modernc.org/cc@v1.0.1/v2/testdata/_sqlite/src/expr.c (about)

     1  /*
     2  ** 2001 September 15
     3  **
     4  ** The author disclaims copyright to this source code.  In place of
     5  ** a legal notice, here is a blessing:
     6  **
     7  **    May you do good and not evil.
     8  **    May you find forgiveness for yourself and forgive others.
     9  **    May you share freely, never taking more than you give.
    10  **
    11  *************************************************************************
    12  ** This file contains routines used for analyzing expressions and
    13  ** for generating VDBE code that evaluates expressions in SQLite.
    14  */
    15  #include "sqliteInt.h"
    16  
    17  /* Forward declarations */
    18  static void exprCodeBetween(Parse*,Expr*,int,void(*)(Parse*,Expr*,int,int),int);
    19  static int exprCodeVector(Parse *pParse, Expr *p, int *piToFree);
    20  
    21  /*
    22  ** Return the affinity character for a single column of a table.
    23  */
    24  char sqlite3TableColumnAffinity(Table *pTab, int iCol){
    25    assert( iCol<pTab->nCol );
    26    return iCol>=0 ? pTab->aCol[iCol].affinity : SQLITE_AFF_INTEGER;
    27  }
    28  
    29  /*
    30  ** Return the 'affinity' of the expression pExpr if any.
    31  **
    32  ** If pExpr is a column, a reference to a column via an 'AS' alias,
    33  ** or a sub-select with a column as the return value, then the 
    34  ** affinity of that column is returned. Otherwise, 0x00 is returned,
    35  ** indicating no affinity for the expression.
    36  **
    37  ** i.e. the WHERE clause expressions in the following statements all
    38  ** have an affinity:
    39  **
    40  ** CREATE TABLE t1(a);
    41  ** SELECT * FROM t1 WHERE a;
    42  ** SELECT a AS b FROM t1 WHERE b;
    43  ** SELECT * FROM t1 WHERE (select a from t1);
    44  */
    45  char sqlite3ExprAffinity(Expr *pExpr){
    46    int op;
    47    pExpr = sqlite3ExprSkipCollate(pExpr);
    48    if( pExpr->flags & EP_Generic ) return 0;
    49    op = pExpr->op;
    50    if( op==TK_SELECT ){
    51      assert( pExpr->flags&EP_xIsSelect );
    52      return sqlite3ExprAffinity(pExpr->x.pSelect->pEList->a[0].pExpr);
    53    }
    54    if( op==TK_REGISTER ) op = pExpr->op2;
    55  #ifndef SQLITE_OMIT_CAST
    56    if( op==TK_CAST ){
    57      assert( !ExprHasProperty(pExpr, EP_IntValue) );
    58      return sqlite3AffinityType(pExpr->u.zToken, 0);
    59    }
    60  #endif
    61    if( (op==TK_AGG_COLUMN || op==TK_COLUMN) && pExpr->pTab ){
    62      return sqlite3TableColumnAffinity(pExpr->pTab, pExpr->iColumn);
    63    }
    64    if( op==TK_SELECT_COLUMN ){
    65      assert( pExpr->pLeft->flags&EP_xIsSelect );
    66      return sqlite3ExprAffinity(
    67          pExpr->pLeft->x.pSelect->pEList->a[pExpr->iColumn].pExpr
    68      );
    69    }
    70    return pExpr->affinity;
    71  }
    72  
    73  /*
    74  ** Set the collating sequence for expression pExpr to be the collating
    75  ** sequence named by pToken.   Return a pointer to a new Expr node that
    76  ** implements the COLLATE operator.
    77  **
    78  ** If a memory allocation error occurs, that fact is recorded in pParse->db
    79  ** and the pExpr parameter is returned unchanged.
    80  */
    81  Expr *sqlite3ExprAddCollateToken(
    82    Parse *pParse,           /* Parsing context */
    83    Expr *pExpr,             /* Add the "COLLATE" clause to this expression */
    84    const Token *pCollName,  /* Name of collating sequence */
    85    int dequote              /* True to dequote pCollName */
    86  ){
    87    if( pCollName->n>0 ){
    88      Expr *pNew = sqlite3ExprAlloc(pParse->db, TK_COLLATE, pCollName, dequote);
    89      if( pNew ){
    90        pNew->pLeft = pExpr;
    91        pNew->flags |= EP_Collate|EP_Skip;
    92        pExpr = pNew;
    93      }
    94    }
    95    return pExpr;
    96  }
    97  Expr *sqlite3ExprAddCollateString(Parse *pParse, Expr *pExpr, const char *zC){
    98    Token s;
    99    assert( zC!=0 );
   100    sqlite3TokenInit(&s, (char*)zC);
   101    return sqlite3ExprAddCollateToken(pParse, pExpr, &s, 0);
   102  }
   103  
   104  /*
   105  ** Skip over any TK_COLLATE operators and any unlikely()
   106  ** or likelihood() function at the root of an expression.
   107  */
   108  Expr *sqlite3ExprSkipCollate(Expr *pExpr){
   109    while( pExpr && ExprHasProperty(pExpr, EP_Skip) ){
   110      if( ExprHasProperty(pExpr, EP_Unlikely) ){
   111        assert( !ExprHasProperty(pExpr, EP_xIsSelect) );
   112        assert( pExpr->x.pList->nExpr>0 );
   113        assert( pExpr->op==TK_FUNCTION );
   114        pExpr = pExpr->x.pList->a[0].pExpr;
   115      }else{
   116        assert( pExpr->op==TK_COLLATE );
   117        pExpr = pExpr->pLeft;
   118      }
   119    }   
   120    return pExpr;
   121  }
   122  
   123  /*
   124  ** Return the collation sequence for the expression pExpr. If
   125  ** there is no defined collating sequence, return NULL.
   126  **
   127  ** See also: sqlite3ExprNNCollSeq()
   128  **
   129  ** The sqlite3ExprNNCollSeq() works the same exact that it returns the
   130  ** default collation if pExpr has no defined collation.
   131  **
   132  ** The collating sequence might be determined by a COLLATE operator
   133  ** or by the presence of a column with a defined collating sequence.
   134  ** COLLATE operators take first precedence.  Left operands take
   135  ** precedence over right operands.
   136  */
   137  CollSeq *sqlite3ExprCollSeq(Parse *pParse, Expr *pExpr){
   138    sqlite3 *db = pParse->db;
   139    CollSeq *pColl = 0;
   140    Expr *p = pExpr;
   141    while( p ){
   142      int op = p->op;
   143      if( p->flags & EP_Generic ) break;
   144      if( op==TK_CAST || op==TK_UPLUS ){
   145        p = p->pLeft;
   146        continue;
   147      }
   148      if( op==TK_COLLATE || (op==TK_REGISTER && p->op2==TK_COLLATE) ){
   149        pColl = sqlite3GetCollSeq(pParse, ENC(db), 0, p->u.zToken);
   150        break;
   151      }
   152      if( (op==TK_AGG_COLUMN || op==TK_COLUMN
   153            || op==TK_REGISTER || op==TK_TRIGGER)
   154       && p->pTab!=0
   155      ){
   156        /* op==TK_REGISTER && p->pTab!=0 happens when pExpr was originally
   157        ** a TK_COLUMN but was previously evaluated and cached in a register */
   158        int j = p->iColumn;
   159        if( j>=0 ){
   160          const char *zColl = p->pTab->aCol[j].zColl;
   161          pColl = sqlite3FindCollSeq(db, ENC(db), zColl, 0);
   162        }
   163        break;
   164      }
   165      if( p->flags & EP_Collate ){
   166        if( p->pLeft && (p->pLeft->flags & EP_Collate)!=0 ){
   167          p = p->pLeft;
   168        }else{
   169          Expr *pNext  = p->pRight;
   170          /* The Expr.x union is never used at the same time as Expr.pRight */
   171          assert( p->x.pList==0 || p->pRight==0 );
   172          /* p->flags holds EP_Collate and p->pLeft->flags does not.  And
   173          ** p->x.pSelect cannot.  So if p->x.pLeft exists, it must hold at
   174          ** least one EP_Collate. Thus the following two ALWAYS. */
   175          if( p->x.pList!=0 && ALWAYS(!ExprHasProperty(p, EP_xIsSelect)) ){
   176            int i;
   177            for(i=0; ALWAYS(i<p->x.pList->nExpr); i++){
   178              if( ExprHasProperty(p->x.pList->a[i].pExpr, EP_Collate) ){
   179                pNext = p->x.pList->a[i].pExpr;
   180                break;
   181              }
   182            }
   183          }
   184          p = pNext;
   185        }
   186      }else{
   187        break;
   188      }
   189    }
   190    if( sqlite3CheckCollSeq(pParse, pColl) ){ 
   191      pColl = 0;
   192    }
   193    return pColl;
   194  }
   195  
   196  /*
   197  ** Return the collation sequence for the expression pExpr. If
   198  ** there is no defined collating sequence, return a pointer to the
   199  ** defautl collation sequence.
   200  **
   201  ** See also: sqlite3ExprCollSeq()
   202  **
   203  ** The sqlite3ExprCollSeq() routine works the same except that it
   204  ** returns NULL if there is no defined collation.
   205  */
   206  CollSeq *sqlite3ExprNNCollSeq(Parse *pParse, Expr *pExpr){
   207    CollSeq *p = sqlite3ExprCollSeq(pParse, pExpr);
   208    if( p==0 ) p = pParse->db->pDfltColl;
   209    assert( p!=0 );
   210    return p;
   211  }
   212  
   213  /*
   214  ** Return TRUE if the two expressions have equivalent collating sequences.
   215  */
   216  int sqlite3ExprCollSeqMatch(Parse *pParse, Expr *pE1, Expr *pE2){
   217    CollSeq *pColl1 = sqlite3ExprNNCollSeq(pParse, pE1);
   218    CollSeq *pColl2 = sqlite3ExprNNCollSeq(pParse, pE2);
   219    return sqlite3StrICmp(pColl1->zName, pColl2->zName)==0;
   220  }
   221  
   222  /*
   223  ** pExpr is an operand of a comparison operator.  aff2 is the
   224  ** type affinity of the other operand.  This routine returns the
   225  ** type affinity that should be used for the comparison operator.
   226  */
   227  char sqlite3CompareAffinity(Expr *pExpr, char aff2){
   228    char aff1 = sqlite3ExprAffinity(pExpr);
   229    if( aff1 && aff2 ){
   230      /* Both sides of the comparison are columns. If one has numeric
   231      ** affinity, use that. Otherwise use no affinity.
   232      */
   233      if( sqlite3IsNumericAffinity(aff1) || sqlite3IsNumericAffinity(aff2) ){
   234        return SQLITE_AFF_NUMERIC;
   235      }else{
   236        return SQLITE_AFF_BLOB;
   237      }
   238    }else if( !aff1 && !aff2 ){
   239      /* Neither side of the comparison is a column.  Compare the
   240      ** results directly.
   241      */
   242      return SQLITE_AFF_BLOB;
   243    }else{
   244      /* One side is a column, the other is not. Use the columns affinity. */
   245      assert( aff1==0 || aff2==0 );
   246      return (aff1 + aff2);
   247    }
   248  }
   249  
   250  /*
   251  ** pExpr is a comparison operator.  Return the type affinity that should
   252  ** be applied to both operands prior to doing the comparison.
   253  */
   254  static char comparisonAffinity(Expr *pExpr){
   255    char aff;
   256    assert( pExpr->op==TK_EQ || pExpr->op==TK_IN || pExpr->op==TK_LT ||
   257            pExpr->op==TK_GT || pExpr->op==TK_GE || pExpr->op==TK_LE ||
   258            pExpr->op==TK_NE || pExpr->op==TK_IS || pExpr->op==TK_ISNOT );
   259    assert( pExpr->pLeft );
   260    aff = sqlite3ExprAffinity(pExpr->pLeft);
   261    if( pExpr->pRight ){
   262      aff = sqlite3CompareAffinity(pExpr->pRight, aff);
   263    }else if( ExprHasProperty(pExpr, EP_xIsSelect) ){
   264      aff = sqlite3CompareAffinity(pExpr->x.pSelect->pEList->a[0].pExpr, aff);
   265    }else if( aff==0 ){
   266      aff = SQLITE_AFF_BLOB;
   267    }
   268    return aff;
   269  }
   270  
   271  /*
   272  ** pExpr is a comparison expression, eg. '=', '<', IN(...) etc.
