh int n; 23466c8c6cecSdrh const char *z; 2347ca48c90fSdrh char *zBlob; 234833e619fcSdrh assert( !ExprHasProperty(pExpr, EP_IntValue) ); 234933e619fcSdrh assert( pExpr->u.zToken[0]=='x' || pExpr->u.zToken[0]=='X' ); 235033e619fcSdrh assert( pExpr->u.zToken[1]=='\'' ); 235133e619fcSdrh z = &pExpr->u.zToken[2]; 2352b7916a78Sdrh n = sqlite3Strlen30(z) - 1; 2353b7916a78Sdrh assert( z[n]=='\'' ); 2354ca48c90fSdrh zBlob = sqlite3HexToBlob(sqlite3VdbeDb(v), z, n); 2355ca48c90fSdrh sqlite3VdbeAddOp4(v, OP_Blob, n/2, target, 0, zBlob, P4_DYNAMIC); 2356c572ef7fSdanielk1977 break; 2357c572ef7fSdanielk1977 } 23585338a5f7Sdanielk1977 #endif 235950457896Sdrh case TK_VARIABLE: { 236008de1490Sdrh VdbeOp *pOp; 236133e619fcSdrh assert( !ExprHasProperty(pExpr, EP_IntValue) ); 236233e619fcSdrh assert( pExpr->u.zToken!=0 ); 236333e619fcSdrh assert( pExpr->u.zToken[0]!=0 ); 236433e619fcSdrh if( pExpr->u.zToken[1]==0 236520411ea7Sdrh && (pOp = sqlite3VdbeGetOp(v, -1))->opcode==OP_Variable 2366937d0deaSdan && pOp->p1+pOp->p3==pExpr->iColumn 236708de1490Sdrh && pOp->p2+pOp->p3==target 236808de1490Sdrh && pOp->p4.z==0 236908de1490Sdrh ){ 237008de1490Sdrh /* If the previous instruction was a copy of the previous unnamed 237108de1490Sdrh ** parameter into the previous register, then simply increment the 237208de1490Sdrh ** repeat count on the prior instruction rather than making a new 237308de1490Sdrh ** instruction. 237408de1490Sdrh */ 237508de1490Sdrh pOp->p3++; 237608de1490Sdrh }else{ 2377937d0deaSdan sqlite3VdbeAddOp3(v, OP_Variable, pExpr->iColumn, target, 1); 237833e619fcSdrh if( pExpr->u.zToken[1]!=0 ){ 237933e619fcSdrh sqlite3VdbeChangeP4(v, -1, pExpr->u.zToken, 0); 2380895d7472Sdrh } 238108de1490Sdrh } 238250457896Sdrh break; 238350457896Sdrh } 23844e0cff60Sdrh case TK_REGISTER: { 23859de221dfSdrh inReg = pExpr->iTable; 23864e0cff60Sdrh break; 23874e0cff60Sdrh } 23888b213899Sdrh case TK_AS: { 238931daa63fSdrh inReg = codeAlias(pParse, pExpr->iTable, pExpr->pLeft, target); 23908b213899Sdrh break; 23918b213899Sdrh } 2392487e262fSdrh #ifndef SQLITE_OMIT_CAST 2393487e262fSdrh case TK_CAST: { 2394487e262fSdrh /* Expressions of the form: CAST(pLeft AS token) */ 2395f0113000Sdanielk1977 int aff, to_op; 23962dcef11bSdrh inReg = sqlite3ExprCodeTarget(pParse, pExpr->pLeft, target); 239733e619fcSdrh assert( !ExprHasProperty(pExpr, EP_IntValue) ); 239833e619fcSdrh aff = sqlite3AffinityType(pExpr->u.zToken); 2399f0113000Sdanielk1977 to_op = aff - SQLITE_AFF_TEXT + OP_ToText; 2400f0113000Sdanielk1977 assert( to_op==OP_ToText || aff!=SQLITE_AFF_TEXT ); 2401f0113000Sdanielk1977 assert( to_op==OP_ToBlob || aff!=SQLITE_AFF_NONE ); 2402f0113000Sdanielk1977 assert( to_op==OP_ToNumeric || aff!=SQLITE_AFF_NUMERIC ); 2403f0113000Sdanielk1977 assert( to_op==OP_ToInt || aff!=SQLITE_AFF_INTEGER ); 2404f0113000Sdanielk1977 assert( to_op==OP_ToReal || aff!=SQLITE_AFF_REAL ); 2405c5499befSdrh testcase( to_op==OP_ToText ); 2406c5499befSdrh testcase( to_op==OP_ToBlob ); 2407c5499befSdrh testcase( to_op==OP_ToNumeric ); 2408c5499befSdrh testcase( to_op==OP_ToInt ); 2409c5499befSdrh testcase( to_op==OP_ToReal ); 24101735fa88Sdrh if( inReg!=target ){ 24111735fa88Sdrh sqlite3VdbeAddOp2(v, OP_SCopy, inReg, target); 24121735fa88Sdrh inReg = target; 24131735fa88Sdrh } 24142dcef11bSdrh sqlite3VdbeAddOp1(v, to_op, inReg); 2415c5499befSdrh testcase( usedAsColumnCache(pParse, inReg, inReg) ); 2416b3843a82Sdrh sqlite3ExprCacheAffinityChange(pParse, inReg, 1); 2417487e262fSdrh break; 2418487e262fSdrh } 2419487e262fSdrh #endif /* SQLITE_OMIT_CAST */ 2420c9b84a1fSdrh case TK_LT: 2421c9b84a1fSdrh case TK_LE: 2422c9b84a1fSdrh case TK_GT: 2423c9b84a1fSdrh case TK_GE: 2424c9b84a1fSdrh case TK_NE: 2425c9b84a1fSdrh case TK_EQ: { 2426f2bc013cSdrh assert( TK_LT==OP_Lt ); 2427f2bc013cSdrh assert( TK_LE==OP_Le ); 2428f2bc013cSdrh assert( TK_GT==OP_Gt ); 2429f2bc013cSdrh assert( TK_GE==OP_Ge ); 2430f2bc013cSdrh assert( TK_EQ==OP_Eq ); 2431f2bc013cSdrh assert( TK_NE==OP_Ne ); 2432c5499befSdrh testcase( op==TK_LT ); 2433c5499befSdrh testcase( op==TK_LE ); 2434c5499befSdrh testcase( op==TK_GT ); 2435c5499befSdrh testcase( op==TK_GE ); 2436c5499befSdrh testcase( op==TK_EQ ); 2437c5499befSdrh testcase( op==TK_NE ); 2438da250ea5Sdrh codeCompareOperands(pParse, pExpr->pLeft, &r1, ®Free1, 2439da250ea5Sdrh pExpr->pRight, &r2, ®Free2); 244035573356Sdrh codeCompare(pParse, pExpr->pLeft, pExpr->pRight, op, 244135573356Sdrh r1, r2, inReg, SQLITE_STOREP2); 2442c5499befSdrh testcase( regFree1==0 ); 2443c5499befSdrh testcase( regFree2==0 ); 2444a37cdde0Sdanielk1977 break; 2445c9b84a1fSdrh } 24466a2fe093Sdrh case TK_IS: 24476a2fe093Sdrh case TK_ISNOT: { 24486a2fe093Sdrh testcase( op==TK_IS ); 24496a2fe093Sdrh testcase( op==TK_ISNOT ); 24506a2fe093Sdrh codeCompareOperands(pParse, pExpr->pLeft, &r1, ®Free1, 24516a2fe093Sdrh pExpr->pRight, &r2, ®Free2); 24526a2fe093Sdrh op = (op==TK_IS) ? TK_EQ : TK_NE; 24536a2fe093Sdrh codeCompare(pParse, pExpr->pLeft, pExpr->pRight, op, 24546a2fe093Sdrh r1, r2, inReg, SQLITE_STOREP2 | SQLITE_NULLEQ); 24556a2fe093Sdrh testcase( regFree1==0 ); 24566a2fe093Sdrh testcase( regFree2==0 ); 24576a2fe093Sdrh break; 24586a2fe093Sdrh } 2459cce7d176Sdrh case TK_AND: 2460cce7d176Sdrh case TK_OR: 2461cce7d176Sdrh case TK_PLUS: 2462cce7d176Sdrh case TK_STAR: 2463cce7d176Sdrh case TK_MINUS: 2464bf4133cbSdrh case TK_REM: 2465bf4133cbSdrh case TK_BITAND: 2466bf4133cbSdrh case TK_BITOR: 246717c40294Sdrh case TK_SLASH: 2468bf4133cbSdrh case TK_LSHIFT: 2469855eb1cfSdrh case TK_RSHIFT: 24700040077dSdrh case TK_CONCAT: { 2471f2bc013cSdrh assert( TK_AND==OP_And ); 2472f2bc013cSdrh assert( TK_OR==OP_Or ); 2473f2bc013cSdrh assert( TK_PLUS==OP_Add ); 2474f2bc013cSdrh assert( TK_MINUS==OP_Subtract ); 2475f2bc013cSdrh assert( TK_REM==OP_Remainder ); 2476f2bc013cSdrh assert( TK_BITAND==OP_BitAnd ); 2477f2bc013cSdrh assert( TK_BITOR==OP_BitOr ); 2478f2bc013cSdrh assert( TK_SLASH==OP_Divide ); 2479f2bc013cSdrh assert( TK_LSHIFT==OP_ShiftLeft ); 2480f2bc013cSdrh assert( TK_RSHIFT==OP_ShiftRight ); 2481f2bc013cSdrh assert( TK_CONCAT==OP_Concat ); 2482c5499befSdrh testcase( op==TK_AND ); 2483c5499befSdrh testcase( op==TK_OR ); 2484c5499befSdrh testcase( op==TK_PLUS ); 2485c5499befSdrh testcase( op==TK_MINUS ); 2486c5499befSdrh testcase( op==TK_REM ); 2487c5499befSdrh testcase( op==TK_BITAND ); 2488c5499befSdrh testcase( op==TK_BITOR ); 2489c5499befSdrh testcase( op==TK_SLASH ); 2490c5499befSdrh testcase( op==TK_LSHIFT ); 2491c5499befSdrh testcase( op==TK_RSHIFT ); 2492c5499befSdrh testcase( op==TK_CONCAT ); 24932dcef11bSdrh r1 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, ®Free1); 24942dcef11bSdrh r2 = sqlite3ExprCodeTemp(pParse, pExpr->pRight, ®Free2); 24955b6afba9Sdrh sqlite3VdbeAddOp3(v, op, r2, r1, target); 2496c5499befSdrh testcase( regFree1==0 ); 2497c5499befSdrh testcase( regFree2==0 ); 24980040077dSdrh break; 24990040077dSdrh } 2500cce7d176Sdrh case TK_UMINUS: { 2501fec19aadSdrh Expr *pLeft = pExpr->pLeft; 2502fec19aadSdrh assert( pLeft ); 2503fec19aadSdrh if( pLeft->op==TK_FLOAT ){ 250433e619fcSdrh assert( !ExprHasProperty(pExpr, EP_IntValue) ); 250533e619fcSdrh codeReal(v, pLeft->u.zToken, 1, target); 2506fbd60f82Sshane }else if( pLeft->op==TK_INTEGER ){ 250792b01d53Sdrh codeInteger(v, pLeft, 1, target); 25083c84ddffSdrh }else{ 25092dcef11bSdrh regFree1 = r1 = sqlite3GetTempReg(pParse); 25103c84ddffSdrh sqlite3VdbeAddOp2(v, OP_Integer, 0, r1); 2511e55cbd72Sdrh r2 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, ®Free2); 25122dcef11bSdrh sqlite3VdbeAddOp3(v, OP_Subtract, r2, r1, target); 2513c5499befSdrh testcase( regFree2==0 ); 25143c84ddffSdrh } 25159de221dfSdrh inReg = target; 25166e142f54Sdrh break; 25176e142f54Sdrh } 2518bf4133cbSdrh case TK_BITNOT: 25196e142f54Sdrh case TK_NOT: { 2520f2bc013cSdrh assert( TK_BITNOT==OP_BitNot ); 2521f2bc013cSdrh assert( TK_NOT==OP_Not ); 2522c5499befSdrh testcase( op==TK_BITNOT ); 2523c5499befSdrh testcase( op==TK_NOT ); 2524e99fa2afSdrh r1 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, ®Free1); 2525e99fa2afSdrh testcase( regFree1==0 ); 2526e99fa2afSdrh inReg = target; 2527e99fa2afSdrh sqlite3VdbeAddOp2(v, op, r1, inReg); 2528cce7d176Sdrh break; 2529cce7d176Sdrh } 2530cce7d176Sdrh case TK_ISNULL: 2531cce7d176Sdrh case TK_NOTNULL: { 25326a288a33Sdrh int addr; 2533f2bc013cSdrh assert( TK_ISNULL==OP_IsNull ); 2534f2bc013cSdrh assert( TK_NOTNULL==OP_NotNull ); 2535c5499befSdrh testcase( op==TK_ISNULL ); 2536c5499befSdrh testcase( op==TK_NOTNULL ); 25379de221dfSdrh sqlite3VdbeAddOp2(v, OP_Integer, 1, target); 25382dcef11bSdrh r1 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, ®Free1); 2539c5499befSdrh testcase( regFree1==0 ); 25402dcef11bSdrh addr = sqlite3VdbeAddOp1(v, op, r1); 25419de221dfSdrh sqlite3VdbeAddOp2(v, OP_AddImm, target, -1); 25426a288a33Sdrh sqlite3VdbeJumpHere(v, addr); 2543a37cdde0Sdanielk1977 break; 2544f2bc013cSdrh } 25452282792aSdrh case TK_AGG_FUNCTION: { 254613449892Sdrh AggInfo *pInfo = pExpr->pAggInfo; 25477e56e711Sdrh if( pInfo==0 ){ 254833e619fcSdrh assert( !ExprHasProperty(pExpr, EP_IntValue) ); 254933e619fcSdrh sqlite3ErrorMsg(pParse, "misuse of aggregate: %s()", pExpr->u.zToken); 25507e56e711Sdrh }else{ 25519de221dfSdrh inReg = pInfo->aFunc[pExpr->iAgg].iMem; 25527e56e711Sdrh } 25532282792aSdrh break; 25542282792aSdrh } 2555b71090fdSdrh case TK_CONST_FUNC: 2556cce7d176Sdrh case TK_FUNCTION: { 255712ffee8cSdrh ExprList *pFarg; /* List of function arguments */ 255812ffee8cSdrh int nFarg; /* Number of function arguments */ 255912ffee8cSdrh FuncDef *pDef; /* The function definition object */ 256012ffee8cSdrh int nId; /* Length of the function name in bytes */ 256112ffee8cSdrh const char *zId; /* The function name */ 256212ffee8cSdrh int constMask = 0; /* Mask of function arguments that are constant */ 256312ffee8cSdrh int i; /* Loop counter */ 256412ffee8cSdrh u8 enc = ENC(db); /* The text encoding used by this database */ 256512ffee8cSdrh CollSeq *pColl = 0; /* A collating sequence */ 256617435752Sdrh 25676ab3a2ecSdanielk1977 assert( !ExprHasProperty(pExpr, EP_xIsSelect) ); 2568c5499befSdrh testcase( op==TK_CONST_FUNC ); 2569c5499befSdrh testcase( op==TK_FUNCTION ); 2570b7916a78Sdrh if( ExprHasAnyProperty(pExpr, EP_TokenOnly) ){ 257112ffee8cSdrh pFarg = 0; 257212ffee8cSdrh }else{ 257312ffee8cSdrh pFarg = pExpr->x.pList; 257412ffee8cSdrh } 257512ffee8cSdrh nFarg = pFarg ? pFarg->nExpr : 0; 257633e619fcSdrh assert( !ExprHasProperty(pExpr, EP_IntValue) ); 257733e619fcSdrh zId = pExpr->u.zToken; 2578b7916a78Sdrh nId = sqlite3Strlen30(zId); 257912ffee8cSdrh pDef = sqlite3FindFunction(db, zId, nId, nFarg, enc, 0); 2580feb306f5Sdrh if( pDef==0 ){ 2581feb306f5Sdrh sqlite3ErrorMsg(pParse, "unknown function: %.*s()", nId, zId); 2582feb306f5Sdrh break; 2583feb306f5Sdrh } 2584ae6bb957Sdrh 2585ae6bb957Sdrh /* Attempt a direct implementation of the built-in COALESCE() and 2586ae6bb957Sdrh ** IFNULL() functions. This avoids unnecessary evalation of 2587ae6bb957Sdrh ** arguments past the first non-NULL argument. 2588ae6bb957Sdrh */ 2589ae6bb957Sdrh if( pDef->flags & SQLITE_FUNC_COALESCE ){ 2590ae6bb957Sdrh int endCoalesce = sqlite3VdbeMakeLabel(v); 2591ae6bb957Sdrh assert( nFarg>=2 ); 2592ae6bb957Sdrh sqlite3ExprCode(pParse, pFarg->a[0].pExpr, target); 2593ae6bb957Sdrh for(i=1; i<nFarg; i++){ 2594ae6bb957Sdrh sqlite3VdbeAddOp2(v, OP_NotNull, target, endCoalesce); 2595ae6bb957Sdrh sqlite3ExprCacheRemove(pParse, target); 2596ae6bb957Sdrh sqlite3ExprCachePush(pParse); 2597ae6bb957Sdrh sqlite3ExprCode(pParse, pFarg->a[i].pExpr, target); 2598ae6bb957Sdrh sqlite3ExprCachePop(pParse, 1); 2599ae6bb957Sdrh } 2600ae6bb957Sdrh sqlite3VdbeResolveLabel(v, endCoalesce); 2601ae6bb957Sdrh break; 2602ae6bb957Sdrh } 2603ae6bb957Sdrh 2604ae6bb957Sdrh 260512ffee8cSdrh if( pFarg ){ 260612ffee8cSdrh r1 = sqlite3GetTempRange(pParse, nFarg); 2607d7d385ddSdrh sqlite3ExprCachePush(pParse); /* Ticket 2ea2425d34be */ 260812ffee8cSdrh sqlite3ExprCodeExprList(pParse, pFarg, r1, 1); 2609d7d385ddSdrh sqlite3ExprCachePop(pParse, 1); /* Ticket 2ea2425d34be */ 2610892d3179Sdrh }else{ 261112ffee8cSdrh r1 = 0; 2612892d3179Sdrh } 2613b7f6f68fSdrh #ifndef SQLITE_OMIT_VIRTUALTABLE 2614a43fa227Sdrh /* Possibly overload the function if the first argument is 2615a43fa227Sdrh ** a virtual table column. 2616a43fa227Sdrh ** 2617a43fa227Sdrh ** For infix functions (LIKE, GLOB, REGEXP, and MATCH) use the 2618a43fa227Sdrh ** second argument, not the first, as the argument to test to 2619a43fa227Sdrh ** see if it is a column in a virtual table. This is done because 2620a43fa227Sdrh ** the left operand of infix functions (the operand we want to 2621a43fa227Sdrh ** control overloading) ends up as the second argument to the 2622a43fa227Sdrh ** function. The expression "A glob B" is equivalent to 2623a43fa227Sdrh ** "glob(B,A). We want to use the A in "A glob B" to test 2624a43fa227Sdrh ** for function overloading. But we use the B term in "glob(B,A)". 2625a43fa227Sdrh */ 262612ffee8cSdrh if( nFarg>=2 && (pExpr->flags & EP_InfixFunc) ){ 262712ffee8cSdrh pDef = sqlite3VtabOverloadFunction(db, pDef, nFarg, pFarg->a[1].pExpr); 262812ffee8cSdrh }else if( nFarg>0 ){ 262912ffee8cSdrh pDef = sqlite3VtabOverloadFunction(db, pDef, nFarg, pFarg->a[0].pExpr); 2630b7f6f68fSdrh } 2631b7f6f68fSdrh #endif 2632f7bca574Sdrh for(i=0; i<nFarg; i++){ 2633f7bca574Sdrh if( i<32 && sqlite3ExprIsConstant(pFarg->a[i].pExpr) ){ 263413449892Sdrh constMask |= (1<<i); 2635d02eb1fdSdanielk1977 } 2636e82f5d04Sdrh if( (pDef->flags & SQLITE_FUNC_NEEDCOLL)!=0 && !pColl ){ 263712ffee8cSdrh pColl = sqlite3ExprCollSeq(pParse, pFarg->a[i].pExpr); 2638dc1bdc4fSdanielk1977 } 2639dc1bdc4fSdanielk1977 } 2640e82f5d04Sdrh if( pDef->flags & SQLITE_FUNC_NEEDCOLL ){ 26418b213899Sdrh if( !pColl ) pColl = db->pDfltColl; 264266a5167bSdrh sqlite3VdbeAddOp4(v, OP_CollSeq, 0, 0, 0, (char *)pColl, P4_COLLSEQ); 2643682f68b0Sdanielk1977 } 26442dcef11bSdrh sqlite3VdbeAddOp4(v, OP_Function, constMask, r1, target, 264566a5167bSdrh (char*)pDef, P4_FUNCDEF); 264612ffee8cSdrh sqlite3VdbeChangeP5(v, (u8)nFarg); 264712ffee8cSdrh if( nFarg ){ 264812ffee8cSdrh sqlite3ReleaseTempRange(pParse, r1, nFarg); 26492dcef11bSdrh } 265012ffee8cSdrh sqlite3ExprCacheAffinityChange(pParse, r1, nFarg); 26516ec2733bSdrh break; 26526ec2733bSdrh } 2653fe2093d7Sdrh #ifndef SQLITE_OMIT_SUBQUERY 2654fe2093d7Sdrh case TK_EXISTS: 265519a775c2Sdrh case TK_SELECT: { 2656c5499befSdrh testcase( op==TK_EXISTS ); 2657c5499befSdrh testcase( op==TK_SELECT ); 26581450bc6eSdrh inReg = sqlite3CodeSubselect(pParse, pExpr, 0, 0); 265919a775c2Sdrh break; 266019a775c2Sdrh } 2661fef5208cSdrh case TK_IN: { 2662e3365e6cSdrh int destIfFalse = sqlite3VdbeMakeLabel(v); 2663e3365e6cSdrh int destIfNull = sqlite3VdbeMakeLabel(v); 2664e3365e6cSdrh sqlite3VdbeAddOp2(v, OP_Null, 0, target); 2665e3365e6cSdrh sqlite3ExprCodeIN(pParse, pExpr, destIfFalse, destIfNull); 266666ba23ceSdrh sqlite3VdbeAddOp2(v, OP_Integer, 1, target); 2667e3365e6cSdrh sqlite3VdbeResolveLabel(v, destIfFalse); 2668e3365e6cSdrh sqlite3VdbeAddOp2(v, OP_AddImm, target, 0); 2669e3365e6cSdrh sqlite3VdbeResolveLabel(v, destIfNull); 2670fef5208cSdrh break; 2671fef5208cSdrh } 2672e3365e6cSdrh #endif /* SQLITE_OMIT_SUBQUERY */ 2673e3365e6cSdrh 2674e3365e6cSdrh 26752dcef11bSdrh /* 26762dcef11bSdrh ** x BETWEEN y AND z 26772dcef11bSdrh ** 26782dcef11bSdrh ** This is equivalent to 26792dcef11bSdrh ** 26802dcef11bSdrh ** x>=y AND x<=z 26812dcef11bSdrh ** 26822dcef11bSdrh ** X is stored in pExpr->pLeft. 26832dcef11bSdrh ** Y is stored in pExpr->pList->a[0].pExpr. 26842dcef11bSdrh ** Z is stored in pExpr->pList->a[1].pExpr. 26852dcef11bSdrh */ 2686fef5208cSdrh case TK_BETWEEN: { 2687be5c89acSdrh Expr *pLeft = pExpr->pLeft; 26886ab3a2ecSdanielk1977 struct ExprList_item *pLItem = pExpr->x.pList->a; 2689be5c89acSdrh Expr *pRight = pLItem->pExpr; 269035573356Sdrh 2691da250ea5Sdrh codeCompareOperands(pParse, pLeft, &r1, ®Free1, 2692da250ea5Sdrh pRight, &r2, ®Free2); 2693c5499befSdrh testcase( regFree1==0 ); 2694c5499befSdrh testcase( regFree2==0 ); 26952dcef11bSdrh r3 = sqlite3GetTempReg(pParse); 2696678ccce8Sdrh r4 = sqlite3GetTempReg(pParse); 269735573356Sdrh codeCompare(pParse, pLeft, pRight, OP_Ge, 269835573356Sdrh r1, r2, r3, SQLITE_STOREP2); 2699be5c89acSdrh pLItem++; 2700be5c89acSdrh pRight = pLItem->pExpr; 27012dcef11bSdrh sqlite3ReleaseTempReg(pParse, regFree2); 27022dcef11bSdrh r2 = sqlite3ExprCodeTemp(pParse, pRight, ®Free2); 2703c5499befSdrh testcase( regFree2==0 ); 2704678ccce8Sdrh codeCompare(pParse, pLeft, pRight, OP_Le, r1, r2, r4, SQLITE_STOREP2); 2705678ccce8Sdrh sqlite3VdbeAddOp3(v, OP_And, r3, r4, target); 27062dcef11bSdrh sqlite3ReleaseTempReg(pParse, r3); 2707678ccce8Sdrh sqlite3ReleaseTempReg(pParse, r4); 2708fef5208cSdrh break; 2709fef5208cSdrh } 27104f07e5fbSdrh case TK_UPLUS: { 27112dcef11bSdrh inReg = sqlite3ExprCodeTarget(pParse, pExpr->pLeft, target); 2712a2e00042Sdrh break; 2713a2e00042Sdrh } 27142dcef11bSdrh 2715165921a7Sdan case TK_TRIGGER: { 271665a7cd16Sdan /* If the opcode is TK_TRIGGER, then the expression is a reference 271765a7cd16Sdan ** to a column in the new.* or old.* pseudo-tables available to 271865a7cd16Sdan ** trigger programs. In this case Expr.iTable is set to 1 for the 271965a7cd16Sdan ** new.* pseudo-table, or 0 for the old.* pseudo-table. Expr.iColumn 272065a7cd16Sdan ** is set to the column of the pseudo-table to read, or to -1 to 272165a7cd16Sdan ** read the rowid field. 272265a7cd16Sdan ** 272365a7cd16Sdan ** The expression is implemented using an OP_Param opcode. The p1 272465a7cd16Sdan ** parameter is set to 0 for an old.rowid reference, or to (i+1) 272565a7cd16Sdan ** to reference another column of the old.* pseudo-table, where 272665a7cd16Sdan ** i is the index of the column. For a new.rowid reference, p1 is 272765a7cd16Sdan ** set to (n+1), where n is the number of columns in each pseudo-table. 272865a7cd16Sdan ** For a reference to any other column in the new.* pseudo-table, p1 272965a7cd16Sdan ** is set to (n+2+i), where n and i are as defined previously. For 273065a7cd16Sdan ** example, if the table on which triggers are being fired is 273165a7cd16Sdan ** declared as: 273265a7cd16Sdan ** 273365a7cd16Sdan ** CREATE TABLE t1(a, b); 273465a7cd16Sdan ** 273565a7cd16Sdan ** Then p1 is interpreted as follows: 273665a7cd16Sdan ** 273765a7cd16Sdan ** p1==0 -> old.rowid p1==3 -> new.rowid 273865a7cd16Sdan ** p1==1 -> old.a p1==4 -> new.a 273965a7cd16Sdan ** p1==2 -> old.b p1==5 -> new.b 274065a7cd16Sdan */ 27412832ad42Sdan Table *pTab = pExpr->pTab; 274265a7cd16Sdan int p1 = pExpr->iTable * (pTab->nCol+1) + 1 + pExpr->iColumn; 274365a7cd16Sdan 274465a7cd16Sdan assert( pExpr->iTable==0 || pExpr->iTable==1 ); 274565a7cd16Sdan assert( pExpr->iColumn>=-1 && pExpr->iColumn<pTab->nCol ); 274665a7cd16Sdan assert( pTab->iPKey<0 || pExpr->iColumn!=pTab->iPKey ); 274765a7cd16Sdan assert( p1>=0 && p1<(pTab->nCol*2+2) ); 274865a7cd16Sdan 274965a7cd16Sdan sqlite3VdbeAddOp2(v, OP_Param, p1, target); 275076d462eeSdan VdbeComment((v, "%s.%s -> $%d", 2751165921a7Sdan (pExpr->iTable ? "new" : "old"), 275276d462eeSdan (pExpr->iColumn<0 ? "rowid" : pExpr->pTab->aCol[pExpr->iColumn].zName), 275376d462eeSdan target 2754165921a7Sdan )); 275565a7cd16Sdan 275665a7cd16Sdan /* If the column has REAL affinity, it may currently be stored as an 275765a7cd16Sdan ** integer. Use OP_RealAffinity to make sure it is really real. */ 27582832ad42Sdan if( pExpr->iColumn>=0 27592832ad42Sdan && pTab->aCol[pExpr->iColumn].affinity==SQLITE_AFF_REAL 27602832ad42Sdan ){ 27612832ad42Sdan sqlite3VdbeAddOp1(v, OP_RealAffinity, target); 27622832ad42Sdan } 2763165921a7Sdan break; 2764165921a7Sdan } 2765165921a7Sdan 2766165921a7Sdan 27672dcef11bSdrh /* 27682dcef11bSdrh ** Form A: 27692dcef11bSdrh ** CASE x WHEN e1 THEN r1 WHEN e2 THEN r2 ... WHEN eN THEN rN ELSE y END 27702dcef11bSdrh ** 27712dcef11bSdrh ** Form B: 27722dcef11bSdrh ** CASE WHEN e1 THEN r1 WHEN e2 THEN r2 ... WHEN eN THEN rN ELSE y END 27732dcef11bSdrh ** 27742dcef11bSdrh ** Form A is can be transformed into the equivalent form B as follows: 27752dcef11bSdrh ** CASE WHEN x=e1 THEN r1 WHEN x=e2 THEN r2 ... 27762dcef11bSdrh ** WHEN x=eN THEN rN ELSE y END 27772dcef11bSdrh ** 27782dcef11bSdrh ** X (if it exists) is in pExpr->pLeft. 27792dcef11bSdrh ** Y is in pExpr->pRight. The Y is also optional. If there is no 27802dcef11bSdrh ** ELSE clause and no other term matches, then the result of the 27812dcef11bSdrh ** exprssion is NULL. 27822dcef11bSdrh ** Ei is in pExpr->pList->a[i*2] and Ri is pExpr->pList->a[i*2+1]. 27832dcef11bSdrh ** 27842dcef11bSdrh ** The result of the expression is the Ri for the first matching Ei, 27852dcef11bSdrh ** or if there is no matching Ei, the ELSE term Y, or if there is 27862dcef11bSdrh ** no ELSE term, NULL. 27872dcef11bSdrh */ 278833cd4909Sdrh default: assert( op==TK_CASE ); { 27892dcef11bSdrh int endLabel; /* GOTO label for end of CASE stmt */ 27902dcef11bSdrh int nextCase; /* GOTO label for next WHEN clause */ 27912dcef11bSdrh int nExpr; /* 2x number of WHEN terms */ 27922dcef11bSdrh int i; /* Loop counter */ 27932dcef11bSdrh ExprList *pEList; /* List of WHEN terms */ 27942dcef11bSdrh struct ExprList_item *aListelem; /* Array of WHEN terms */ 27952dcef11bSdrh Expr opCompare; /* The X==Ei expression */ 27962dcef11bSdrh Expr cacheX; /* Cached expression X */ 27972dcef11bSdrh Expr *pX; /* The X expression */ 27981bd10f8aSdrh Expr *pTest = 0; /* X==Ei (form A) or just Ei (form B) */ 2799ceea3321Sdrh VVA_ONLY( int iCacheLevel = pParse->iCacheLevel; ) 280017a7f8ddSdrh 28016ab3a2ecSdanielk1977 assert( !ExprHasProperty(pExpr, EP_xIsSelect) && pExpr->x.pList ); 28026ab3a2ecSdanielk1977 assert((pExpr->x.pList->nExpr % 2) == 0); 28036ab3a2ecSdanielk1977 assert(pExpr->x.pList->nExpr > 0); 28046ab3a2ecSdanielk1977 pEList = pExpr->x.pList; 2805be5c89acSdrh aListelem = pEList->a; 2806be5c89acSdrh nExpr = pEList->nExpr; 28072dcef11bSdrh endLabel = sqlite3VdbeMakeLabel(v); 28082dcef11bSdrh if( (pX = pExpr->pLeft)!=0 ){ 28092dcef11bSdrh cacheX = *pX; 281033cd4909Sdrh testcase( pX->op==TK_COLUMN ); 281133cd4909Sdrh testcase( pX->op==TK_REGISTER ); 28122dcef11bSdrh cacheX.iTable = sqlite3ExprCodeTemp(pParse, pX, ®Free1); 2813c5499befSdrh testcase( regFree1==0 ); 28142dcef11bSdrh cacheX.op = TK_REGISTER; 28152dcef11bSdrh opCompare.op = TK_EQ; 28162dcef11bSdrh opCompare.pLeft = &cacheX; 28172dcef11bSdrh pTest = &opCompare; 2818cce7d176Sdrh } 2819f5905aa7Sdrh for(i=0; i<nExpr; i=i+2){ 2820ceea3321Sdrh sqlite3ExprCachePush(pParse); 28212dcef11bSdrh if( pX ){ 28221bd10f8aSdrh assert( pTest!=0 ); 28232dcef11bSdrh opCompare.pRight = aListelem[i].pExpr; 2824f5905aa7Sdrh }else{ 28252dcef11bSdrh pTest = aListelem[i].pExpr; 282617a7f8ddSdrh } 28272dcef11bSdrh nextCase = sqlite3VdbeMakeLabel(v); 282833cd4909Sdrh testcase( pTest->op==TK_COLUMN ); 28292dcef11bSdrh sqlite3ExprIfFalse(pParse, pTest, nextCase, SQLITE_JUMPIFNULL); 2830c5499befSdrh testcase( aListelem[i+1].pExpr->op==TK_COLUMN ); 2831c5499befSdrh testcase( aListelem[i+1].pExpr->op==TK_REGISTER ); 28329de221dfSdrh sqlite3ExprCode(pParse, aListelem[i+1].pExpr, target); 28332dcef11bSdrh sqlite3VdbeAddOp2(v, OP_Goto, 0, endLabel); 2834ceea3321Sdrh sqlite3ExprCachePop(pParse, 1); 28352dcef11bSdrh sqlite3VdbeResolveLabel(v, nextCase); 2836f570f011Sdrh } 283717a7f8ddSdrh if( pExpr->pRight ){ 2838ceea3321Sdrh sqlite3ExprCachePush(pParse); 28399de221dfSdrh sqlite3ExprCode(pParse, pExpr->pRight, target); 2840ceea3321Sdrh sqlite3ExprCachePop(pParse, 1); 284117a7f8ddSdrh }else{ 28429de221dfSdrh sqlite3VdbeAddOp2(v, OP_Null, 0, target); 284317a7f8ddSdrh } 2844c1f4a19bSdanielk1977 assert( db->mallocFailed || pParse->nErr>0 2845c1f4a19bSdanielk1977 || pParse->iCacheLevel==iCacheLevel ); 28462dcef11bSdrh sqlite3VdbeResolveLabel(v, endLabel); 28476f34903eSdanielk1977 break; 28486f34903eSdanielk1977 } 28495338a5f7Sdanielk1977 #ifndef SQLITE_OMIT_TRIGGER 28506f34903eSdanielk1977 case TK_RAISE: { 2851165921a7Sdan assert( pExpr->affinity==OE_Rollback 2852165921a7Sdan || pExpr->affinity==OE_Abort 2853165921a7Sdan || pExpr->affinity==OE_Fail 2854165921a7Sdan || pExpr->affinity==OE_Ignore 2855165921a7Sdan ); 2856e0af83acSdan if( !pParse->pTriggerTab ){ 2857e0af83acSdan sqlite3ErrorMsg(pParse, 2858e0af83acSdan "RAISE() may only be used within a trigger-program"); 2859e0af83acSdan return 0; 2860e0af83acSdan } 2861e0af83acSdan if( pExpr->affinity==OE_Abort ){ 2862e0af83acSdan sqlite3MayAbort(pParse); 2863e0af83acSdan } 286433e619fcSdrh assert( !ExprHasProperty(pExpr, EP_IntValue) ); 2865e0af83acSdan if( pExpr->affinity==OE_Ignore ){ 2866e0af83acSdan sqlite3VdbeAddOp4( 2867e0af83acSdan v, OP_Halt, SQLITE_OK, OE_Ignore, 0, pExpr->u.zToken,0); 2868e0af83acSdan }else{ 2869e0af83acSdan sqlite3HaltConstraint(pParse, pExpr->affinity, pExpr->u.zToken, 0); 2870e0af83acSdan } 2871e0af83acSdan 2872ffe07b2dSdrh break; 287317a7f8ddSdrh } 28745338a5f7Sdanielk1977 #endif 2875ffe07b2dSdrh } 28762dcef11bSdrh sqlite3ReleaseTempReg(pParse, regFree1); 28772dcef11bSdrh sqlite3ReleaseTempReg(pParse, regFree2); 28782dcef11bSdrh return inReg; 28795b6afba9Sdrh } 28802dcef11bSdrh 28812dcef11bSdrh /* 28822dcef11bSdrh ** Generate code to evaluate an expression and store the results 28832dcef11bSdrh ** into a register. Return the register number where the results 28842dcef11bSdrh ** are stored. 