   273  ** idx_affinity is the affinity of an indexed column. Return true
   274  ** if the index with affinity idx_affinity may be used to implement
   275  ** the comparison in pExpr.
   276  */
   277  int sqlite3IndexAffinityOk(Expr *pExpr, char idx_affinity){
   278    char aff = comparisonAffinity(pExpr);
   279    switch( aff ){
   280      case SQLITE_AFF_BLOB:
   281        return 1;
   282      case SQLITE_AFF_TEXT:
   283        return idx_affinity==SQLITE_AFF_TEXT;
   284      default:
   285        return sqlite3IsNumericAffinity(idx_affinity);
   286    }
   287  }
   288  
   289  /*
   290  ** Return the P5 value that should be used for a binary comparison
   291  ** opcode (OP_Eq, OP_Ge etc.) used to compare pExpr1 and pExpr2.
   292  */
   293  static u8 binaryCompareP5(Expr *pExpr1, Expr *pExpr2, int jumpIfNull){
   294    u8 aff = (char)sqlite3ExprAffinity(pExpr2);
   295    aff = (u8)sqlite3CompareAffinity(pExpr1, aff) | (u8)jumpIfNull;
   296    return aff;
   297  }
   298  
   299  /*
   300  ** Return a pointer to the collation sequence that should be used by
   301  ** a binary comparison operator comparing pLeft and pRight.
   302  **
   303  ** If the left hand expression has a collating sequence type, then it is
   304  ** used. Otherwise the collation sequence for the right hand expression
   305  ** is used, or the default (BINARY) if neither expression has a collating
   306  ** type.
   307  **
   308  ** Argument pRight (but not pLeft) may be a null pointer. In this case,
   309  ** it is not considered.
   310  */
   311  CollSeq *sqlite3BinaryCompareCollSeq(
   312    Parse *pParse, 
   313    Expr *pLeft, 
   314    Expr *pRight
   315  ){
   316    CollSeq *pColl;
   317    assert( pLeft );
   318    if( pLeft->flags & EP_Collate ){
   319      pColl = sqlite3ExprCollSeq(pParse, pLeft);
   320    }else if( pRight && (pRight->flags & EP_Collate)!=0 ){
   321      pColl = sqlite3ExprCollSeq(pParse, pRight);
   322    }else{
   323      pColl = sqlite3ExprCollSeq(pParse, pLeft);
   324      if( !pColl ){
   325        pColl = sqlite3ExprCollSeq(pParse, pRight);
   326      }
   327    }
   328    return pColl;
   329  }
   330  
   331  /*
   332  ** Generate code for a comparison operator.
   333  */
   334  static int codeCompare(
   335    Parse *pParse,    /* The parsing (and code generating) context */
   336    Expr *pLeft,      /* The left operand */
   337    Expr *pRight,     /* The right operand */
   338    int opcode,       /* The comparison opcode */
   339    int in1, int in2, /* Register holding operands */
   340    int dest,         /* Jump here if true.  */
   341    int jumpIfNull    /* If true, jump if either operand is NULL */
   342  ){
   343    int p5;
   344    int addr;
   345    CollSeq *p4;
   346  
   347    p4 = sqlite3BinaryCompareCollSeq(pParse, pLeft, pRight);
   348    p5 = binaryCompareP5(pLeft, pRight, jumpIfNull);
   349    addr = sqlite3VdbeAddOp4(pParse->pVdbe, opcode, in2, dest, in1,
   350                             (void*)p4, P4_COLLSEQ);
   351    sqlite3VdbeChangeP5(pParse->pVdbe, (u8)p5);
   352    return addr;
   353  }
   354  
   355  /*
   356  ** Return true if expression pExpr is a vector, or false otherwise.
   357  **
   358  ** A vector is defined as any expression that results in two or more
   359  ** columns of result.  Every TK_VECTOR node is an vector because the
   360  ** parser will not generate a TK_VECTOR with fewer than two entries.
   361  ** But a TK_SELECT might be either a vector or a scalar. It is only
   362  ** considered a vector if it has two or more result columns.
   363  */
   364  int sqlite3ExprIsVector(Expr *pExpr){
   365    return sqlite3ExprVectorSize(pExpr)>1;
   366  }
   367  
   368  /*
   369  ** If the expression passed as the only argument is of type TK_VECTOR 
   370  ** return the number of expressions in the vector. Or, if the expression
   371  ** is a sub-select, return the number of columns in the sub-select. For
   372  ** any other type of expression, return 1.
   373  */
   374  int sqlite3ExprVectorSize(Expr *pExpr){
   375    u8 op = pExpr->op;
   376    if( op==TK_REGISTER ) op = pExpr->op2;
   377    if( op==TK_VECTOR ){
   378      return pExpr->x.pList->nExpr;
   379    }else if( op==TK_SELECT ){
   380      return pExpr->x.pSelect->pEList->nExpr;
   381    }else{
   382      return 1;
   383    }
   384  }
   385  
   386  /*
   387  ** Return a pointer to a subexpression of pVector that is the i-th
   388  ** column of the vector (numbered starting with 0).  The caller must
   389  ** ensure that i is within range.
   390  **
   391  ** If pVector is really a scalar (and "scalar" here includes subqueries
   392  ** that return a single column!) then return pVector unmodified.
   393  **
   394  ** pVector retains ownership of the returned subexpression.
   395  **
   396  ** If the vector is a (SELECT ...) then the expression returned is
   397  ** just the expression for the i-th term of the result set, and may
   398  ** not be ready for evaluation because the table cursor has not yet
   399  ** been positioned.
   400  */
   401  Expr *sqlite3VectorFieldSubexpr(Expr *pVector, int i){
   402    assert( i<sqlite3ExprVectorSize(pVector) );
   403    if( sqlite3ExprIsVector(pVector) ){
   404      assert( pVector->op2==0 || pVector->op==TK_REGISTER );
   405      if( pVector->op==TK_SELECT || pVector->op2==TK_SELECT ){
   406        return pVector->x.pSelect->pEList->a[i].pExpr;
   407      }else{
   408        return pVector->x.pList->a[i].pExpr;
   409      }
   410    }
   411    return pVector;
   412  }
   413  
   414  /*
   415  ** Compute and return a new Expr object which when passed to
   416  ** sqlite3ExprCode() will generate all necessary code to compute
   417  ** the iField-th column of the vector expression pVector.
   418  **
   419  ** It is ok for pVector to be a scalar (as long as iField==0).  
   420  ** In that case, this routine works like sqlite3ExprDup().
   421  **
   422  ** The caller owns the returned Expr object and is responsible for
   423  ** ensuring that the returned value eventually gets freed.
   424  **
   425  ** The caller retains ownership of pVector.  If pVector is a TK_SELECT,
   426  ** then the returned object will reference pVector and so pVector must remain
   427  ** valid for the life of the returned object.  If pVector is a TK_VECTOR
   428  ** or a scalar expression, then it can be deleted as soon as this routine
   429  ** returns.
   430  **
   431  ** A trick to cause a TK_SELECT pVector to be deleted together with
   432  ** the returned Expr object is to attach the pVector to the pRight field
   433  ** of the returned TK_SELECT_COLUMN Expr object.
   434  */
   435  Expr *sqlite3ExprForVectorField(
   436    Parse *pParse,       /* Parsing context */
   437    Expr *pVector,       /* The vector.  List of expressions or a sub-SELECT */
   438    int iField           /* Which column of the vector to return */
   439  ){
   440    Expr *pRet;
   441    if( pVector->op==TK_SELECT ){
   442      assert( pVector->flags & EP_xIsSelect );
   443      /* The TK_SELECT_COLUMN Expr node:
   444      **
   445      ** pLeft:           pVector containing TK_SELECT.  Not deleted.
   446      ** pRight:          not used.  But recursively deleted.
   447      ** iColumn:         Index of a column in pVector
   448      ** iTable:          0 or the number of columns on the LHS of an assignment
   449      ** pLeft->iTable:   First in an array of register holding result, or 0
   450      **                  if the result is not yet computed.
   451      **
   452      ** sqlite3ExprDelete() specifically skips the recursive delete of
   453      ** pLeft on TK_SELECT_COLUMN nodes.  But pRight is followed, so pVector
   454      ** can be attached to pRight to cause this node to take ownership of
   455      ** pVector.  Typically there will be multiple TK_SELECT_COLUMN nodes
   456      ** with the same pLeft pointer to the pVector, but only one of them
   457      ** will own the pVector.
   458      */
   459      pRet = sqlite3PExpr(pParse, TK_SELECT_COLUMN, 0, 0);
   460      if( pRet ){
   461        pRet->iColumn = iField;
   462        pRet->pLeft = pVector;
   463      }
   464      assert( pRet==0 || pRet->iTable==0 );
   465    }else{
   466      if( pVector->op==TK_VECTOR ) pVector = pVector->x.pList->a[iField].pExpr;
   467      pRet = sqlite3ExprDup(pParse->db, pVector, 0);
   468    }
   469    return pRet;
   470  }
   471  
   472  /*
   473  ** If expression pExpr is of type TK_SELECT, generate code to evaluate
   474  ** it. Return the register in which the result is stored (or, if the 
   475  ** sub-select returns more than one column, the first in an array
   476  ** of registers in which the result is stored).
   477  **
   478  ** If pExpr is not a TK_SELECT expression, return 0.
   479  */
   480  static int exprCodeSubselect(Parse *pParse, Expr *pExpr){
   481    int reg = 0;
   482  #ifndef SQLITE_OMIT_SUBQUERY
   483    if( pExpr->op==TK_SELECT ){
   484      reg = sqlite3CodeSubselect(pParse, pExpr, 0, 0);
   485    }
   486  #endif
   487    return reg;
   488  }
   489  
   490  /*
   491  ** Argument pVector points to a vector expression - either a TK_VECTOR
   492  ** or TK_SELECT that returns more than one column. This function returns
   493  ** the register number of a register that contains the value of
   494  ** element iField of the vector.
   495  **
   496  ** If pVector is a TK_SELECT expression, then code for it must have 
   497  ** already been generated using the exprCodeSubselect() routine. In this
   498  ** case parameter regSelect should be the first in an array of registers
   499  ** containing the results of the sub-select. 
   500  **
   501  ** If pVector is of type TK_VECTOR, then code for the requested field
   502  ** is generated. In this case (*pRegFree) may be set to the number of
   503  ** a temporary register to be freed by the caller before returning.
   504  **
   505  ** Before returning, output parameter (*ppExpr) is set to point to the
   506  ** Expr object corresponding to element iElem of the vector.
   507  */
   508  static int exprVectorRegister(
   509    Parse *pParse,                  /* Parse context */
   510    Expr *pVector,                  /* Vector to extract element from */
   511    int iField,                     /* Field to extract from pVector */
   512    int regSelect,                  /* First in array of registers */
   513    Expr **ppExpr,                  /* OUT: Expression element */
   514    int *pRegFree                   /* OUT: Temp register to free */
   515  ){
   516    u8 op = pVector->op;
   517    assert( op==TK_VECTOR || op==TK_REGISTER || op==TK_SELECT );
   518    if( op==TK_REGISTER ){
   519      *ppExpr = sqlite3VectorFieldSubexpr(pVector, iField);
   520      return pVector->iTable+iField;
   521    }
   522    if( op==TK_SELECT ){
   523      *ppExpr = pVector->x.pSelect->pEList->a[iField].pExpr;
   524       return regSelect+iField;
   525    }
   526    *ppExpr = pVector->x.pList->a[iField].pExpr;
   527    return sqlite3ExprCodeTemp(pParse, *ppExpr, pRegFree);
   528  }
   529  
   530  /*
   531  ** Expression pExpr is a comparison between two vector values. Compute
   532  ** the result of the comparison (1, 0, or NULL) and write that
   533  ** result into register dest.