28852dcef11bSdrh ** 28862dcef11bSdrh ** If the register is a temporary register that can be deallocated, 2887678ccce8Sdrh ** then write its number into *pReg. If the result register is not 28882dcef11bSdrh ** a temporary, then set *pReg to zero. 28892dcef11bSdrh */ 28902dcef11bSdrh int sqlite3ExprCodeTemp(Parse *pParse, Expr *pExpr, int *pReg){ 28912dcef11bSdrh int r1 = sqlite3GetTempReg(pParse); 28922dcef11bSdrh int r2 = sqlite3ExprCodeTarget(pParse, pExpr, r1); 28932dcef11bSdrh if( r2==r1 ){ 28942dcef11bSdrh *pReg = r1; 28952dcef11bSdrh }else{ 28962dcef11bSdrh sqlite3ReleaseTempReg(pParse, r1); 28972dcef11bSdrh *pReg = 0; 28982dcef11bSdrh } 28992dcef11bSdrh return r2; 29002dcef11bSdrh } 29012dcef11bSdrh 29022dcef11bSdrh /* 29032dcef11bSdrh ** Generate code that will evaluate expression pExpr and store the 29042dcef11bSdrh ** results in register target. The results are guaranteed to appear 29052dcef11bSdrh ** in register target. 29062dcef11bSdrh */ 29072dcef11bSdrh int sqlite3ExprCode(Parse *pParse, Expr *pExpr, int target){ 29089cbf3425Sdrh int inReg; 29099cbf3425Sdrh 29109cbf3425Sdrh assert( target>0 && target<=pParse->nMem ); 29119cbf3425Sdrh inReg = sqlite3ExprCodeTarget(pParse, pExpr, target); 29120e359b30Sdrh assert( pParse->pVdbe || pParse->db->mallocFailed ); 29130e359b30Sdrh if( inReg!=target && pParse->pVdbe ){ 29149cbf3425Sdrh sqlite3VdbeAddOp2(pParse->pVdbe, OP_SCopy, inReg, target); 291517a7f8ddSdrh } 2916389a1adbSdrh return target; 2917cce7d176Sdrh } 2918cce7d176Sdrh 2919cce7d176Sdrh /* 29202dcef11bSdrh ** Generate code that evalutes the given expression and puts the result 2921de4fcfddSdrh ** in register target. 292225303780Sdrh ** 29232dcef11bSdrh ** Also make a copy of the expression results into another "cache" register 29242dcef11bSdrh ** and modify the expression so that the next time it is evaluated, 29252dcef11bSdrh ** the result is a copy of the cache register. 29262dcef11bSdrh ** 29272dcef11bSdrh ** This routine is used for expressions that are used multiple 29282dcef11bSdrh ** times. They are evaluated once and the results of the expression 29292dcef11bSdrh ** are reused. 293025303780Sdrh */ 29312dcef11bSdrh int sqlite3ExprCodeAndCache(Parse *pParse, Expr *pExpr, int target){ 293225303780Sdrh Vdbe *v = pParse->pVdbe; 29332dcef11bSdrh int inReg; 29342dcef11bSdrh inReg = sqlite3ExprCode(pParse, pExpr, target); 2935de4fcfddSdrh assert( target>0 ); 293620bc393cSdrh /* This routine is called for terms to INSERT or UPDATE. And the only 293720bc393cSdrh ** other place where expressions can be converted into TK_REGISTER is 293820bc393cSdrh ** in WHERE clause processing. So as currently implemented, there is 293920bc393cSdrh ** no way for a TK_REGISTER to exist here. But it seems prudent to 294020bc393cSdrh ** keep the ALWAYS() in case the conditions above change with future 294120bc393cSdrh ** modifications or enhancements. */ 294220bc393cSdrh if( ALWAYS(pExpr->op!=TK_REGISTER) ){ 294325303780Sdrh int iMem; 29442dcef11bSdrh iMem = ++pParse->nMem; 29452dcef11bSdrh sqlite3VdbeAddOp2(v, OP_Copy, inReg, iMem); 29462dcef11bSdrh pExpr->iTable = iMem; 2947937d0deaSdan pExpr->op2 = pExpr->op; 294825303780Sdrh pExpr->op = TK_REGISTER; 294925303780Sdrh } 29502dcef11bSdrh return inReg; 295125303780Sdrh } 29522dcef11bSdrh 2953678ccce8Sdrh /* 295447de955eSdrh ** Return TRUE if pExpr is an constant expression that is appropriate 295547de955eSdrh ** for factoring out of a loop. Appropriate expressions are: 295647de955eSdrh ** 295747de955eSdrh ** * Any expression that evaluates to two or more opcodes. 295847de955eSdrh ** 295947de955eSdrh ** * Any OP_Integer, OP_Real, OP_String, OP_Blob, OP_Null, 296047de955eSdrh ** or OP_Variable that does not need to be placed in a 296147de955eSdrh ** specific register. 296247de955eSdrh ** 296347de955eSdrh ** There is no point in factoring out single-instruction constant 296447de955eSdrh ** expressions that need to be placed in a particular register. 296547de955eSdrh ** We could factor them out, but then we would end up adding an 296647de955eSdrh ** OP_SCopy instruction to move the value into the correct register 296747de955eSdrh ** later. We might as well just use the original instruction and 296847de955eSdrh ** avoid the OP_SCopy. 296947de955eSdrh */ 297047de955eSdrh static int isAppropriateForFactoring(Expr *p){ 297147de955eSdrh if( !sqlite3ExprIsConstantNotJoin(p) ){ 297247de955eSdrh return 0; /* Only constant expressions are appropriate for factoring */ 297347de955eSdrh } 297447de955eSdrh if( (p->flags & EP_FixedDest)==0 ){ 297547de955eSdrh return 1; /* Any constant without a fixed destination is appropriate */ 297647de955eSdrh } 297747de955eSdrh while( p->op==TK_UPLUS ) p = p->pLeft; 297847de955eSdrh switch( p->op ){ 297947de955eSdrh #ifndef SQLITE_OMIT_BLOB_LITERAL 298047de955eSdrh case TK_BLOB: 298147de955eSdrh #endif 298247de955eSdrh case TK_VARIABLE: 298347de955eSdrh case TK_INTEGER: 298447de955eSdrh case TK_FLOAT: 298547de955eSdrh case TK_NULL: 298647de955eSdrh case TK_STRING: { 298747de955eSdrh testcase( p->op==TK_BLOB ); 298847de955eSdrh testcase( p->op==TK_VARIABLE ); 298947de955eSdrh testcase( p->op==TK_INTEGER ); 299047de955eSdrh testcase( p->op==TK_FLOAT ); 299147de955eSdrh testcase( p->op==TK_NULL ); 299247de955eSdrh testcase( p->op==TK_STRING ); 299347de955eSdrh /* Single-instruction constants with a fixed destination are 299447de955eSdrh ** better done in-line. If we factor them, they will just end 299547de955eSdrh ** up generating an OP_SCopy to move the value to the destination 299647de955eSdrh ** register. */ 299747de955eSdrh return 0; 299847de955eSdrh } 299947de955eSdrh case TK_UMINUS: { 300047de955eSdrh if( p->pLeft->op==TK_FLOAT || p->pLeft->op==TK_INTEGER ){ 300147de955eSdrh return 0; 300247de955eSdrh } 300347de955eSdrh break; 300447de955eSdrh } 300547de955eSdrh default: { 300647de955eSdrh break; 300747de955eSdrh } 300847de955eSdrh } 300947de955eSdrh return 1; 301047de955eSdrh } 301147de955eSdrh 301247de955eSdrh /* 301347de955eSdrh ** If pExpr is a constant expression that is appropriate for 301447de955eSdrh ** factoring out of a loop, then evaluate the expression 3015678ccce8Sdrh ** into a register and convert the expression into a TK_REGISTER 3016678ccce8Sdrh ** expression. 3017678ccce8Sdrh */ 30187d10d5a6Sdrh static int evalConstExpr(Walker *pWalker, Expr *pExpr){ 30197d10d5a6Sdrh Parse *pParse = pWalker->pParse; 302047de955eSdrh switch( pExpr->op ){ 3021e05c929bSdrh case TK_IN: 302247de955eSdrh case TK_REGISTER: { 302333cd4909Sdrh return WRC_Prune; 3024678ccce8Sdrh } 302547de955eSdrh case TK_FUNCTION: 302647de955eSdrh case TK_AGG_FUNCTION: 302747de955eSdrh case TK_CONST_FUNC: { 302847de955eSdrh /* The arguments to a function have a fixed destination. 302947de955eSdrh ** Mark them this way to avoid generated unneeded OP_SCopy 303047de955eSdrh ** instructions. 303147de955eSdrh */ 30326ab3a2ecSdanielk1977 ExprList *pList = pExpr->x.pList; 30336ab3a2ecSdanielk1977 assert( !ExprHasProperty(pExpr, EP_xIsSelect) ); 303447de955eSdrh if( pList ){ 303547de955eSdrh int i = pList->nExpr; 303647de955eSdrh struct ExprList_item *pItem = pList->a; 303747de955eSdrh for(; i>0; i--, pItem++){ 303833cd4909Sdrh if( ALWAYS(pItem->pExpr) ) pItem->pExpr->flags |= EP_FixedDest; 303947de955eSdrh } 304047de955eSdrh } 304147de955eSdrh break; 304247de955eSdrh } 304347de955eSdrh } 304447de955eSdrh if( isAppropriateForFactoring(pExpr) ){ 3045678ccce8Sdrh int r1 = ++pParse->nMem; 3046678ccce8Sdrh int r2; 3047678ccce8Sdrh r2 = sqlite3ExprCodeTarget(pParse, pExpr, r1); 304833cd4909Sdrh if( NEVER(r1!=r2) ) sqlite3ReleaseTempReg(pParse, r1); 3049fcd4a150Sdan pExpr->op2 = pExpr->op; 3050678ccce8Sdrh pExpr->op = TK_REGISTER; 3051678ccce8Sdrh pExpr->iTable = r2; 30527d10d5a6Sdrh return WRC_Prune; 3053678ccce8Sdrh } 30547d10d5a6Sdrh return WRC_Continue; 3055678ccce8Sdrh } 3056678ccce8Sdrh 3057678ccce8Sdrh /* 3058678ccce8Sdrh ** Preevaluate constant subexpressions within pExpr and store the 3059678ccce8Sdrh ** results in registers. Modify pExpr so that the constant subexpresions 3060678ccce8Sdrh ** are TK_REGISTER opcodes that refer to the precomputed values. 3061678ccce8Sdrh */ 3062678ccce8Sdrh void sqlite3ExprCodeConstants(Parse *pParse, Expr *pExpr){ 30637d10d5a6Sdrh Walker w; 30647d10d5a6Sdrh w.xExprCallback = evalConstExpr; 30657d10d5a6Sdrh w.xSelectCallback = 0; 30667d10d5a6Sdrh w.pParse = pParse; 30677d10d5a6Sdrh sqlite3WalkExpr(&w, pExpr); 3068678ccce8Sdrh } 3069678ccce8Sdrh 307025303780Sdrh 307125303780Sdrh /* 3072268380caSdrh ** Generate code that pushes the value of every element of the given 30739cbf3425Sdrh ** expression list into a sequence of registers beginning at target. 3074268380caSdrh ** 3075892d3179Sdrh ** Return the number of elements evaluated. 3076268380caSdrh */ 30774adee20fSdanielk1977 int sqlite3ExprCodeExprList( 3078268380caSdrh Parse *pParse, /* Parsing context */ 3079389a1adbSdrh ExprList *pList, /* The expression list to be coded */ 3080191b54cbSdrh int target, /* Where to write results */ 3081d176611bSdrh int doHardCopy /* Make a hard copy of every element */ 3082268380caSdrh ){ 3083268380caSdrh struct ExprList_item *pItem; 30849cbf3425Sdrh int i, n; 30859d8b3072Sdrh assert( pList!=0 ); 30869cbf3425Sdrh assert( target>0 ); 3087268380caSdrh n = pList->nExpr; 3088191b54cbSdrh for(pItem=pList->a, i=0; i<n; i++, pItem++){ 30898b213899Sdrh if( pItem->iAlias ){ 309031daa63fSdrh int iReg = codeAlias(pParse, pItem->iAlias, pItem->pExpr, target+i); 30918b213899Sdrh Vdbe *v = sqlite3GetVdbe(pParse); 309231daa63fSdrh if( iReg!=target+i ){ 30938b213899Sdrh sqlite3VdbeAddOp2(v, OP_SCopy, iReg, target+i); 309431daa63fSdrh } 3095d176611bSdrh }else{ 3096191b54cbSdrh sqlite3ExprCode(pParse, pItem->pExpr, target+i); 30978b213899Sdrh } 309820411ea7Sdrh if( doHardCopy && !pParse->db->mallocFailed ){ 3099d176611bSdrh sqlite3ExprHardCopy(pParse, target, n); 3100d176611bSdrh } 3101268380caSdrh } 3102f9b596ebSdrh return n; 3103268380caSdrh } 3104268380caSdrh 3105268380caSdrh /* 310636c563a2Sdrh ** Generate code for a BETWEEN operator. 310736c563a2Sdrh ** 310836c563a2Sdrh ** x BETWEEN y AND z 310936c563a2Sdrh ** 311036c563a2Sdrh ** The above is equivalent to 311136c563a2Sdrh ** 311236c563a2Sdrh ** x>=y AND x<=z 311336c563a2Sdrh ** 311436c563a2Sdrh ** Code it as such, taking care to do the common subexpression 311536c563a2Sdrh ** elementation of x. 311636c563a2Sdrh */ 311736c563a2Sdrh static void exprCodeBetween( 311836c563a2Sdrh Parse *pParse, /* Parsing and code generating context */ 311936c563a2Sdrh Expr *pExpr, /* The BETWEEN expression */ 312036c563a2Sdrh int dest, /* Jump here if the jump is taken */ 312136c563a2Sdrh int jumpIfTrue, /* Take the jump if the BETWEEN is true */ 312236c563a2Sdrh int jumpIfNull /* Take the jump if the BETWEEN is NULL */ 312336c563a2Sdrh ){ 312436c563a2Sdrh Expr exprAnd; /* The AND operator in x>=y AND x<=z */ 312536c563a2Sdrh Expr compLeft; /* The x>=y term */ 312636c563a2Sdrh Expr compRight; /* The x<=z term */ 312736c563a2Sdrh Expr exprX; /* The x subexpression */ 312836c563a2Sdrh int regFree1 = 0; /* Temporary use register */ 312936c563a2Sdrh 313036c563a2Sdrh assert( !ExprHasProperty(pExpr, EP_xIsSelect) ); 313136c563a2Sdrh exprX = *pExpr->pLeft; 313236c563a2Sdrh exprAnd.op = TK_AND; 313336c563a2Sdrh exprAnd.pLeft = &compLeft; 313436c563a2Sdrh exprAnd.pRight = &compRight; 313536c563a2Sdrh compLeft.op = TK_GE; 313636c563a2Sdrh compLeft.pLeft = &exprX; 313736c563a2Sdrh compLeft.pRight = pExpr->x.pList->a[0].pExpr; 313836c563a2Sdrh compRight.op = TK_LE; 313936c563a2Sdrh compRight.pLeft = &exprX; 314036c563a2Sdrh compRight.pRight = pExpr->x.pList->a[1].pExpr; 314136c563a2Sdrh exprX.iTable = sqlite3ExprCodeTemp(pParse, &exprX, ®Free1); 314236c563a2Sdrh exprX.op = TK_REGISTER; 314336c563a2Sdrh if( jumpIfTrue ){ 314436c563a2Sdrh sqlite3ExprIfTrue(pParse, &exprAnd, dest, jumpIfNull); 314536c563a2Sdrh }else{ 314636c563a2Sdrh sqlite3ExprIfFalse(pParse, &exprAnd, dest, jumpIfNull); 314736c563a2Sdrh } 314836c563a2Sdrh sqlite3ReleaseTempReg(pParse, regFree1); 314936c563a2Sdrh 315036c563a2Sdrh /* Ensure adequate test coverage */ 315136c563a2Sdrh testcase( jumpIfTrue==0 && jumpIfNull==0 && regFree1==0 ); 315236c563a2Sdrh testcase( jumpIfTrue==0 && jumpIfNull==0 && regFree1!=0 ); 315336c563a2Sdrh testcase( jumpIfTrue==0 && jumpIfNull!=0 && regFree1==0 ); 315436c563a2Sdrh testcase( jumpIfTrue==0 && jumpIfNull!=0 && regFree1!=0 ); 315536c563a2Sdrh testcase( jumpIfTrue!=0 && jumpIfNull==0 && regFree1==0 ); 315636c563a2Sdrh testcase( jumpIfTrue!=0 && jumpIfNull==0 && regFree1!=0 ); 315736c563a2Sdrh testcase( jumpIfTrue!=0 && jumpIfNull!=0 && regFree1==0 ); 315836c563a2Sdrh testcase( jumpIfTrue!=0 && jumpIfNull!=0 && regFree1!=0 ); 315936c563a2Sdrh } 316036c563a2Sdrh 316136c563a2Sdrh /* 3162cce7d176Sdrh ** Generate code for a boolean expression such that a jump is made 3163cce7d176Sdrh ** to the label "dest" if the expression is true but execution 3164cce7d176Sdrh ** continues straight thru if the expression is false. 3165f5905aa7Sdrh ** 3166f5905aa7Sdrh ** If the expression evaluates to NULL (neither true nor false), then 316735573356Sdrh ** take the jump if the jumpIfNull flag is SQLITE_JUMPIFNULL. 3168f2bc013cSdrh ** 3169f2bc013cSdrh ** This code depends on the fact that certain token values (ex: TK_EQ) 3170f2bc013cSdrh ** are the same as opcode values (ex: OP_Eq) that implement the corresponding 3171f2bc013cSdrh ** operation. Special comments in vdbe.c and the mkopcodeh.awk script in 3172f2bc013cSdrh ** the make process cause these values to align. Assert()s in the code 3173f2bc013cSdrh ** below verify that the numbers are aligned correctly. 3174cce7d176Sdrh */ 31754adee20fSdanielk1977 void sqlite3ExprIfTrue(Parse *pParse, Expr *pExpr, int dest, int jumpIfNull){ 3176cce7d176Sdrh Vdbe *v = pParse->pVdbe; 3177cce7d176Sdrh int op = 0; 31782dcef11bSdrh int regFree1 = 0; 31792dcef11bSdrh int regFree2 = 0; 31802dcef11bSdrh int r1, r2; 31812dcef11bSdrh 318235573356Sdrh assert( jumpIfNull==SQLITE_JUMPIFNULL || jumpIfNull==0 ); 318333cd4909Sdrh if( NEVER(v==0) ) return; /* Existance of VDBE checked by caller */ 318433cd4909Sdrh if( NEVER(pExpr==0) ) return; /* No way this can happen */ 3185f2bc013cSdrh op = pExpr->op; 3186f2bc013cSdrh switch( op ){ 3187cce7d176Sdrh case TK_AND: { 31884adee20fSdanielk1977 int d2 = sqlite3VdbeMakeLabel(v); 3189c5499befSdrh testcase( jumpIfNull==0 ); 3190ceea3321Sdrh sqlite3ExprCachePush(pParse); 319135573356Sdrh sqlite3ExprIfFalse(pParse, pExpr->pLeft, d2,jumpIfNull^SQLITE_JUMPIFNULL); 31924adee20fSdanielk1977 sqlite3ExprIfTrue(pParse, pExpr->pRight, dest, jumpIfNull); 31934adee20fSdanielk1977 sqlite3VdbeResolveLabel(v, d2); 3194ceea3321Sdrh sqlite3ExprCachePop(pParse, 1); 3195cce7d176Sdrh break; 3196cce7d176Sdrh } 3197cce7d176Sdrh case TK_OR: { 3198c5499befSdrh testcase( jumpIfNull==0 ); 31994adee20fSdanielk1977 sqlite3ExprIfTrue(pParse, pExpr->pLeft, dest, jumpIfNull); 32004adee20fSdanielk1977 