   534  **
   535  ** The caller must satisfy the following preconditions:
   536  **
   537  **    if pExpr->op==TK_IS:      op==TK_EQ and p5==SQLITE_NULLEQ
   538  **    if pExpr->op==TK_ISNOT:   op==TK_NE and p5==SQLITE_NULLEQ
   539  **    otherwise:                op==pExpr->op and p5==0
   540  */
   541  static void codeVectorCompare(
   542    Parse *pParse,        /* Code generator context */
   543    Expr *pExpr,          /* The comparison operation */
   544    int dest,             /* Write results into this register */
   545    u8 op,                /* Comparison operator */
   546    u8 p5                 /* SQLITE_NULLEQ or zero */
   547  ){
   548    Vdbe *v = pParse->pVdbe;
   549    Expr *pLeft = pExpr->pLeft;
   550    Expr *pRight = pExpr->pRight;
   551    int nLeft = sqlite3ExprVectorSize(pLeft);
   552    int i;
   553    int regLeft = 0;
   554    int regRight = 0;
   555    u8 opx = op;
   556    int addrDone = sqlite3VdbeMakeLabel(v);
   557  
   558    if( nLeft!=sqlite3ExprVectorSize(pRight) ){
   559      sqlite3ErrorMsg(pParse, "row value misused");
   560      return;
   561    }
   562    assert( pExpr->op==TK_EQ || pExpr->op==TK_NE 
   563         || pExpr->op==TK_IS || pExpr->op==TK_ISNOT 
   564         || pExpr->op==TK_LT || pExpr->op==TK_GT 
   565         || pExpr->op==TK_LE || pExpr->op==TK_GE 
   566    );
   567    assert( pExpr->op==op || (pExpr->op==TK_IS && op==TK_EQ)
   568              || (pExpr->op==TK_ISNOT && op==TK_NE) );
   569    assert( p5==0 || pExpr->op!=op );
   570    assert( p5==SQLITE_NULLEQ || pExpr->op==op );
   571  
   572    p5 |= SQLITE_STOREP2;
   573    if( opx==TK_LE ) opx = TK_LT;
   574    if( opx==TK_GE ) opx = TK_GT;
   575  
   576    regLeft = exprCodeSubselect(pParse, pLeft);
   577    regRight = exprCodeSubselect(pParse, pRight);
   578  
   579    for(i=0; 1 /*Loop exits by "break"*/; i++){
   580      int regFree1 = 0, regFree2 = 0;
   581      Expr *pL, *pR; 
   582      int r1, r2;
   583      assert( i>=0 && i<nLeft );
   584      if( i>0 ) sqlite3ExprCachePush(pParse);
   585      r1 = exprVectorRegister(pParse, pLeft, i, regLeft, &pL, &regFree1);
   586      r2 = exprVectorRegister(pParse, pRight, i, regRight, &pR, &regFree2);
   587      codeCompare(pParse, pL, pR, opx, r1, r2, dest, p5);
   588      testcase(op==OP_Lt); VdbeCoverageIf(v,op==OP_Lt);
   589      testcase(op==OP_Le); VdbeCoverageIf(v,op==OP_Le);
   590      testcase(op==OP_Gt); VdbeCoverageIf(v,op==OP_Gt);
   591      testcase(op==OP_Ge); VdbeCoverageIf(v,op==OP_Ge);
   592      testcase(op==OP_Eq); VdbeCoverageIf(v,op==OP_Eq);
   593      testcase(op==OP_Ne); VdbeCoverageIf(v,op==OP_Ne);
   594      sqlite3ReleaseTempReg(pParse, regFree1);
   595      sqlite3ReleaseTempReg(pParse, regFree2);
   596      if( i>0 ) sqlite3ExprCachePop(pParse);
   597      if( i==nLeft-1 ){
   598        break;
   599      }
   600      if( opx==TK_EQ ){
   601        sqlite3VdbeAddOp2(v, OP_IfNot, dest, addrDone); VdbeCoverage(v);
   602        p5 |= SQLITE_KEEPNULL;
   603      }else if( opx==TK_NE ){
   604        sqlite3VdbeAddOp2(v, OP_If, dest, addrDone); VdbeCoverage(v);
   605        p5 |= SQLITE_KEEPNULL;
   606      }else{
   607        assert( op==TK_LT || op==TK_GT || op==TK_LE || op==TK_GE );
   608        sqlite3VdbeAddOp2(v, OP_ElseNotEq, 0, addrDone);
   609        VdbeCoverageIf(v, op==TK_LT);
   610        VdbeCoverageIf(v, op==TK_GT);
   611        VdbeCoverageIf(v, op==TK_LE);
   612        VdbeCoverageIf(v, op==TK_GE);
   613        if( i==nLeft-2 ) opx = op;
   614      }
   615    }
   616    sqlite3VdbeResolveLabel(v, addrDone);
   617  }
   618  
   619  #if SQLITE_MAX_EXPR_DEPTH>0
   620  /*
   621  ** Check that argument nHeight is less than or equal to the maximum
   622  ** expression depth allowed. If it is not, leave an error message in
   623  ** pParse.
   624  */
   625  int sqlite3ExprCheckHeight(Parse *pParse, int nHeight){
   626    int rc = SQLITE_OK;
   627    int mxHeight = pParse->db->aLimit[SQLITE_LIMIT_EXPR_DEPTH];
   628    if( nHeight>mxHeight ){
   629      sqlite3ErrorMsg(pParse, 
   630         "Expression tree is too large (maximum depth %d)", mxHeight
   631      );
   632      rc = SQLITE_ERROR;
   633    }
   634    return rc;
   635  }
   636  
   637  /* The following three functions, heightOfExpr(), heightOfExprList()
   638  ** and heightOfSelect(), are used to determine the maximum height
   639  ** of any expression tree referenced by the structure passed as the
   640  ** first argument.
   641  **
   642  ** If this maximum height is greater than the current value pointed
   643  ** to by pnHeight, the second parameter, then set *pnHeight to that
   644  ** value.
   645  */
   646  static void heightOfExpr(Expr *p, int *pnHeight){
   647    if( p ){
   648      if( p->nHeight>*pnHeight ){
   649        *pnHeight = p->nHeight;
   650      }
   651    }
   652  }
   653  static void heightOfExprList(ExprList *p, int *pnHeight){
   654    if( p ){
   655      int i;
   656      for(i=0; i<p->nExpr; i++){
   657        heightOfExpr(p->a[i].pExpr, pnHeight);
   658      }
   659    }
   660  }
   661  static void heightOfSelect(Select *p, int *pnHeight){
   662    if( p ){
   663      heightOfExpr(p->pWhere, pnHeight);
   664      heightOfExpr(p->pHaving, pnHeight);
   665      heightOfExpr(p->pLimit, pnHeight);
   666      heightOfExpr(p->pOffset, pnHeight);
   667      heightOfExprList(p->pEList, pnHeight);
   668      heightOfExprList(p->pGroupBy, pnHeight);
   669      heightOfExprList(p->pOrderBy, pnHeight);
   670      heightOfSelect(p->pPrior, pnHeight);
   671    }
   672  }
   673  
   674  /*
   675  ** Set the Expr.nHeight variable in the structure passed as an 
   676  ** argument. An expression with no children, Expr.pList or 
   677  ** Expr.pSelect member has a height of 1. Any other expression
   678  ** has a height equal to the maximum height of any other 
   679  ** referenced Expr plus one.
   680  **
   681  ** Also propagate EP_Propagate flags up from Expr.x.pList to Expr.flags,
   682  ** if appropriate.
   683  */
   684  static void exprSetHeight(Expr *p){
   685    int nHeight = 0;
   686    heightOfExpr(p->pLeft, &nHeight);
   687    heightOfExpr(p->pRight, &nHeight);
   688    if( ExprHasProperty(p, EP_xIsSelect) ){
   689      heightOfSelect(p->x.pSelect, &nHeight);
   690    }else if( p->x.pList ){
   691      heightOfExprList(p->x.pList, &nHeight);
   692      p->flags |= EP_Propagate & sqlite3ExprListFlags(p->x.pList);
   693    }
   694    p->nHeight = nHeight + 1;
   695  }
   696  
   697  /*
   698  ** Set the Expr.nHeight variable using the exprSetHeight() function. If
   699  ** the height is greater than the maximum allowed expression depth,
   700  ** leave an error in pParse.
   701  **
   702  ** Also propagate all EP_Propagate flags from the Expr.x.pList into
   703  ** Expr.flags. 
   704  */
   705  void sqlite3ExprSetHeightAndFlags(Parse *pParse, Expr *p){
   706    if( pParse->nErr ) return;
   707    exprSetHeight(p);
   708    sqlite3ExprCheckHeight(pParse, p->nHeight);
   709  }
   710  
   711  /*
   712  ** Return the maximum height of any expression tree referenced
   713  ** by the select statement passed as an argument.
   714  */
   715  int sqlite3SelectExprHeight(Select *p){
   716    int nHeight = 0;
   717    heightOfSelect(p, &nHeight);
   718    return nHeight;
   719  }
   720  #else /* ABOVE:  Height enforcement enabled.  BELOW: Height enforcement off */
   721  /*
   722  ** Propagate all EP_Propagate flags from the Expr.x.pList into
   723  ** Expr.flags. 
   724  */
   725  void sqlite3ExprSetHeightAndFlags(Parse *pParse, Expr *p){
   726    if( p && p->x.pList && !ExprHasProperty(p, EP_xIsSelect) ){
   727      p->flags |= EP_Propagate & sqlite3ExprListFlags(p->x.pList);
   728    }
   729  }
   730  #define exprSetHeight(y)
   731  #endif /* SQLITE_MAX_EXPR_DEPTH>0 */
   732  
   733  /*
   734  ** This routine is the core allocator for Expr nodes.
   735  **
   736  ** Construct a new expression node and return a pointer to it.  Memory
   737  ** for this node and for the pToken argument is a single allocation
   738  ** obtained from sqlite3DbMalloc().  The calling function
   739  ** is responsible for making sure the node eventually gets freed.
   740  **
   741  ** If dequote is true, then the token (if it exists) is dequoted.
   742  ** If dequote is false, no dequoting is performed.  The deQuote
   743  ** parameter is ignored if pToken is NULL or if the token does not
   744  ** appear to be quoted.  If the quotes were of the form "..." (double-quotes)
   745  ** then the EP_DblQuoted flag is set on the expression node.
   746  **
   747  ** Special case:  If op==TK_INTEGER and pToken points to a string that
   748  ** can be translated into a 32-bit integer, then the token is not
   749  ** stored in u.zToken.  Instead, the integer values is written
   750  ** into u.iValue and the EP_IntValue flag is set.  No extra storage
   751  ** is allocated to hold the integer text and the dequote flag is ignored.
   752  */
   753  Expr *sqlite3ExprAlloc(
   754    sqlite3 *db,            /* Handle for sqlite3DbMallocRawNN() */
   755    int op,                 /* Expression opcode */
   756    const Token *pToken,    /* Token argument.  Might be NULL */
   757    int dequote             /* True to dequote */
   758  ){
   759    Expr *pNew;
   760    int nExtra = 0;
   761    int iValue = 0;
   762  
   763    assert( db!=0 );
   764    if( pToken ){
   765      if( op!=TK_INTEGER || pToken->z==0
   766            || sqlite3GetInt32(pToken->z, &iValue)==0 ){
   767        nExtra = pToken->n+1;
   768        assert( iValue>=0 );
   769      }
   770    }
   771    pNew = sqlite3DbMallocRawNN(db, sizeof(Expr)+nExtra);
   772    if( pNew ){
   773      memset(pNew, 0, sizeof(Expr));
   774      pNew->op = (u8)op;
   775      pNew->iAgg = -1;
   776      if( pToken ){
   777        if( nExtra==0 ){
   778          pNew->flags |= EP_IntValue|EP_Leaf;
   779          pNew->u.iValue = iValue;
   780        }else{
   781          pNew->u.zToken = (char*)&pNew[1];
   782          assert( pToken->z!=0 || pToken->n==0 );
   783          if( pToken->n ) memcpy(pNew->u.zToken, pToken->z, pToken->n);
   784          pNew->u.zToken[pToken->n] = 0;
   785          if( dequote && sqlite3Isquote(pNew->u.zToken[0]) ){
   786            if( pNew->u.zToken[0]=='"' ) pNew->flags |= EP_DblQuoted;
   787            sqlite3Dequote(pNew->u.zToken);
   788          }
   789        }
   790      }
   791  #if SQLITE_MAX_EXPR_DEPTH>0
   792      pNew->nHeight = 1;
   793  #endif  
   794    }
   795    return pNew;
   796  }
   797  
   798  /*
   799  ** Allocate a new expression node from a zero-terminated token that has
   800  ** already been dequoted.
   801  */
   802  Expr *sqlite3Expr(
   803    sqlite3 *db,            /* Handle for sqlite3DbMallocZero() (may be null) */
   804    int op,                 /* Expression opcode */
   805    const char *zToken      /* Token argument.  Might be NULL */
   806  ){
   807    Token x;
   808    x.z = zToken;
   809    x.n = sqlite3Strlen30(zToken);
   810    return sqlite3ExprAlloc(db, op, &x, 0);
   811  }
   812  
   813  /*
   814  ** Attach subtrees pLeft and pRight to the Expr node pRoot.
   815  **
   816  ** If pRoot==NULL that means that a memory allocation error has occurred.
   817  ** In that case, delete the subtrees pLeft and pRight.
   818  */
   819  void sqlite3ExprAttachSubtrees(
   820    sqlite3 *db,
   821    Expr *pRoot,
   822    Expr *pLeft,
   823    Expr *pRight
   824  ){
   825    if( pRoot==0 ){
   826      assert( db->mallocFailed );
   827      sqlite3ExprDelete(db, pLeft);
   828      sqlite3ExprDelete(db, pRight);
   829    }else{
   830      if( pRight ){
   831        pRoot->pRight = pRight;
   832        pRoot->flags |= EP_Propagate & pRight->flags;
   833      }
   834      if( pLeft ){
   835        pRoot->pLeft = pLeft;
   836        pRoot->flags |= EP_Propagate & pLeft->flags;
   837      }
   838      exprSetHeight(pRoot);
   839    }
   840  }
   841  
   842  /*
   843  ** Allocate an Expr node which joins as many as two subtrees.
   844  **
   845  ** One or both of the subtrees can be NULL.  Return a pointer to the new
   846  ** Expr node.  Or, if an OOM error occurs, set pParse->db->mallocFailed,
   847  ** free the subtrees and return NULL.
   848  */
   849  Expr *sqlite3PExpr(
   850    Parse *pParse,          /* Parsing context */
   851    int op,                 /* Expression opcode */
   852    Expr *pLeft,            /* Left operand */
   853    Expr *pRight            /* Right operand */
   854  ){
   855    Expr *p;
   856    if( op==TK_AND && pParse->nErr==0 ){
   857      /* Take advantage of short-circuit false optimization for AND */
   858      p = sqlite3ExprAnd(pParse->db, pLeft, pRight);
   859    }else{
   860      p = sqlite3DbMallocRawNN(pParse->db, sizeof(Expr));
   861      if( p ){
   862        memset(p, 0, sizeof(Expr));
   863        p->op = op & TKFLG_MASK;
   864        p->iAgg = -1;
   865      }
   866      sqlite3ExprAttachSubtrees(pParse->db, p, pLeft, pRight);
   867    }
   868    if( p ) {
   869      sqlite3ExprCheckHeight(pParse, p->nHeight);
   870    }
   871    return p;
   872  }
   873  
   874  /*
   875  ** Add pSelect to the Expr.x.pSelect field.  Or, if pExpr is NULL (due
   876  ** do a memory allocation failure) then delete the pSelect object.
   877  */
   878  void sqlite3PExprAddSelect(Parse *pParse, Expr *pExpr, Select *pSelect){
   879    if( pExpr ){
   880      pExpr->x.pSelect = pSelect;
   881      ExprSetProperty(pExpr, EP_xIsSelect|EP_Subquery);
   882      sqlite3ExprSetHeightAndFlags(pParse, pExpr);
   883    }else{
   884      assert( pParse->db->mallocFailed );
   885      sqlite3SelectDelete(pParse->db, pSelect);
   886    }
   887  }
   888  
   889  
   890  /*
   891  ** If the expression is always either TRUE or FALSE (respectively),
   892  ** then return 1.  If one cannot determine the truth value of the
   893  ** expression at compile-time return 0.
   894  **
   895  ** This is an optimization.  If is OK to return 0 here even if
   896  ** the expression really is always false or false (a false negative).
   897  ** But it is a bug to return 1 if the expression might have different
   898  ** boolean values in different circumstances (a false positive.)
   899  **
   900  ** Note that if the expression is part of conditional for a
   901  ** LEFT JOIN, then we cannot determine at compile-time whether or not
   902  ** is it true or false, so always return 0.
   903  */
   904  static int exprAlwaysTrue(Expr *p){
   905    int v = 0;
   906    if( ExprHasProperty(p, EP_FromJoin) ) return 0;
   907    if( !sqlite3ExprIsInteger(p, &v) ) return 0;
   908    return v!=0;
   909  }
   910  static int exprAlwaysFalse(Expr *p){
   911    int v = 0;
   912    if( ExprHasProperty(p, EP_FromJoin) ) return 0;
   913    if( !sqlite3ExprIsInteger(p, &v) ) return 0;
   914    return v==0;
   915  }
   916  
   917  /*
   918  ** Join two expressions using an AND operator.  If either expression is
   919  ** NULL, then just return the other expression.
   920  **
   921  ** If one side or the other of the AND is known to be false, then instead
   922  ** of returning an AND expression, just return a constant expression with
   923  ** a value of false.
   924  */
   925  Expr *sqlite3ExprAnd(sqlite3 *db, Expr *pLeft, Expr *pRight){
   926    if( pLeft==0 ){
   927      return pRight;
   928    }else if( pRight==0 ){
   929      return pLeft;
   930    }else if( exprAlwaysFalse(pLeft) || exprAlwaysFalse(pRight) ){
   931      sqlite3ExprDelete(db, pLeft);
   932      sqlite3ExprDelete(db, pRight);
   933      return sqlite3ExprAlloc(db, TK_INTEGER, &sqlite3IntTokens[0], 0);
   934    }else{
   935      Expr *pNew = sqlite3ExprAlloc(db, TK_AND, 0, 0);
   936      sqlite3ExprAttachSubtrees(db, pNew, pLeft, pRight);
   937      return pNew;
   938    }
   939  }
   940  
   941  /*
   942  ** Construct a new expression node for a function with multiple
   943  ** arguments.
   944  */
   945  Expr *sqlite3ExprFunction(Parse *pParse, ExprList *pList, Token *pToken){
   946    Expr *pNew;
   947    sqlite3 *db = pParse->db;
   948    assert( pToken );
   949    pNew = sqlite3ExprAlloc(db, TK_FUNCTION, pToken, 1);
   950    if( pNew==0 ){
   951      sqlite3ExprListDelete(db, pList); /* Avoid memory leak when malloc fails */
   952      return 0;
   953    }
   954    pNew->x.pList = pList;
   955    assert( !ExprHasProperty(pNew, EP_xIsSelect) );
   956    sqlite3ExprSetHeightAndFlags(pParse, pNew);
   957    return pNew;
   958  }
   959  
   960  /*
   961  ** Assign a variable number to an expression that encodes a wildcard
   962  ** in the original SQL statement.  
   963  **
   964  ** Wildcards consisting of a single "?" are assigned the next sequential
   965  ** variable number.
   966  **
   967  ** Wildcards of the form "?nnn" are assigned the number "nnn".  We make
   968  ** sure "nnn" is not too big to avoid a denial of service attack when
   969  ** the SQL statement comes from an external source.
   970  **
   971  ** Wildcards of the form ":aaa", "@aaa", or "$aaa" are assigned the same number
   972  ** as the previous instance of the same wildcard.  Or if this is the first
   973  ** instance of the wildcard, the next sequential variable number is
   974  ** assigned.
   975  */
   976  void sqlite3ExprAssignVarNumber(Parse *pParse, Expr *pExpr, u32 n){
   977    sqlite3 *db = pParse->db;
   978    const char *z;
   979    ynVar x;
   980  
   981    if( pExpr==0 ) return;
   982    assert( !ExprHasProperty(pExpr, EP_IntValue|EP_Reduced|EP_TokenOnly) );
   983    z = pExpr->u.zToken;
   984    assert( z!=0 );
   985    assert( z[0]!=0 );
   986    assert( n==(u32)sqlite3Strlen30(z) );
   987    if( z[1]==0 ){
   988      /* Wildcard of the form "?".  Assign the next variable number */
   989      assert( z[0]=='?' );
   990      x = (ynVar)(++pParse->nVar);
   991    }else{
   992      int doAdd = 0;
   993      if( z[0]=='?' ){
   994        /* Wildcard of the form "?nnn".  Convert "nnn" to an integer and
   995        ** use it as the variable number */
   996        i64 i;
   997        int bOk;
   998        if( n==2 ){ /*OPTIMIZATION-IF-TRUE*/
   999          i = z[1]-'0';  /* The common case of ?N for a single digit N */
  1000          bOk = 1;
  1001        }else{
  1002          bOk = 0==sqlite3Atoi64(&z[1], &i, n-1, SQLITE_UTF8);
  1003        }
  1004        testcase( i==0 );
  1005        testcase( i==1 );
  1006        testcase( i==db->aLimit[SQLITE_LIMIT_VARIABLE_NUMBER]-1 );
  1007        testcase( i==db->aLimit[SQLITE_LIMIT_VARIABLE_NUMBER] );
  1008        if( bOk==0 || i<1 || i>db->aLimit[SQLITE_LIMIT_VARIABLE_NUMBER] ){
  1009          sqlite3ErrorMsg(pParse, "variable number must be between ?1 and ?%d",
  1010              db->aLimit[SQLITE_LIMIT_VARIABLE_NUMBER]);
  1011          return;
  1012        }
  1013        x = (ynVar)i;
  1014        if( x>pParse->nVar ){
  1015          pParse->nVar = (int)x;
  1016          doAdd = 1;
  1017        }else if( sqlite3VListNumToName(pParse->pVList, x)==0 ){
  1018          doAdd = 1;
  1019        }
  1020      }else{
  1021        /* Wildcards like ":aaa", "$aaa" or "@aaa".  Reuse the same variable
  1022        ** number as the prior appearance of the same name, or if the name
  1023        ** has never appeared before, reuse the same variable number
  1024        */
  1025        x = (ynVar)sqlite3VListNameToNum(pParse->pVList, z, n);
  1026        if( x==0 ){
  1027          x = (ynVar)(++pParse->nVar);
  1028          doAdd = 1;
  1029        }
  1030      }
  1031      if( doAdd ){
  1032        pParse->pVList = sqlite3VListAdd(db, pParse->pVList, z, n, x);
  1033      }
  1034    }
  1035    pExpr->iColumn = x;
  1036    if( x>db->aLimit[SQLITE_LIMIT_VARIABLE_NUMBER] ){
  1037      sqlite3ErrorMsg(pParse, "too many SQL variables");
  1038    }
  1039  }
  1040  
  1041  /*
  1042  ** Recursively delete an expression tree.