sqlite3ExprIfTrue(pParse, pExpr->pRight, dest, jumpIfNull); 3201cce7d176Sdrh break; 3202cce7d176Sdrh } 3203cce7d176Sdrh case TK_NOT: { 3204c5499befSdrh testcase( jumpIfNull==0 ); 32054adee20fSdanielk1977 sqlite3ExprIfFalse(pParse, pExpr->pLeft, dest, jumpIfNull); 3206cce7d176Sdrh break; 3207cce7d176Sdrh } 3208cce7d176Sdrh case TK_LT: 3209cce7d176Sdrh case TK_LE: 3210cce7d176Sdrh case TK_GT: 3211cce7d176Sdrh case TK_GE: 3212cce7d176Sdrh case TK_NE: 32130ac65892Sdrh case TK_EQ: { 3214f2bc013cSdrh assert( TK_LT==OP_Lt ); 3215f2bc013cSdrh assert( TK_LE==OP_Le ); 3216f2bc013cSdrh assert( TK_GT==OP_Gt ); 3217f2bc013cSdrh assert( TK_GE==OP_Ge ); 3218f2bc013cSdrh assert( TK_EQ==OP_Eq ); 3219f2bc013cSdrh assert( TK_NE==OP_Ne ); 3220c5499befSdrh testcase( op==TK_LT ); 3221c5499befSdrh testcase( op==TK_LE ); 3222c5499befSdrh testcase( op==TK_GT ); 3223c5499befSdrh testcase( op==TK_GE ); 3224c5499befSdrh testcase( op==TK_EQ ); 3225c5499befSdrh testcase( op==TK_NE ); 3226c5499befSdrh testcase( jumpIfNull==0 ); 3227da250ea5Sdrh codeCompareOperands(pParse, pExpr->pLeft, &r1, ®Free1, 3228da250ea5Sdrh pExpr->pRight, &r2, ®Free2); 322935573356Sdrh codeCompare(pParse, pExpr->pLeft, pExpr->pRight, op, 32302dcef11bSdrh r1, r2, dest, jumpIfNull); 3231c5499befSdrh testcase( regFree1==0 ); 3232c5499befSdrh testcase( regFree2==0 ); 3233cce7d176Sdrh break; 3234cce7d176Sdrh } 32356a2fe093Sdrh case TK_IS: 32366a2fe093Sdrh case TK_ISNOT: { 32376a2fe093Sdrh testcase( op==TK_IS ); 32386a2fe093Sdrh testcase( op==TK_ISNOT ); 32396a2fe093Sdrh codeCompareOperands(pParse, pExpr->pLeft, &r1, ®Free1, 32406a2fe093Sdrh pExpr->pRight, &r2, ®Free2); 32416a2fe093Sdrh op = (op==TK_IS) ? TK_EQ : TK_NE; 32426a2fe093Sdrh codeCompare(pParse, pExpr->pLeft, pExpr->pRight, op, 32436a2fe093Sdrh r1, r2, dest, SQLITE_NULLEQ); 32446a2fe093Sdrh testcase( regFree1==0 ); 32456a2fe093Sdrh testcase( regFree2==0 ); 32466a2fe093Sdrh break; 32476a2fe093Sdrh } 3248cce7d176Sdrh case TK_ISNULL: 3249cce7d176Sdrh case TK_NOTNULL: { 3250f2bc013cSdrh assert( TK_ISNULL==OP_IsNull ); 3251f2bc013cSdrh assert( TK_NOTNULL==OP_NotNull ); 3252c5499befSdrh testcase( op==TK_ISNULL ); 3253c5499befSdrh testcase( op==TK_NOTNULL ); 32542dcef11bSdrh r1 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, ®Free1); 32552dcef11bSdrh sqlite3VdbeAddOp2(v, op, r1, dest); 3256c5499befSdrh testcase( regFree1==0 ); 3257cce7d176Sdrh break; 3258cce7d176Sdrh } 3259fef5208cSdrh case TK_BETWEEN: { 32605c03f30aSdrh testcase( jumpIfNull==0 ); 326136c563a2Sdrh exprCodeBetween(pParse, pExpr, dest, 1, jumpIfNull); 3262fef5208cSdrh break; 3263fef5208cSdrh } 3264e3365e6cSdrh case TK_IN: { 3265e3365e6cSdrh int destIfFalse = sqlite3VdbeMakeLabel(v); 3266e3365e6cSdrh int destIfNull = jumpIfNull ? dest : destIfFalse; 3267e3365e6cSdrh sqlite3ExprCodeIN(pParse, pExpr, destIfFalse, destIfNull); 3268e3365e6cSdrh sqlite3VdbeAddOp2(v, OP_Goto, 0, dest); 3269e3365e6cSdrh sqlite3VdbeResolveLabel(v, destIfFalse); 3270e3365e6cSdrh break; 3271e3365e6cSdrh } 3272cce7d176Sdrh default: { 32732dcef11bSdrh r1 = sqlite3ExprCodeTemp(pParse, pExpr, ®Free1); 32742dcef11bSdrh sqlite3VdbeAddOp3(v, OP_If, r1, dest, jumpIfNull!=0); 3275c5499befSdrh testcase( regFree1==0 ); 3276c5499befSdrh testcase( jumpIfNull==0 ); 3277cce7d176Sdrh break; 3278cce7d176Sdrh } 3279cce7d176Sdrh } 32802dcef11bSdrh sqlite3ReleaseTempReg(pParse, regFree1); 32812dcef11bSdrh sqlite3ReleaseTempReg(pParse, regFree2); 3282cce7d176Sdrh } 3283cce7d176Sdrh 3284cce7d176Sdrh /* 328566b89c8fSdrh ** Generate code for a boolean expression such that a jump is made 3286cce7d176Sdrh ** to the label "dest" if the expression is false but execution 3287cce7d176Sdrh ** continues straight thru if the expression is true. 3288f5905aa7Sdrh ** 3289f5905aa7Sdrh ** If the expression evaluates to NULL (neither true nor false) then 329035573356Sdrh ** jump if jumpIfNull is SQLITE_JUMPIFNULL or fall through if jumpIfNull 329135573356Sdrh ** is 0. 3292cce7d176Sdrh */ 32934adee20fSdanielk1977 void sqlite3ExprIfFalse(Parse *pParse, Expr *pExpr, int dest, int jumpIfNull){ 3294cce7d176Sdrh Vdbe *v = pParse->pVdbe; 3295cce7d176Sdrh int op = 0; 32962dcef11bSdrh int regFree1 = 0; 32972dcef11bSdrh int regFree2 = 0; 32982dcef11bSdrh int r1, r2; 32992dcef11bSdrh 330035573356Sdrh assert( jumpIfNull==SQLITE_JUMPIFNULL || jumpIfNull==0 ); 330133cd4909Sdrh if( NEVER(v==0) ) return; /* Existance of VDBE checked by caller */ 330233cd4909Sdrh if( pExpr==0 ) return; 3303f2bc013cSdrh 3304f2bc013cSdrh /* The value of pExpr->op and op are related as follows: 3305f2bc013cSdrh ** 3306f2bc013cSdrh ** pExpr->op op 3307f2bc013cSdrh ** --------- ---------- 3308f2bc013cSdrh ** TK_ISNULL OP_NotNull 3309f2bc013cSdrh ** TK_NOTNULL OP_IsNull 3310f2bc013cSdrh ** TK_NE OP_Eq 3311f2bc013cSdrh ** TK_EQ OP_Ne 3312f2bc013cSdrh ** TK_GT OP_Le 3313f2bc013cSdrh ** TK_LE OP_Gt 3314f2bc013cSdrh ** TK_GE OP_Lt 3315f2bc013cSdrh ** TK_LT OP_Ge 3316f2bc013cSdrh ** 3317f2bc013cSdrh ** For other values of pExpr->op, op is undefined and unused. 3318f2bc013cSdrh ** The value of TK_ and OP_ constants are arranged such that we 3319f2bc013cSdrh ** can compute the mapping above using the following expression. 3320f2bc013cSdrh ** Assert()s verify that the computation is correct. 3321f2bc013cSdrh */ 3322f2bc013cSdrh op = ((pExpr->op+(TK_ISNULL&1))^1)-(TK_ISNULL&1); 3323f2bc013cSdrh 3324f2bc013cSdrh /* Verify correct alignment of TK_ and OP_ constants 3325f2bc013cSdrh */ 3326f2bc013cSdrh assert( pExpr->op!=TK_ISNULL || op==OP_NotNull ); 3327f2bc013cSdrh assert( pExpr->op!=TK_NOTNULL || op==OP_IsNull ); 3328f2bc013cSdrh assert( pExpr->op!=TK_NE || op==OP_Eq ); 3329f2bc013cSdrh assert( pExpr->op!=TK_EQ || op==OP_Ne ); 3330f2bc013cSdrh assert( pExpr->op!=TK_LT || op==OP_Ge ); 3331f2bc013cSdrh assert( pExpr->op!=TK_LE || op==OP_Gt ); 3332f2bc013cSdrh assert( pExpr->op!=TK_GT || op==OP_Le ); 3333f2bc013cSdrh assert( pExpr->op!=TK_GE || op==OP_Lt ); 3334f2bc013cSdrh 3335cce7d176Sdrh switch( pExpr->op ){ 3336cce7d176Sdrh case TK_AND: { 3337c5499befSdrh testcase( jumpIfNull==0 ); 33384adee20fSdanielk1977 sqlite3ExprIfFalse(pParse, pExpr->pLeft, dest, jumpIfNull); 33394adee20fSdanielk1977 sqlite3ExprIfFalse(pParse, pExpr->pRight, dest, jumpIfNull); 3340cce7d176Sdrh break; 3341cce7d176Sdrh } 3342cce7d176Sdrh case TK_OR: { 33434adee20fSdanielk1977 int d2 = sqlite3VdbeMakeLabel(v); 3344c5499befSdrh testcase( jumpIfNull==0 ); 3345ceea3321Sdrh sqlite3ExprCachePush(pParse); 334635573356Sdrh sqlite3ExprIfTrue(pParse, pExpr->pLeft, d2, jumpIfNull^SQLITE_JUMPIFNULL); 33474adee20fSdanielk1977 sqlite3ExprIfFalse(pParse, pExpr->pRight, dest, jumpIfNull); 33484adee20fSdanielk1977 sqlite3VdbeResolveLabel(v, d2); 3349ceea3321Sdrh sqlite3ExprCachePop(pParse, 1); 3350cce7d176Sdrh break; 3351cce7d176Sdrh } 3352cce7d176Sdrh case TK_NOT: { 33535c03f30aSdrh testcase( jumpIfNull==0 ); 33544adee20fSdanielk1977 sqlite3ExprIfTrue(pParse, pExpr->pLeft, dest, jumpIfNull); 3355cce7d176Sdrh break; 3356cce7d176Sdrh } 3357cce7d176Sdrh case TK_LT: 3358cce7d176Sdrh case TK_LE: 3359cce7d176Sdrh case TK_GT: 3360cce7d176Sdrh case TK_GE: 3361cce7d176Sdrh case TK_NE: 3362cce7d176Sdrh case TK_EQ: { 3363c5499befSdrh testcase( op==TK_LT ); 3364c5499befSdrh testcase( op==TK_LE ); 3365c5499befSdrh testcase( op==TK_GT ); 3366c5499befSdrh testcase( op==TK_GE ); 3367c5499befSdrh testcase( op==TK_EQ ); 3368c5499befSdrh testcase( op==TK_NE ); 3369c5499befSdrh testcase( jumpIfNull==0 ); 3370da250ea5Sdrh codeCompareOperands(pParse, pExpr->pLeft, &r1, ®Free1, 3371da250ea5Sdrh pExpr->pRight, &r2, ®Free2); 337235573356Sdrh codeCompare(pParse, pExpr->pLeft, pExpr->pRight, op, 33732dcef11bSdrh r1, r2, dest, jumpIfNull); 3374c5499befSdrh testcase( regFree1==0 ); 3375c5499befSdrh testcase( regFree2==0 ); 3376cce7d176Sdrh break; 3377cce7d176Sdrh } 33786a2fe093Sdrh case TK_IS: 33796a2fe093Sdrh case TK_ISNOT: { 33806d4486aeSdrh testcase( pExpr->op==TK_IS ); 33816d4486aeSdrh testcase( pExpr->op==TK_ISNOT ); 33826a2fe093Sdrh codeCompareOperands(pParse, pExpr->pLeft, &r1, ®Free1, 33836a2fe093Sdrh pExpr->pRight, &r2, ®Free2); 