  1043  */
  1044  static SQLITE_NOINLINE void sqlite3ExprDeleteNN(sqlite3 *db, Expr *p){
  1045    assert( p!=0 );
  1046    /* Sanity check: Assert that the IntValue is non-negative if it exists */
  1047    assert( !ExprHasProperty(p, EP_IntValue) || p->u.iValue>=0 );
  1048  #ifdef SQLITE_DEBUG
  1049    if( ExprHasProperty(p, EP_Leaf) && !ExprHasProperty(p, EP_TokenOnly) ){
  1050      assert( p->pLeft==0 );
  1051      assert( p->pRight==0 );
  1052      assert( p->x.pSelect==0 );
  1053    }
  1054  #endif
  1055    if( !ExprHasProperty(p, (EP_TokenOnly|EP_Leaf)) ){
  1056      /* The Expr.x union is never used at the same time as Expr.pRight */
  1057      assert( p->x.pList==0 || p->pRight==0 );
  1058      if( p->pLeft && p->op!=TK_SELECT_COLUMN ) sqlite3ExprDeleteNN(db, p->pLeft);
  1059      if( p->pRight ){
  1060        sqlite3ExprDeleteNN(db, p->pRight);
  1061      }else if( ExprHasProperty(p, EP_xIsSelect) ){
  1062        sqlite3SelectDelete(db, p->x.pSelect);
  1063      }else{
  1064        sqlite3ExprListDelete(db, p->x.pList);
  1065      }
  1066    }
  1067    if( ExprHasProperty(p, EP_MemToken) ) sqlite3DbFree(db, p->u.zToken);
  1068    if( !ExprHasProperty(p, EP_Static) ){
  1069      sqlite3DbFreeNN(db, p);
  1070    }
  1071  }
  1072  void sqlite3ExprDelete(sqlite3 *db, Expr *p){
  1073    if( p ) sqlite3ExprDeleteNN(db, p);
  1074  }
  1075  
  1076  /*
  1077  ** Return the number of bytes allocated for the expression structure 
  1078  ** passed as the first argument. This is always one of EXPR_FULLSIZE,
  1079  ** EXPR_REDUCEDSIZE or EXPR_TOKENONLYSIZE.
  1080  */
  1081  static int exprStructSize(Expr *p){
  1082    if( ExprHasProperty(p, EP_TokenOnly) ) return EXPR_TOKENONLYSIZE;
  1083    if( ExprHasProperty(p, EP_Reduced) ) return EXPR_REDUCEDSIZE;
  1084    return EXPR_FULLSIZE;
  1085  }
  1086  
  1087  /*
  1088  ** The dupedExpr*Size() routines each return the number of bytes required
  1089  ** to store a copy of an expression or expression tree.  They differ in
  1090  ** how much of the tree is measured.
  1091  **
  1092  **     dupedExprStructSize()     Size of only the Expr structure 
  1093  **     dupedExprNodeSize()       Size of Expr + space for token
  1094  **     dupedExprSize()           Expr + token + subtree components
  1095  **
  1096  ***************************************************************************
  1097  **
  1098  ** The dupedExprStructSize() function returns two values OR-ed together:  
  1099  ** (1) the space required for a copy of the Expr structure only and 
  1100  ** (2) the EP_xxx flags that indicate what the structure size should be.
  1101  ** The return values is always one of:
  1102  **
  1103  **      EXPR_FULLSIZE
  1104  **      EXPR_REDUCEDSIZE   | EP_Reduced
  1105  **      EXPR_TOKENONLYSIZE | EP_TokenOnly
  1106  **
  1107  ** The size of the structure can be found by masking the return value
  1108  ** of this routine with 0xfff.  The flags can be found by masking the
  1109  ** return value with EP_Reduced|EP_TokenOnly.
  1110  **
  1111  ** Note that with flags==EXPRDUP_REDUCE, this routines works on full-size
  1112  ** (unreduced) Expr objects as they or originally constructed by the parser.
  1113  ** During expression analysis, extra information is computed and moved into
  1114  ** later parts of teh Expr object and that extra information might get chopped
  1115  ** off if the expression is reduced.  Note also that it does not work to
  1116  ** make an EXPRDUP_REDUCE copy of a reduced expression.  It is only legal
  1117  ** to reduce a pristine expression tree from the parser.  The implementation
  1118  ** of dupedExprStructSize() contain multiple assert() statements that attempt
  1119  ** to enforce this constraint.
  1120  */
  1121  static int dupedExprStructSize(Expr *p, int flags){
  1122    int nSize;
  1123    assert( flags==EXPRDUP_REDUCE || flags==0 ); /* Only one flag value allowed */
  1124    assert( EXPR_FULLSIZE<=0xfff );
  1125    assert( (0xfff & (EP_Reduced|EP_TokenOnly))==0 );
  1126    if( 0==flags || p->op==TK_SELECT_COLUMN ){
  1127      nSize = EXPR_FULLSIZE;
  1128    }else{
  1129      assert( !ExprHasProperty(p, EP_TokenOnly|EP_Reduced) );
  1130      assert( !ExprHasProperty(p, EP_FromJoin) ); 
  1131      assert( !ExprHasProperty(p, EP_MemToken) );
  1132      assert( !ExprHasProperty(p, EP_NoReduce) );
  1133      if( p->pLeft || p->x.pList ){
  1134        nSize = EXPR_REDUCEDSIZE | EP_Reduced;
  1135      }else{
  1136        assert( p->pRight==0 );
  1137        nSize = EXPR_TOKENONLYSIZE | EP_TokenOnly;
  1138      }
  1139    }
  1140    return nSize;
  1141  }
  1142  
  1143  /*
  1144  ** This function returns the space in bytes required to store the copy 
  1145  ** of the Expr structure and a copy of the Expr.u.zToken string (if that
  1146  ** string is defined.)
  1147  */
  1148  static int dupedExprNodeSize(Expr *p, int flags){
  1149    int nByte = dupedExprStructSize(p, flags) & 0xfff;
  1150    if( !ExprHasProperty(p, EP_IntValue) && p->u.zToken ){
  1151      nByte += sqlite3Strlen30(p->u.zToken)+1;
  1152    }
  1153    return ROUND8(nByte);
  1154  }
  1155  
  1156  /*
  1157  ** Return the number of bytes required to create a duplicate of the 
  1158  ** expression passed as the first argument. The second argument is a
  1159  ** mask containing EXPRDUP_XXX flags.
  1160  **
  1161  ** The value returned includes space to create a copy of the Expr struct
  1162  ** itself and the buffer referred to by Expr.u.zToken, if any.
  1163  **
  1164  ** If the EXPRDUP_REDUCE flag is set, then the return value includes 
  1165  ** space to duplicate all Expr nodes in the tree formed by Expr.pLeft 
  1166  ** and Expr.pRight variables (but not for any structures pointed to or 
  1167  ** descended from the Expr.x.pList or Expr.x.pSelect variables).
  1168  */
  1169  static int dupedExprSize(Expr *p, int flags){
  1170    int nByte = 0;
  1171    if( p ){
  1172      nByte = dupedExprNodeSize(p, flags);
  1173      if( flags&EXPRDUP_REDUCE ){
  1174        nByte += dupedExprSize(p->pLeft, flags) + dupedExprSize(p->pRight, flags);
  1175      }
  1176    }
  1177    return nByte;
  1178  }
  1179  
  1180  /*
  1181  ** This function is similar to sqlite3ExprDup(), except that if pzBuffer 
  1182  ** is not NULL then *pzBuffer is assumed to point to a buffer large enough 
  1183  ** to store the copy of expression p, the copies of p->u.zToken
  1184  ** (if applicable), and the copies of the p->pLeft and p->pRight expressions,
  1185  ** if any. Before returning, *pzBuffer is set to the first byte past the
  1186  ** portion of the buffer copied into by this function.
  1187  */
  1188  static Expr *exprDup(sqlite3 *db, Expr *p, int dupFlags, u8 **pzBuffer){
  1189    Expr *pNew;           /* Value to return */
  1190    u8 *zAlloc;           /* Memory space from which to build Expr object */
  1191    u32 staticFlag;       /* EP_Static if space not obtained from malloc */
  1192  
  1193    assert( db!=0 );
  1194    assert( p );
  1195    assert( dupFlags==0 || dupFlags==EXPRDUP_REDUCE );
  1196    assert( pzBuffer==0 || dupFlags==EXPRDUP_REDUCE );
  1197  
  1198    /* Figure out where to write the new Expr structure. */
  1199    if( pzBuffer ){
  1200      zAlloc = *pzBuffer;
  1201      staticFlag = EP_Static;
  1202    }else{
  1203      zAlloc = sqlite3DbMallocRawNN(db, dupedExprSize(p, dupFlags));
  1204      staticFlag = 0;
  1205    }
  1206    pNew = (Expr *)zAlloc;
  1207  
  1208    if( pNew ){
  1209      /* Set nNewSize to the size allocated for the structure pointed to
  1210      ** by pNew. This is either EXPR_FULLSIZE, EXPR_REDUCEDSIZE or
  1211      ** EXPR_TOKENONLYSIZE. nToken is set to the number of bytes consumed
  1212      ** by the copy of the p->u.zToken string (if any).
  1213      */
  1214      const unsigned nStructSize = dupedExprStructSize(p, dupFlags);
  1215      const int nNewSize = nStructSize & 0xfff;
  1216      int nToken;
  1217      if( !ExprHasProperty(p, EP_IntValue) && p->u.zToken ){
  1218        nToken = sqlite3Strlen30(p->u.zToken) + 1;
  1219      }else{
  1220        nToken = 0;
  1221      }
  1222      if( dupFlags ){
  1223        assert( ExprHasProperty(p, EP_Reduced)==0 );
  1224        memcpy(zAlloc, p, nNewSize);
  1225      }else{
  1226        u32 nSize = (u32)exprStructSize(p);
  1227        memcpy(zAlloc, p, nSize);
  1228        if( nSize<EXPR_FULLSIZE ){ 
  1229          memset(&zAlloc[nSize], 0, EXPR_FULLSIZE-nSize);
  1230        }
  1231      }
  1232  
  1233      /* Set the EP_Reduced, EP_TokenOnly, and EP_Static flags appropriately. */
  1234      pNew->flags &= ~(EP_Reduced|EP_TokenOnly|EP_Static|EP_MemToken);
  1235      pNew->flags |= nStructSize & (EP_Reduced|EP_TokenOnly);
  1236      pNew->flags |= staticFlag;
  1237  
  1238      /* Copy the p->u.zToken string, if any. */
  1239      if( nToken ){
  1240        char *zToken = pNew->u.zToken = (char*)&zAlloc[nNewSize];
  1241        memcpy(zToken, p->u.zToken, nToken);
  1242      }
  1243  
  1244      if( 0==((p->flags|pNew->flags) & (EP_TokenOnly|EP_Leaf)) ){
  1245        /* Fill in the pNew->x.pSelect or pNew->x.pList member. */
  1246        if( ExprHasProperty(p, EP_xIsSelect) ){
  1247          pNew->x.pSelect = sqlite3SelectDup(db, p->x.pSelect, dupFlags);
  1248        }else{
  1249          pNew->x.pList = sqlite3ExprListDup(db, p->x.pList, dupFlags);
  1250        }
  1251      }
  1252  
  1253      /* Fill in pNew->pLeft and pNew->pRight. */
  1254      if( ExprHasProperty(pNew, EP_Reduced|EP_TokenOnly) ){
  1255        zAlloc += dupedExprNodeSize(p, dupFlags);
  1256        if( !ExprHasProperty(pNew, EP_TokenOnly|EP_Leaf) ){
  1257          pNew->pLeft = p->pLeft ?
  1258                        exprDup(db, p->pLeft, EXPRDUP_REDUCE, &zAlloc) : 0;
  1259          pNew->pRight = p->pRight ?
  1260                         exprDup(db, p->pRight, EXPRDUP_REDUCE, &zAlloc) : 0;
  1261        }
  1262        if( pzBuffer ){
  1263          *pzBuffer = zAlloc;
  1264        }
  1265      }else{
  1266        if( !ExprHasProperty(p, EP_TokenOnly|EP_Leaf) ){
  1267          if( pNew->op==TK_SELECT_COLUMN ){
  1268            pNew->pLeft = p->pLeft;
  1269            assert( p->iColumn==0 || p->pRight==0 );
  1270            assert( p->pRight==0  || p->pRight==p->pLeft );
  1271          }else{
  1272            pNew->pLeft = sqlite3ExprDup(db, p->pLeft, 0);
  1273          }
  1274          pNew->pRight = sqlite3ExprDup(db, p->pRight, 0);
  1275        }
  1276      }
  1277    }
  1278    return pNew;
  1279  }
  1280  
  1281  /*
  1282  ** Create and return a deep copy of the object passed as the second 
  1283  ** argument. If an OOM condition is encountered, NULL is returned
  1284  ** and the db->mallocFailed flag set.
  1285  */
  1286  #ifndef SQLITE_OMIT_CTE
  1287  static With *withDup(sqlite3 *db, With *p){
  1288    With *pRet = 0;
  1289    if( p ){
  1290      int nByte = sizeof(*p) + sizeof(p->a[0]) * (p->nCte-1);
  1291      pRet = sqlite3DbMallocZero(db, nByte);
  1292      if( pRet ){
  1293        int i;
  1294        pRet->nCte = p->nCte;
  1295        for(i=0; i<p->nCte; i++){
  1296          pRet->a[i].pSelect = sqlite3SelectDup(db, p->a[i].pSelect, 0);
  1297          pRet->a[i].pCols = sqlite3ExprListDup(db, p->a[i].pCols, 0);
  1298          pRet->a[i].zName = sqlite3DbStrDup(db, p->a[i].zName);
  1299        }
  1300      }
  1301    }
  1302    return pRet;
  1303  }
  1304  #else
  1305  # define withDup(x,y) 0
  1306  #endif
  1307  
  1308  /*
  1309  ** The following group of routines make deep copies of expressions,
  1310  ** expression lists, ID lists, and select statements.  The copies can
  1311  ** be deleted (by being passed to their respective ...Delete() routines)
  1312  ** without effecting the originals.
  1313  **
  1314  ** The expression list, ID, and source lists return by sqlite3ExprListDup(),
  1315  ** sqlite3IdListDup(), and sqlite3SrcListDup() can not be further expanded 
  1316  ** by subsequent calls to sqlite*ListAppend() routines.
  1317  **
  1318  ** Any tables that the SrcList might point to are not duplicated.
  1319  **
  1320  ** The flags parameter contains a combination of the EXPRDUP_XXX flags.
  1321  ** If the EXPRDUP_REDUCE flag is set, then the structure returned is a
  1322  ** truncated version of the usual Expr structure that will be stored as
  1323  ** part of the in-memory representation of the database schema.
  1324  */
  1325  Expr *sqlite3ExprDup(sqlite3 *db, Expr *p, int flags){
  1326    assert( flags==0 || flags==EXPRDUP_REDUCE );
  1327    return p ? exprDup(db, p, flags, 0) : 0;
  1328  }
  1329  ExprList *sqlite3ExprListDup(sqlite3 *db, ExprList *p, int flags){
  1330    ExprList *pNew;
  1331    struct ExprList_item *pItem, *pOldItem;
  1332    int i;
  1333    Expr *pPriorSelectCol = 0;
  1334    assert( db!=0 );
  1335    if( p==0 ) return 0;
  1336    pNew = sqlite3DbMallocRawNN(db, sqlite3DbMallocSize(db, p));
  1337    if( pNew==0 ) return 0;
  1338    pNew->nExpr = p->nExpr;
  1339    pItem = pNew->a;
  1340    pOldItem = p->a;
  1341    for(i=0; i<p->nExpr; i++, pItem++, pOldItem++){
  1342      Expr *pOldExpr = pOldItem->pExpr;
  1343      Expr *pNewExpr;
  1344      pItem->pExpr = sqlite3ExprDup(db, pOldExpr, flags);
  1345      if( pOldExpr 
  1346       && pOldExpr->op==TK_SELECT_COLUMN
  1347       && (pNewExpr = pItem->pExpr)!=0 
  1348      ){
  1349        assert( pNewExpr->iColumn==0 || i>0 );
  1350        if( pNewExpr->iColumn==0 ){
  1351          assert( pOldExpr->pLeft==pOldExpr->pRight );
  1352          pPriorSelectCol = pNewExpr->pLeft = pNewExpr->pRight;
  1353        }else{
  1354          assert( i>0 );
  1355          assert( pItem[-1].pExpr!=0 );
  1356          assert( pNewExpr->iColumn==pItem[-1].pExpr->iColumn+1 );
  1357          assert( pPriorSelectCol==pItem[-1].pExpr->pLeft );
  1358          pNewExpr->pLeft = pPriorSelectCol;
  1359        }
  1360      }
  1361      pItem->zName = sqlite3DbStrDup(db, pOldItem->zName);
  1362      pItem->zSpan = sqlite3DbStrDup(db, pOldItem->zSpan);
  1363      pItem->sortOrder = pOldItem->sortOrder;
  1364      pItem->done = 0;
  1365      pItem->bSpanIsTab = pOldItem->bSpanIsTab;
  1366      pItem->u = pOldItem->u;
  1367    }
  1368    return pNew;
  1369  }
  1370  
  1371  /*
  1372  ** If cursors, triggers, views and subqueries are all omitted from
  1373  ** the build, then none of the following routines, except for 
  1374  ** sqlite3SelectDup(), can be called. sqlite3SelectDup() is sometimes
  1375  ** called with a NULL argument.
  1376  */
  1377  #if !defined(SQLITE_OMIT_VIEW) || !defined(SQLITE_OMIT_TRIGGER) \
  1378   || !defined(SQLITE_OMIT_SUBQUERY)
  1379  SrcList *sqlite3SrcListDup(sqlite3 *db, SrcList *p, int flags){
  1380    SrcList *pNew;
  1381    int i;
  1382    int nByte;
  1383    assert( db!=0 );
  1384    if( p==0 ) return 0;
  1385    nByte = sizeof(*p) + (p->nSrc>0 ? sizeof(p->a[0]) * (p->nSrc-1) : 0);
  1386    pNew = sqlite3DbMallocRawNN(db, nByte );
  1387    if( pNew==0 ) return 0;
  1388    pNew->nSrc = pNew->nAlloc = p->nSrc;
  1389    for(i=0; i<p->nSrc; i++){
  1390      struct SrcList_item *pNewItem = &pNew->a[i];
  1391      struct SrcList_item *pOldItem = &p->a[i];
  1392      Table *pTab;
  1393      pNewItem->pSchema = pOldItem->pSchema;
  1394      pNewItem->zDatabase = sqlite3DbStrDup(db, pOldItem->zDatabase);
  1395      pNewItem->zName = sqlite3DbStrDup(db, pOldItem->zName);
  1396      pNewItem->zAlias = sqlite3DbStrDup(db, pOldItem->zAlias);
  1397      pNewItem->fg = pOldItem->fg;
  1398      pNewItem->iCursor = pOldItem->iCursor;
  1399      pNewItem->addrFillSub = pOldItem->addrFillSub;
  1400      pNewItem->regReturn = pOldItem->regReturn;
  1401      if( pNewItem->fg.isIndexedBy ){
  1402        pNewItem->u1.zIndexedBy = sqlite3DbStrDup(db, pOldItem->u1.zIndexedBy);
  1403      }
  1404      pNewItem->pIBIndex = pOldItem->pIBIndex;
  1405      if( pNewItem->fg.isTabFunc ){
  1406        pNewItem->u1.pFuncArg = 
  1407            sqlite3ExprListDup(db, pOldItem->u1.pFuncArg, flags);
  1408      }
  1409      pTab = pNewItem->pTab = pOldItem->pTab;
  1410      if( pTab ){
  1411        pTab->nTabRef++;
  1412      }
  1413      pNewItem->pSelect = sqlite3SelectDup(db, pOldItem->pSelect, flags);
  1414      pNewItem->pOn = sqlite3ExprDup(db, pOldItem->pOn, flags);
  1415      pNewItem->pUsing = sqlite3IdListDup(db, pOldItem->pUsing);
  1416      pNewItem->colUsed = pOldItem->colUsed;
  1417    }
  1418    return pNew;
  1419  }
  1420  IdList *sqlite3IdListDup(sqlite3 *db, IdList *p){
  1421    IdList *pNew;
  1422    int i;
  1423    assert( db!=0 );
  1424    if( p==0 ) return 0;
  1425    pNew = sqlite3DbMallocRawNN(db, sizeof(*pNew) );
  1426    if( pNew==0 ) return 0;
  1427    pNew->nId = p->nId;
  1428    pNew->a = sqlite3DbMallocRawNN(db, p->nId*sizeof(p->a[0]) );
  1429    if( pNew->a==0 ){
  1430      sqlite3DbFreeNN(db, pNew);
  1431      return 0;
  1432    }
  1433    /* Note that because the size of the allocation for p->a[] is not
  1434    ** necessarily a power of two, sqlite3IdListAppend() may not be called
  1435    ** on the duplicate created by this function. */
  1436    for(i=0; i<p->nId; i++){
  1437      struct IdList_item *pNewItem = &pNew->a[i];
  1438      struct IdList_item *pOldItem = &p->a[i];
  1439      pNewItem->zName = sqlite3DbStrDup(db, pOldItem->zName);
  1440      pNewItem->idx = pOldItem->idx;
  1441    }
  1442    return pNew;
  1443  }
  1444  Select *sqlite3SelectDup(sqlite3 *db, Select *pDup, int flags){
  1445    Select *pRet = 0;
  1446    Select *pNext = 0;
  1447    Select **pp = &pRet;
  1448    Select *p;
  1449  
  1450    assert( db!=0 );
  1451    for(p=pDup; p; p=p->pPrior){
  1452      Select *pNew = sqlite3DbMallocRawNN(db, sizeof(*p) );
  1453      if( pNew==0 ) break;
  1454      pNew->pEList = sqlite3ExprListDup(db, p->pEList, flags);
  1455      pNew->pSrc = sqlite3SrcListDup(db, p->pSrc, flags);
  1456      pNew->pWhere = sqlite3ExprDup(db, p->pWhere, flags);
  1457      pNew->pGroupBy = sqlite3ExprListDup(db, p->pGroupBy, flags);
  1458      pNew->pHaving = sqlite3ExprDup(db, p->pHaving, flags);
  1459      pNew->pOrderBy = sqlite3ExprListDup(db, p->pOrderBy, flags);
  1460      pNew->op = p->op;
  1461      pNew->pNext = pNext;
  1462      pNew->pPrior = 0;
  1463      pNew->pLimit = sqlite3ExprDup(db, p->pLimit, flags);
  1464      pNew->pOffset = sqlite3ExprDup(db, p->pOffset, flags);
  1465      pNew->iLimit = 0;
  1466      pNew->iOffset = 0;
  1467      pNew->selFlags = p->selFlags & ~SF_UsesEphemeral;
  1468      pNew->addrOpenEphm[0] = -1;
  1469      pNew->addrOpenEphm[1] = -1;
  1470      pNew->nSelectRow = p->nSelectRow;
  1471      pNew->pWith = withDup(db, p->pWith);
  1472      sqlite3SelectSetName(pNew, p->zSelName);
  1473      *pp = pNew;
  1474      pp = &pNew->pPrior;
  1475      pNext = pNew;
  1476    }
  1477  
  1478    return pRet;
  1479  }
  1480  #else
  1481  Select *sqlite3SelectDup(sqlite3 *db, Select *p, int flags){
  1482    assert( p==0 );
  1483    return 0;
  1484  }
  1485  #endif
  1486  
  1487  
  1488  /*
  1489  ** Add a new element to the end of an expression list.  If pList is
  1490  ** initially NULL, then create a new expression list.
  1491  **
  1492  ** The pList argument must be either NULL or a pointer to an ExprList
  1493  ** obtained from a prior call to sqlite3ExprListAppend().  This routine
  1494  ** may not be used with an ExprList obtained from sqlite3ExprListDup().
  1495  ** Reason:  This routine assumes that the number of slots in pList->a[]
  1496  ** is a power of two.  That is true for sqlite3ExprListAppend() returns
  1497  ** but is not necessarily true from the return value of sqlite3ExprListDup().
  1498  **
  1499  ** If a memory allocation error occurs, the entire list is freed and
  1500  ** NULL is returned.  If non-NULL is returned, then it is guaranteed
  1501  ** that the new entry was successfully appended.