33846a2fe093Sdrh op = (pExpr->op==TK_IS) ? TK_NE : TK_EQ; 33856a2fe093Sdrh codeCompare(pParse, pExpr->pLeft, pExpr->pRight, op, 33866a2fe093Sdrh r1, r2, dest, SQLITE_NULLEQ); 33876a2fe093Sdrh testcase( regFree1==0 ); 33886a2fe093Sdrh testcase( regFree2==0 ); 33896a2fe093Sdrh break; 33906a2fe093Sdrh } 3391cce7d176Sdrh case TK_ISNULL: 3392cce7d176Sdrh case TK_NOTNULL: { 3393c5499befSdrh testcase( op==TK_ISNULL ); 3394c5499befSdrh testcase( op==TK_NOTNULL ); 33952dcef11bSdrh r1 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, ®Free1); 33962dcef11bSdrh sqlite3VdbeAddOp2(v, op, r1, dest); 3397c5499befSdrh testcase( regFree1==0 ); 3398cce7d176Sdrh break; 3399cce7d176Sdrh } 3400fef5208cSdrh case TK_BETWEEN: { 34015c03f30aSdrh testcase( jumpIfNull==0 ); 340236c563a2Sdrh exprCodeBetween(pParse, pExpr, dest, 0, jumpIfNull); 3403fef5208cSdrh break; 3404fef5208cSdrh } 3405e3365e6cSdrh case TK_IN: { 3406e3365e6cSdrh if( jumpIfNull ){ 3407e3365e6cSdrh sqlite3ExprCodeIN(pParse, pExpr, dest, dest); 3408e3365e6cSdrh }else{ 3409e3365e6cSdrh int destIfNull = sqlite3VdbeMakeLabel(v); 3410e3365e6cSdrh sqlite3ExprCodeIN(pParse, pExpr, dest, destIfNull); 3411e3365e6cSdrh sqlite3VdbeResolveLabel(v, destIfNull); 3412e3365e6cSdrh } 3413e3365e6cSdrh break; 3414e3365e6cSdrh } 3415cce7d176Sdrh default: { 34162dcef11bSdrh r1 = sqlite3ExprCodeTemp(pParse, pExpr, ®Free1); 34172dcef11bSdrh sqlite3VdbeAddOp3(v, OP_IfNot, r1, dest, jumpIfNull!=0); 3418c5499befSdrh testcase( regFree1==0 ); 3419c5499befSdrh testcase( jumpIfNull==0 ); 3420cce7d176Sdrh break; 3421cce7d176Sdrh } 3422cce7d176Sdrh } 34232dcef11bSdrh sqlite3ReleaseTempReg(pParse, regFree1); 34242dcef11bSdrh sqlite3ReleaseTempReg(pParse, regFree2); 3425cce7d176Sdrh } 34262282792aSdrh 34272282792aSdrh /* 34282282792aSdrh ** Do a deep comparison of two expression trees. Return TRUE (non-zero) 34292282792aSdrh ** if they are identical and return FALSE if they differ in any way. 3430d40aab0eSdrh ** 3431d40aab0eSdrh ** Sometimes this routine will return FALSE even if the two expressions 3432d40aab0eSdrh ** really are equivalent. If we cannot prove that the expressions are 3433d40aab0eSdrh ** identical, we return FALSE just to be safe. So if this routine 3434d40aab0eSdrh ** returns false, then you do not really know for certain if the two 3435d40aab0eSdrh ** expressions are the same. But if you get a TRUE return, then you 3436d40aab0eSdrh ** can be sure the expressions are the same. In the places where 3437d40aab0eSdrh ** this routine is used, it does not hurt to get an extra FALSE - that 3438d40aab0eSdrh ** just might result in some slightly slower code. But returning 3439d40aab0eSdrh ** an incorrect TRUE could lead to a malfunction. 34402282792aSdrh */ 34414adee20fSdanielk1977 int sqlite3ExprCompare(Expr *pA, Expr *pB){ 34422282792aSdrh int i; 34434b202ae2Sdanielk1977 if( pA==0||pB==0 ){ 34444b202ae2Sdanielk1977 return pB==pA; 34452282792aSdrh } 344633e619fcSdrh assert( !ExprHasAnyProperty(pA, EP_TokenOnly|EP_Reduced) ); 344733e619fcSdrh assert( !ExprHasAnyProperty(pB, EP_TokenOnly|EP_Reduced) ); 34486ab3a2ecSdanielk1977 if( ExprHasProperty(pA, EP_xIsSelect) || ExprHasProperty(pB, EP_xIsSelect) ){ 34496ab3a2ecSdanielk1977 return 0; 34506ab3a2ecSdanielk1977 } 3451fd357974Sdrh if( (pA->flags & EP_Distinct)!=(pB->flags & EP_Distinct) ) return 0; 34526ab3a2ecSdanielk1977 if( pA->op!=pB->op ) return 0; 34534adee20fSdanielk1977 if( !sqlite3ExprCompare(pA->pLeft, pB->pLeft) ) return 0; 34544adee20fSdanielk1977 if( !sqlite3ExprCompare(pA->pRight, pB->pRight) ) return 0; 34556ab3a2ecSdanielk1977 34566ab3a2ecSdanielk1977 if( pA->x.pList && pB->x.pList ){ 34576ab3a2ecSdanielk1977 if( pA->x.pList->nExpr!=pB->x.pList->nExpr ) return 0; 34586ab3a2ecSdanielk1977 for(i=0; i<pA->x.pList->nExpr; i++){ 34596ab3a2ecSdanielk1977 Expr *pExprA = pA->x.pList->a[i].pExpr; 34606ab3a2ecSdanielk1977 Expr *pExprB = pB->x.pList->a[i].pExpr; 34616ab3a2ecSdanielk1977 if( !sqlite3ExprCompare(pExprA, pExprB) ) return 0; 34626ab3a2ecSdanielk1977 } 34636ab3a2ecSdanielk1977 }else if( pA->x.pList || pB->x.pList ){ 34642282792aSdrh return 0; 34652282792aSdrh } 34666ab3a2ecSdanielk1977 34672f2c01e5Sdrh if( pA->iTable!=pB->iTable || pA->iColumn!=pB->iColumn ) return 0; 346833e619fcSdrh if( ExprHasProperty(pA, EP_IntValue) ){ 346933e619fcSdrh if( !ExprHasProperty(pB, EP_IntValue) || pA->u.iValue!=pB->u.iValue ){ 347033e619fcSdrh return 0; 347133e619fcSdrh } 347233e619fcSdrh }else if( pA->op!=TK_COLUMN && pA->u.zToken ){ 347320bc393cSdrh if( ExprHasProperty(pB, EP_IntValue) || NEVER(pB->u.zToken==0) ) return 0; 347433e619fcSdrh if( sqlite3StrICmp(pA->u.zToken,pB->u.zToken)!=0 ){ 34752646da7eSdrh return 0; 34762646da7eSdrh } 34772282792aSdrh } 34782282792aSdrh return 1; 34792282792aSdrh } 34802282792aSdrh 348113449892Sdrh 34822282792aSdrh /* 348313449892Sdrh ** Add a new element to the pAggInfo->aCol[] array. Return the index of 348413449892Sdrh ** the new element. Return a negative number if malloc fails. 34852282792aSdrh */ 348617435752Sdrh static int addAggInfoColumn(sqlite3 *db, AggInfo *pInfo){ 348713449892Sdrh int i; 3488cf643729Sdrh pInfo->aCol = sqlite3ArrayAllocate( 348917435752Sdrh db, 3490cf643729Sdrh pInfo->aCol, 3491cf643729Sdrh sizeof(pInfo->aCol[0]), 3492cf643729Sdrh 3, 3493cf643729Sdrh &pInfo->nColumn, 3494cf643729Sdrh &pInfo->nColumnAlloc, 3495cf643729Sdrh &i 3496cf643729Sdrh ); 349713449892Sdrh return i; 34982282792aSdrh } 349913449892Sdrh 350013449892Sdrh /* 350113449892Sdrh ** Add a new element to the pAggInfo->aFunc[] array. Return the index of 350213449892Sdrh ** the new element. Return a negative number if malloc fails. 350313449892Sdrh */ 350417435752Sdrh static int addAggInfoFunc(sqlite3 *db, AggInfo *pInfo){ 350513449892Sdrh int i; 3506cf643729Sdrh pInfo->aFunc = sqlite3ArrayAllocate( 350717435752Sdrh db, 3508cf643729Sdrh pInfo->aFunc, 3509cf643729Sdrh sizeof(pInfo->aFunc[0]), 3510cf643729Sdrh 3, 3511cf643729Sdrh &pInfo->nFunc, 3512cf643729Sdrh &pInfo->nFuncAlloc, 3513cf643729Sdrh &i 3514cf643729Sdrh ); 351513449892Sdrh return i; 35162282792aSdrh } 35172282792aSdrh 35182282792aSdrh /* 35197d10d5a6Sdrh ** This is the xExprCallback for a tree walker. It is used to 35207d10d5a6Sdrh ** implement sqlite3ExprAnalyzeAggregates(). See sqlite3ExprAnalyzeAggregates 3521626a879aSdrh ** for additional information. 35222282792aSdrh */ 35237d10d5a6Sdrh static int analyzeAggregate(Walker *pWalker, Expr *pExpr){ 35242282792aSdrh int i; 35257d10d5a6Sdrh NameContext *pNC = pWalker->u.pNC; 3526a58fdfb1Sdanielk1977 Parse *pParse = pNC->pParse; 3527a58fdfb1Sdanielk1977 SrcList *pSrcList = pNC->pSrcList; 352813449892Sdrh AggInfo *pAggInfo = pNC->pAggInfo; 352913449892Sdrh 35302282792aSdrh switch( pExpr->op ){ 353189c69d00Sdrh case TK_AGG_COLUMN: 3532967e8b73Sdrh case TK_COLUMN: { 35338b213899Sdrh testcase( pExpr->op==TK_AGG_COLUMN ); 35348b213899Sdrh testcase( pExpr->op==TK_COLUMN ); 353513449892Sdrh /* Check to see if the column is in one of the tables in the FROM 353613449892Sdrh ** clause of the aggregate query */ 353720bc393cSdrh if( ALWAYS(pSrcList!=0) ){ 353813449892Sdrh struct SrcList_item *pItem = pSrcList->a; 353913449892Sdrh for(i=0; i<pSrcList->nSrc; i++, pItem++){ 354013449892Sdrh struct AggInfo_col *pCol; 354133e619fcSdrh assert( !ExprHasAnyProperty(pExpr, EP_TokenOnly|EP_Reduced) ); 354213449892Sdrh if( pExpr->iTable==pItem->iCursor ){ 354313449892Sdrh /* If we reach this point, it means that pExpr refers to a table 354413449892Sdrh ** that is in the FROM clause of the aggregate query. 354513449892Sdrh ** 354613449892Sdrh ** Make an entry for the column in pAggInfo->aCol[] if there 354713449892Sdrh ** is not an entry there already. 