  1502  */
  1503  ExprList *sqlite3ExprListAppend(
  1504    Parse *pParse,          /* Parsing context */
  1505    ExprList *pList,        /* List to which to append. Might be NULL */
  1506    Expr *pExpr             /* Expression to be appended. Might be NULL */
  1507  ){
  1508    struct ExprList_item *pItem;
  1509    sqlite3 *db = pParse->db;
  1510    assert( db!=0 );
  1511    if( pList==0 ){
  1512      pList = sqlite3DbMallocRawNN(db, sizeof(ExprList) );
  1513      if( pList==0 ){
  1514        goto no_mem;
  1515      }
  1516      pList->nExpr = 0;
  1517    }else if( (pList->nExpr & (pList->nExpr-1))==0 ){
  1518      ExprList *pNew;
  1519      pNew = sqlite3DbRealloc(db, pList, 
  1520               sizeof(*pList)+(2*pList->nExpr - 1)*sizeof(pList->a[0]));
  1521      if( pNew==0 ){
  1522        goto no_mem;
  1523      }
  1524      pList = pNew;
  1525    }
  1526    pItem = &pList->a[pList->nExpr++];
  1527    assert( offsetof(struct ExprList_item,zName)==sizeof(pItem->pExpr) );
  1528    assert( offsetof(struct ExprList_item,pExpr)==0 );
  1529    memset(&pItem->zName,0,sizeof(*pItem)-offsetof(struct ExprList_item,zName));
  1530    pItem->pExpr = pExpr;
  1531    return pList;
  1532  
  1533  no_mem:     
  1534    /* Avoid leaking memory if malloc has failed. */
  1535    sqlite3ExprDelete(db, pExpr);
  1536    sqlite3ExprListDelete(db, pList);
  1537    return 0;
  1538  }
  1539  
  1540  /*
  1541  ** pColumns and pExpr form a vector assignment which is part of the SET
  1542  ** clause of an UPDATE statement.  Like this:
  1543  **
  1544  **        (a,b,c) = (expr1,expr2,expr3)
  1545  ** Or:    (a,b,c) = (SELECT x,y,z FROM ....)
  1546  **
  1547  ** For each term of the vector assignment, append new entries to the
  1548  ** expression list pList.  In the case of a subquery on the RHS, append
  1549  ** TK_SELECT_COLUMN expressions.
  1550  */
  1551  ExprList *sqlite3ExprListAppendVector(
  1552    Parse *pParse,         /* Parsing context */
  1553    ExprList *pList,       /* List to which to append. Might be NULL */
  1554    IdList *pColumns,      /* List of names of LHS of the assignment */
  1555    Expr *pExpr            /* Vector expression to be appended. Might be NULL */
  1556  ){
  1557    sqlite3 *db = pParse->db;
  1558    int n;
  1559    int i;
  1560    int iFirst = pList ? pList->nExpr : 0;
  1561    /* pColumns can only be NULL due to an OOM but an OOM will cause an
  1562    ** exit prior to this routine being invoked */
  1563    if( NEVER(pColumns==0) ) goto vector_append_error;
  1564    if( pExpr==0 ) goto vector_append_error;
  1565  
  1566    /* If the RHS is a vector, then we can immediately check to see that 
  1567    ** the size of the RHS and LHS match.  But if the RHS is a SELECT, 
  1568    ** wildcards ("*") in the result set of the SELECT must be expanded before
  1569    ** we can do the size check, so defer the size check until code generation.
  1570    */
  1571    if( pExpr->op!=TK_SELECT && pColumns->nId!=(n=sqlite3ExprVectorSize(pExpr)) ){
  1572      sqlite3ErrorMsg(pParse, "%d columns assigned %d values",
  1573                      pColumns->nId, n);
  1574      goto vector_append_error;
  1575    }
  1576  
  1577    for(i=0; i<pColumns->nId; i++){
  1578      Expr *pSubExpr = sqlite3ExprForVectorField(pParse, pExpr, i);
  1579      pList = sqlite3ExprListAppend(pParse, pList, pSubExpr);
  1580      if( pList ){
  1581        assert( pList->nExpr==iFirst+i+1 );
  1582        pList->a[pList->nExpr-1].zName = pColumns->a[i].zName;
  1583        pColumns->a[i].zName = 0;
  1584      }
  1585    }
  1586  
  1587    if( !db->mallocFailed && pExpr->op==TK_SELECT && ALWAYS(pList!=0) ){
  1588      Expr *pFirst = pList->a[iFirst].pExpr;
  1589      assert( pFirst!=0 );
  1590      assert( pFirst->op==TK_SELECT_COLUMN );
  1591       
  1592      /* Store the SELECT statement in pRight so it will be deleted when
  1593      ** sqlite3ExprListDelete() is called */
  1594      pFirst->pRight = pExpr;
  1595      pExpr = 0;
  1596  
  1597      /* Remember the size of the LHS in iTable so that we can check that
  1598      ** the RHS and LHS sizes match during code generation. */
  1599      pFirst->iTable = pColumns->nId;
  1600    }
  1601  
  1602  vector_append_error:
  1603    sqlite3ExprDelete(db, pExpr);
  1604    sqlite3IdListDelete(db, pColumns);
  1605    return pList;
  1606  }
  1607  
  1608  /*
  1609  ** Set the sort order for the last element on the given ExprList.
  1610  */
  1611  void sqlite3ExprListSetSortOrder(ExprList *p, int iSortOrder){
  1612    if( p==0 ) return;
  1613    assert( SQLITE_SO_UNDEFINED<0 && SQLITE_SO_ASC>=0 && SQLITE_SO_DESC>0 );
  1614    assert( p->nExpr>0 );
  1615    if( iSortOrder<0 ){
  1616      assert( p->a[p->nExpr-1].sortOrder==SQLITE_SO_ASC );
  1617      return;
  1618    }
  1619    p->a[p->nExpr-1].sortOrder = (u8)iSortOrder;
  1620  }
  1621  
  1622  /*
  1623  ** Set the ExprList.a[].zName element of the most recently added item
  1624  ** on the expression list.
  1625  **
  1626  ** pList might be NULL following an OOM error.  But pName should never be
  1627  ** NULL.  If a memory allocation fails, the pParse->db->mallocFailed flag
  1628  ** is set.
  1629  */
  1630  void sqlite3ExprListSetName(
  1631    Parse *pParse,          /* Parsing context */
  1632    ExprList *pList,        /* List to which to add the span. */
  1633    Token *pName,           /* Name to be added */
  1634    int dequote             /* True to cause the name to be dequoted */
  1635  ){
  1636    assert( pList!=0 || pParse->db->mallocFailed!=0 );
  1637    if( pList ){
  1638      struct ExprList_item *pItem;
  1639      assert( pList->nExpr>0 );
  1640      pItem = &pList->a[pList->nExpr-1];
  1641      assert( pItem->zName==0 );
  1642      pItem->zName = sqlite3DbStrNDup(pParse->db, pName->z, pName->n);
  1643      if( dequote ) sqlite3Dequote(pItem->zName);
  1644    }
  1645  }
  1646  
  1647  /*
  1648  ** Set the ExprList.a[].zSpan element of the most recently added item
  1649  ** on the expression list.
  1650  **
  1651  ** pList might be NULL following an OOM error.  But pSpan should never be
  1652  ** NULL.  If a memory allocation fails, the pParse->db->mallocFailed flag
  1653  ** is set.
  1654  */
  1655  void sqlite3ExprListSetSpan(
  1656    Parse *pParse,          /* Parsing context */
  1657    ExprList *pList,        /* List to which to add the span. */
  1658    ExprSpan *pSpan         /* The span to be added */
  1659  ){
  1660    sqlite3 *db = pParse->db;
  1661    assert( pList!=0 || db->mallocFailed!=0 );
  1662    if( pList ){
  1663      struct ExprList_item *pItem = &pList->a[pList->nExpr-1];
  1664      assert( pList->nExpr>0 );
  1665      assert( db->mallocFailed || pItem->pExpr==pSpan->pExpr );
  1666      sqlite3DbFree(db, pItem->zSpan);
  1667      pItem->zSpan = sqlite3DbStrNDup(db, (char*)pSpan->zStart,
  1668                                      (int)(pSpan->zEnd - pSpan->zStart));
  1669    }
  1670  }
  1671  
  1672  /*
  1673  ** If the expression list pEList contains more than iLimit elements,
  1674  ** leave an error message in pParse.
  1675  */
  1676  void sqlite3ExprListCheckLength(
  1677    Parse *pParse,
  1678    ExprList *pEList,
  1679    const char *zObject
  1680  ){
  1681    int mx = pParse->db->aLimit[SQLITE_LIMIT_COLUMN];
  1682    testcase( pEList && pEList->nExpr==mx );
  1683    testcase( pEList && pEList->nExpr==mx+1 );
  1684    if( pEList && pEList->nExpr>mx ){
  1685      sqlite3ErrorMsg(pParse, "too many columns in %s", zObject);
  1686    }
  1687  }
  1688  
  1689  /*
  1690  ** Delete an entire expression list.
  1691  */
  1692  static SQLITE_NOINLINE void exprListDeleteNN(sqlite3 *db, ExprList *pList){
  1693    int i = pList->nExpr;
  1694    struct ExprList_item *pItem =  pList->a;
  1695    assert( pList->nExpr>0 );
  1696    do{
  1697      sqlite3ExprDelete(db, pItem->pExpr);
  1698      sqlite3DbFree(db, pItem->zName);
  1699      sqlite3DbFree(db, pItem->zSpan);
  1700      pItem++;
  1701    }while( --i>0 );
  1702    sqlite3DbFreeNN(db, pList);
  1703  }
  1704  void sqlite3ExprListDelete(sqlite3 *db, ExprList *pList){
  1705    if( pList ) exprListDeleteNN(db, pList);
  1706  }
  1707  
  1708  /*
  1709  ** Return the bitwise-OR of all Expr.flags fields in the given
  1710  ** ExprList.
  1711  */
  1712  u32 sqlite3ExprListFlags(const ExprList *pList){
  1713    int i;
  1714    u32 m = 0;
  1715    assert( pList!=0 );
  1716    for(i=0; i<pList->nExpr; i++){
  1717       Expr *pExpr = pList->a[i].pExpr;
  1718       assert( pExpr!=0 );
  1719       m |= pExpr->flags;
  1720    }
  1721    return m;
  1722  }
  1723  
  1724  /*
  1725  ** This is a SELECT-node callback for the expression walker that
  1726  ** always "fails".  By "fail" in this case, we mean set
  1727  ** pWalker->eCode to zero and abort.
  1728  **
  1729  ** This callback is used by multiple expression walkers.
  1730  */
  1731  int sqlite3SelectWalkFail(Walker *pWalker, Select *NotUsed){
  1732    UNUSED_PARAMETER(NotUsed);
  1733    pWalker->eCode = 0;
  1734    return WRC_Abort;
  1735  }
  1736  
  1737  /*
  1738  ** These routines are Walker callbacks used to check expressions to
  1739  ** see if they are "constant" for some definition of constant.  The
  1740  ** Walker.eCode value determines the type of "constant" we are looking
  1741  ** for.
  1742  **
  1743  ** These callback routines are used to implement the following:
  1744  **
  1745  **     sqlite3ExprIsConstant()                  pWalker->eCode==1
  1746  **     sqlite3ExprIsConstantNotJoin()           pWalker->eCode==2
  1747  **     sqlite3ExprIsTableConstant()             pWalker->eCode==3
  1748  **     sqlite3ExprIsConstantOrFunction()        pWalker->eCode==4 or 5
  1749  **
  1750  ** In all cases, the callbacks set Walker.eCode=0 and abort if the expression
  1751  ** is found to not be a constant.
  1752  **
  1753  ** The sqlite3ExprIsConstantOrFunction() is used for evaluating expressions
  1754  ** in a CREATE TABLE statement.  The Walker.eCode value is 5 when parsing
  1755  ** an existing schema and 4 when processing a new statement.  A bound
  1756  ** parameter raises an error for new statements, but is silently converted
  1757  ** to NULL for existing schemas.  This allows sqlite_master tables that 
  1758  ** contain a bound parameter because they were generated by older versions
  1759  ** of SQLite to be parsed by newer versions of SQLite without raising a
  1760  ** malformed schema error.