354813449892Sdrh */ 35497f906d63Sdrh int k; 355013449892Sdrh pCol = pAggInfo->aCol; 35517f906d63Sdrh for(k=0; k<pAggInfo->nColumn; k++, pCol++){ 355213449892Sdrh if( pCol->iTable==pExpr->iTable && 355313449892Sdrh pCol->iColumn==pExpr->iColumn ){ 35542282792aSdrh break; 35552282792aSdrh } 35562282792aSdrh } 35571e536953Sdanielk1977 if( (k>=pAggInfo->nColumn) 35581e536953Sdanielk1977 && (k = addAggInfoColumn(pParse->db, pAggInfo))>=0 35591e536953Sdanielk1977 ){ 35607f906d63Sdrh pCol = &pAggInfo->aCol[k]; 35610817d0dfSdanielk1977 pCol->pTab = pExpr->pTab; 356213449892Sdrh pCol->iTable = pExpr->iTable; 356313449892Sdrh pCol->iColumn = pExpr->iColumn; 35640a07c107Sdrh pCol->iMem = ++pParse->nMem; 356513449892Sdrh pCol->iSorterColumn = -1; 35665774b806Sdrh pCol->pExpr = pExpr; 356713449892Sdrh if( pAggInfo->pGroupBy ){ 356813449892Sdrh int j, n; 356913449892Sdrh ExprList *pGB = pAggInfo->pGroupBy; 357013449892Sdrh struct ExprList_item *pTerm = pGB->a; 357113449892Sdrh n = pGB->nExpr; 357213449892Sdrh for(j=0; j<n; j++, pTerm++){ 357313449892Sdrh Expr *pE = pTerm->pExpr; 357413449892Sdrh if( pE->op==TK_COLUMN && pE->iTable==pExpr->iTable && 357513449892Sdrh pE->iColumn==pExpr->iColumn ){ 357613449892Sdrh pCol->iSorterColumn = j; 357713449892Sdrh break; 35782282792aSdrh } 357913449892Sdrh } 358013449892Sdrh } 358113449892Sdrh if( pCol->iSorterColumn<0 ){ 358213449892Sdrh pCol->iSorterColumn = pAggInfo->nSortingColumn++; 358313449892Sdrh } 358413449892Sdrh } 358513449892Sdrh /* There is now an entry for pExpr in pAggInfo->aCol[] (either 358613449892Sdrh ** because it was there before or because we just created it). 358713449892Sdrh ** Convert the pExpr to be a TK_AGG_COLUMN referring to that 358813449892Sdrh ** pAggInfo->aCol[] entry. 358913449892Sdrh */ 359033e619fcSdrh ExprSetIrreducible(pExpr); 359113449892Sdrh pExpr->pAggInfo = pAggInfo; 359213449892Sdrh pExpr->op = TK_AGG_COLUMN; 3593cf697396Sshane pExpr->iAgg = (i16)k; 359413449892Sdrh break; 359513449892Sdrh } /* endif pExpr->iTable==pItem->iCursor */ 359613449892Sdrh } /* end loop over pSrcList */ 3597a58fdfb1Sdanielk1977 } 35987d10d5a6Sdrh return WRC_Prune; 35992282792aSdrh } 36002282792aSdrh case TK_AGG_FUNCTION: { 360113449892Sdrh /* The pNC->nDepth==0 test causes aggregate functions in subqueries 360213449892Sdrh ** to be ignored */ 3603a58fdfb1Sdanielk1977 if( pNC->nDepth==0 ){ 360413449892Sdrh /* Check to see if pExpr is a duplicate of another aggregate 360513449892Sdrh ** function that is already in the pAggInfo structure 360613449892Sdrh */ 360713449892Sdrh struct AggInfo_func *pItem = pAggInfo->aFunc; 360813449892Sdrh for(i=0; i<pAggInfo->nFunc; i++, pItem++){ 360913449892Sdrh if( sqlite3ExprCompare(pItem->pExpr, pExpr) ){ 36102282792aSdrh break; 36112282792aSdrh } 36122282792aSdrh } 361313449892Sdrh if( i>=pAggInfo->nFunc ){ 361413449892Sdrh /* pExpr is original. Make a new entry in pAggInfo->aFunc[] 361513449892Sdrh */ 361614db2665Sdanielk1977 u8 enc = ENC(pParse->db); 36171e536953Sdanielk1977 i = addAggInfoFunc(pParse->db, pAggInfo); 361813449892Sdrh if( i>=0 ){ 36196ab3a2ecSdanielk1977 assert( !ExprHasProperty(pExpr, EP_xIsSelect) ); 362013449892Sdrh pItem = &pAggInfo->aFunc[i]; 362113449892Sdrh pItem->pExpr = pExpr; 36220a07c107Sdrh pItem->iMem = ++pParse->nMem; 362333e619fcSdrh assert( !ExprHasProperty(pExpr, EP_IntValue) ); 362413449892Sdrh pItem->pFunc = sqlite3FindFunction(pParse->db, 362533e619fcSdrh pExpr->u.zToken, sqlite3Strlen30(pExpr->u.zToken), 36266ab3a2ecSdanielk1977 pExpr->x.pList ? pExpr->x.pList->nExpr : 0, enc, 0); 3627fd357974Sdrh if( pExpr->flags & EP_Distinct ){ 3628fd357974Sdrh pItem->iDistinct = pParse->nTab++; 3629fd357974Sdrh }else{ 3630fd357974Sdrh pItem->iDistinct = -1; 3631fd357974Sdrh } 36322282792aSdrh } 363313449892Sdrh } 363413449892Sdrh /* Make pExpr point to the appropriate pAggInfo->aFunc[] entry 363513449892Sdrh */ 363633e619fcSdrh assert( !ExprHasAnyProperty(pExpr, EP_TokenOnly|EP_Reduced) ); 363733e619fcSdrh ExprSetIrreducible(pExpr); 3638cf697396Sshane pExpr->iAgg = (i16)i; 363913449892Sdrh pExpr->pAggInfo = pAggInfo; 36407d10d5a6Sdrh return WRC_Prune; 36412282792aSdrh } 36422282792aSdrh } 3643a58fdfb1Sdanielk1977 } 36447d10d5a6Sdrh return WRC_Continue; 36457d10d5a6Sdrh } 36467d10d5a6Sdrh static int analyzeAggregatesInSelect(Walker *pWalker, Select *pSelect){ 36477d10d5a6Sdrh NameContext *pNC = pWalker->u.pNC; 36487d10d5a6Sdrh if( pNC->nDepth==0 ){ 3649a58fdfb1Sdanielk1977 pNC->nDepth++; 36507d10d5a6Sdrh sqlite3WalkSelect(pWalker, pSelect); 3651a58fdfb1Sdanielk1977 pNC->nDepth--; 36527d10d5a6Sdrh return WRC_Prune; 36537d10d5a6Sdrh }else{ 36547d10d5a6Sdrh return WRC_Continue; 3655a58fdfb1Sdanielk1977 } 36562282792aSdrh } 3657626a879aSdrh 3658626a879aSdrh /* 3659626a879aSdrh ** Analyze the given expression looking for aggregate functions and 3660626a879aSdrh ** for variables that need to be added to the pParse->aAgg[] array. 3661626a879aSdrh ** Make additional entries to the pParse->aAgg[] array as necessary. 3662626a879aSdrh ** 3663626a879aSdrh ** This routine should only be called after the expression has been 36647d10d5a6Sdrh ** analyzed by sqlite3ResolveExprNames(). 3665626a879aSdrh */ 3666d2b3e23bSdrh void sqlite3ExprAnalyzeAggregates(NameContext *pNC, Expr *pExpr){ 36677d10d5a6Sdrh Walker w; 36687d10d5a6Sdrh w.xExprCallback = analyzeAggregate; 36697d10d5a6Sdrh w.xSelectCallback = analyzeAggregatesInSelect; 36707d10d5a6Sdrh w.u.pNC = pNC; 367120bc393cSdrh assert( pNC->pSrcList!=0 ); 36727d10d5a6Sdrh sqlite3WalkExpr(&w, pExpr); 36732282792aSdrh } 36745d9a4af9Sdrh 36755d9a4af9Sdrh /* 36765d9a4af9Sdrh ** Call sqlite3ExprAnalyzeAggregates() for every expression in an 36775d9a4af9Sdrh ** expression list. Return the number of errors. 36785d9a4af9Sdrh ** 36795d9a4af9Sdrh ** If an error is found, the analysis is cut short. 36805d9a4af9Sdrh */ 3681d2b3e23bSdrh void sqlite3ExprAnalyzeAggList(NameContext *pNC, ExprList *pList){ 36825d9a4af9Sdrh struct ExprList_item *pItem; 36835d9a4af9Sdrh int i; 36845d9a4af9Sdrh if( pList ){ 3685d2b3e23bSdrh for(pItem=pList->a, i=0; i<pList->nExpr; i++, pItem++){ 3686d2b3e23bSdrh sqlite3ExprAnalyzeAggregates(pNC, pItem->pExpr); 36875d9a4af9Sdrh } 36885d9a4af9Sdrh } 36895d9a4af9Sdrh } 3690892d3179Sdrh 3691892d3179Sdrh /* 3692ceea3321Sdrh ** Allocate a single new register for use to hold some intermediate result. 3693892d3179Sdrh */ 3694892d3179Sdrh int sqlite3GetTempReg(Parse *pParse){ 3695e55cbd72Sdrh if( pParse->nTempReg==0 ){ 3696892d3179Sdrh return ++pParse->nMem; 3697892d3179Sdrh } 36982f425f6bSdanielk1977 return pParse->aTempReg[--pParse->nTempReg]; 3699892d3179Sdrh } 3700ceea3321Sdrh 3701ceea3321Sdrh /* 3702ceea3321Sdrh ** Deallocate a register, making available for reuse for some other 3703ceea3321Sdrh ** purpose. 3704ceea3321Sdrh ** 3705ceea3321Sdrh ** If a register is currently being used by the column cache, then 3706ceea3321Sdrh ** the dallocation is deferred until the column cache line that uses 3707ceea3321Sdrh ** the register becomes stale. 3708ceea3321Sdrh */ 3709892d3179Sdrh void sqlite3ReleaseTempReg(Parse *pParse, int iReg){ 37102dcef11bSdrh if( iReg && pParse->nTempReg<ArraySize(pParse->aTempReg) ){ 3711ceea3321Sdrh int i; 3712ceea3321Sdrh struct yColCache *p; 3713ceea3321Sdrh for(i=0, p=pParse->aColCache; i<SQLITE_N_COLCACHE; i++, p++){ 3714ceea3321Sdrh if( p->iReg==iReg ){ 3715ceea3321Sdrh p->tempReg = 1; 3716ceea3321Sdrh return; 3717ceea3321Sdrh } 3718ceea3321Sdrh } 3719892d3179Sdrh pParse->aTempReg[pParse->nTempReg++] = iReg; 3720892d3179Sdrh } 3721892d3179Sdrh } 3722892d3179Sdrh 3723892d3179Sdrh /* 3724892d3179Sdrh ** Allocate or deallocate a block of nReg consecutive registers 3725892d3179Sdrh */ 3726892d3179Sdrh int sqlite3GetTempRange(Parse *pParse, int nReg){ 3727e55cbd72Sdrh int i, n; 3728892d3179Sdrh i = pParse->iRangeReg; 3729e55cbd72Sdrh n = pParse->nRangeReg; 3730e55cbd72Sdrh if( nReg<=n && !usedAsColumnCache(pParse, i, i+n-1) ){ 3731892d3179Sdrh pParse->iRangeReg += nReg; 3732892d3179Sdrh pParse->nRangeReg -= nReg; 3733892d3179Sdrh }else{ 3734892d3179Sdrh i = pParse->nMem+1; 3735892d3179Sdrh pParse->nMem += nReg; 3736892d3179Sdrh } 3737892d3179Sdrh return i; 3738892d3179Sdrh } 3739892d3179Sdrh void sqlite3ReleaseTempRange(Parse *pParse, int iReg, int nReg){ 3740892d3179Sdrh if( nReg>pParse->nRangeReg ){ 3741892d3179Sdrh pParse->nRangeReg = nReg; 3742892d3179Sdrh pParse->iRangeReg = iReg; 3743892d3179Sdrh } 3744892d3179Sdrh } 3745