  1761  */
  1762  static int exprNodeIsConstant(Walker *pWalker, Expr *pExpr){
  1763  
  1764    /* If pWalker->eCode is 2 then any term of the expression that comes from
  1765    ** the ON or USING clauses of a left join disqualifies the expression
  1766    ** from being considered constant. */
  1767    if( pWalker->eCode==2 && ExprHasProperty(pExpr, EP_FromJoin) ){
  1768      pWalker->eCode = 0;
  1769      return WRC_Abort;
  1770    }
  1771  
  1772    switch( pExpr->op ){
  1773      /* Consider functions to be constant if all their arguments are constant
  1774      ** and either pWalker->eCode==4 or 5 or the function has the
  1775      ** SQLITE_FUNC_CONST flag. */
  1776      case TK_FUNCTION:
  1777        if( pWalker->eCode>=4 || ExprHasProperty(pExpr,EP_ConstFunc) ){
  1778          return WRC_Continue;
  1779        }else{
  1780          pWalker->eCode = 0;
  1781          return WRC_Abort;
  1782        }
  1783      case TK_ID:
  1784      case TK_COLUMN:
  1785      case TK_AGG_FUNCTION:
  1786      case TK_AGG_COLUMN:
  1787        testcase( pExpr->op==TK_ID );
  1788        testcase( pExpr->op==TK_COLUMN );
  1789        testcase( pExpr->op==TK_AGG_FUNCTION );
  1790        testcase( pExpr->op==TK_AGG_COLUMN );
  1791        if( pWalker->eCode==3 && pExpr->iTable==pWalker->u.iCur ){
  1792          return WRC_Continue;
  1793        }
  1794        /* Fall through */
  1795      case TK_IF_NULL_ROW:
  1796        testcase( pExpr->op==TK_IF_NULL_ROW );
  1797        pWalker->eCode = 0;
  1798        return WRC_Abort;
  1799      case TK_VARIABLE:
  1800        if( pWalker->eCode==5 ){
  1801          /* Silently convert bound parameters that appear inside of CREATE
  1802          ** statements into a NULL when parsing the CREATE statement text out
  1803          ** of the sqlite_master table */
  1804          pExpr->op = TK_NULL;
  1805        }else if( pWalker->eCode==4 ){
  1806          /* A bound parameter in a CREATE statement that originates from
  1807          ** sqlite3_prepare() causes an error */
  1808          pWalker->eCode = 0;
  1809          return WRC_Abort;
  1810        }
  1811        /* Fall through */
  1812      default:
  1813        testcase( pExpr->op==TK_SELECT ); /* sqlite3SelectWalkFail will disallow */
  1814        testcase( pExpr->op==TK_EXISTS ); /* sqlite3SelectWalkFail will disallow */
  1815        return WRC_Continue;
  1816    }
  1817  }
  1818  static int exprIsConst(Expr *p, int initFlag, int iCur){
  1819    Walker w;
  1820    w.eCode = initFlag;
  1821    w.xExprCallback = exprNodeIsConstant;
  1822    w.xSelectCallback = sqlite3SelectWalkFail;
  1823  #ifdef SQLITE_DEBUG
  1824    w.xSelectCallback2 = sqlite3SelectWalkAssert2;
  1825  #endif
  1826    w.u.iCur = iCur;
  1827    sqlite3WalkExpr(&w, p);
  1828    return w.eCode;
  1829  }
  1830  
  1831  /*
  1832  ** Walk an expression tree.  Return non-zero if the expression is constant
  1833  ** and 0 if it involves variables or function calls.
  1834  **
  1835  ** For the purposes of this function, a double-quoted string (ex: "abc")
  1836  ** is considered a variable but a single-quoted string (ex: 'abc') is
  1837  ** a constant.
  1838  */
  1839  int sqlite3ExprIsConstant(Expr *p){
  1840    return exprIsConst(p, 1, 0);
  1841  }
  1842  
  1843  /*
  1844  ** Walk an expression tree.  Return non-zero if the expression is constant
  1845  ** that does no originate from the ON or USING clauses of a join.
  1846  ** Return 0 if it involves variables or function calls or terms from
  1847  ** an ON or USING clause.
  1848  */
  1849  int sqlite3ExprIsConstantNotJoin(Expr *p){
  1850    return exprIsConst(p, 2, 0);
  1851  }
  1852  
  1853  /*
  1854  ** Walk an expression tree.  Return non-zero if the expression is constant
  1855  ** for any single row of the table with cursor iCur.  In other words, the
  1856  ** expression must not refer to any non-deterministic function nor any
  1857  ** table other than iCur.
  1858  */
  1859  int sqlite3ExprIsTableConstant(Expr *p, int iCur){
  1860    return exprIsConst(p, 3, iCur);
  1861  }
  1862  
  1863  
  1864  /*
  1865  ** sqlite3WalkExpr() callback used by sqlite3ExprIsConstantOrGroupBy().
  1866  */
  1867  static int exprNodeIsConstantOrGroupBy(Walker *pWalker, Expr *pExpr){
  1868    ExprList *pGroupBy = pWalker->u.pGroupBy;
  1869    int i;
  1870  
  1871    /* Check if pExpr is identical to any GROUP BY term. If so, consider
  1872    ** it constant.  */
  1873    for(i=0; i<pGroupBy->nExpr; i++){
  1874      Expr *p = pGroupBy->a[i].pExpr;
  1875      if( sqlite3ExprCompare(0, pExpr, p, -1)<2 ){
  1876        CollSeq *pColl = sqlite3ExprNNCollSeq(pWalker->pParse, p);
  1877        if( sqlite3_stricmp("BINARY", pColl->zName)==0 ){
  1878          return WRC_Prune;
  1879        }
  1880      }
  1881    }
  1882  
  1883    /* Check if pExpr is a sub-select. If so, consider it variable. */
  1884    if( ExprHasProperty(pExpr, EP_xIsSelect) ){
  1885      pWalker->eCode = 0;
  1886      return WRC_Abort;
  1887    }
  1888  
  1889    return exprNodeIsConstant(pWalker, pExpr);
  1890  }
  1891  
  1892  /*
  1893  ** Walk the expression tree passed as the first argument. Return non-zero
  1894  ** if the expression consists entirely of constants or copies of terms 
  1895  ** in pGroupBy that sort with the BINARY collation sequence.
  1896  **
  1897  ** This routine is used to determine if a term of the HAVING clause can
  1898  ** be promoted into the WHERE clause.  In order for such a promotion to work,
  1899  ** the value of the HAVING clause term must be the same for all members of
  1900  ** a "group".  The requirement that the GROUP BY term must be BINARY
  1901  ** assumes that no other collating sequence will have a finer-grained
  1902  ** grouping than binary.  In other words (A=B COLLATE binary) implies
  1903  ** A=B in every other collating sequence.  The requirement that the
  1904  ** GROUP BY be BINARY is stricter than necessary.  It would also work
  1905  ** to promote HAVING clauses that use the same alternative collating
  1906  ** sequence as the GROUP BY term, but that is much harder to check,
  1907  ** alternative collating sequences are uncommon, and this is only an
  1908  ** optimization, so we take the easy way out and simply require the
  1909  ** GROUP BY to use the BINARY collating sequence.
  1910  */
  1911  int sqlite3ExprIsConstantOrGroupBy(Parse *pParse, Expr *p, ExprList *pGroupBy){
  1912    Walker w;
  1913    w.eCode = 1;
  1914    w.xExprCallback = exprNodeIsConstantOrGroupBy;
  1915    w.xSelectCallback = 0;
  1916    w.u.pGroupBy = pGroupBy;
  1917    w.pParse = pParse;
  1918    sqlite3WalkExpr(&w, p);
  1919    return w.eCode;
  1920  }
  1921  
  1922  /*
  1923  ** Walk an expression tree.  Return non-zero if the expression is constant
  1924  ** or a function call with constant arguments.  Return and 0 if there
  1925  ** are any variables.
  1926  **
  1927  ** For the purposes of this function, a double-quoted string (ex: "abc")
  1928  ** is considered a variable but a single-quoted string (ex: 'abc') is
  1929  ** a constant.
  1930  */
  1931  int sqlite3ExprIsConstantOrFunction(Expr *p, u8 isInit){
  1932    assert( isInit==0 || isInit==1 );
  1933    return exprIsConst(p, 4+isInit, 0);
  1934  }
  1935  
  1936  #ifdef SQLITE_ENABLE_CURSOR_HINTS
  1937  /*
  1938  ** Walk an expression tree.  Return 1 if the expression contains a
  1939  ** subquery of some kind.  Return 0 if there are no subqueries.
  1940  */
  1941  int sqlite3ExprContainsSubquery(Expr *p){
  1942    Walker w;
  1943    w.eCode = 1;
  1944    w.xExprCallback = sqlite3ExprWalkNoop;
  1945    w.xSelectCallback = sqlite3SelectWalkFail;
  1946  #ifdef SQLITE_DEBUG
  1947    w.xSelectCallback2 = sqlite3SelectWalkAssert2;
  1948  #endif
  1949    sqlite3WalkExpr(&w, p);
  1950    return w.eCode==0;
  1951  }
  1952  #endif
  1953  
  1954  /*
  1955  ** If the expression p codes a constant integer that is small enough
  1956  ** to fit in a 32-bit integer, return 1 and put the value of the integer
  1957  ** in *pValue.  If the expression is not an integer or if it is too big
  1958  ** to fit in a signed 32-bit integer, return 0 and leave *pValue unchanged.
  1959  */
  1960  int sqlite3ExprIsInteger(Expr *p, int *pValue){
  1961    int rc = 0;
  1962    if( p==0 ) return 0;  /* Can only happen following on OOM */
  1963  
  1964    /* If an expression is an integer literal that fits in a signed 32-bit
  1965    ** integer, then the EP_IntValue flag will have already been set */
  1966    assert( p->op!=TK_INTEGER || (p->flags & EP_IntValue)!=0
  1967             || sqlite3GetInt32(p->u.zToken, &rc)==0 );
  1968  
  1969    if( p->flags & EP_IntValue ){
  1970      *pValue = p->u.iValue;
  1971      return 1;
  1972    }
  1973    switch( p->op ){
  1974      case TK_UPLUS: {
  1975        rc = sqlite3ExprIsInteger(p->pLeft, pValue);
  1976        break;
  1977      }
  1978      case TK_UMINUS: {
  1979        int v;
  1980        if( sqlite3ExprIsInteger(p->pLeft, &v) ){
  1981          assert( v!=(-2147483647-1) );
  1982          *pValue = -v;
  1983          rc = 1;
  1984        }
  1985        break;
  1986      }
  1987      default: break;
  1988    }
  1989    return rc;
  1990  }
  1991  
  1992  /*
  1993  ** Return FALSE if there is no chance that the expression can be NULL.
  1994  **
  1995  ** If the expression might be NULL or if the expression is too complex
  1996  ** to tell return TRUE.  
  1997  **
  1998  ** This routine is used as an optimization, to skip OP_IsNull opcodes
  1999  ** when we know that a value cannot be NULL.  Hence, a false positive
  2000  ** (returning TRUE when in fact the expression can never be NULL) might
  2001  ** be a small performance hit but is otherwise harmless.  On the other
  2002  ** hand, a false negative (returning FALSE when the result could be NULL)
  2003  ** will likely result in an incorrect answer.  So when in doubt, return
  2004  ** TRUE.
  2005  */
  2006  int sqlite3ExprCanBeNull(const Expr *p){
  2007    u8 op;
  2008    while( p->op==TK_UPLUS || p->op==TK_UMINUS ){ p = p->pLeft; }
  2009    op = p->op;
  2010    if( op==TK_REGISTER ) op = p->op2;
  2011    switch( op ){
  2012      case TK_INTEGER:
  2013      case TK_STRING:
  2014      case TK_FLOAT:
  2015      case TK_BLOB:
  2016        return 0;
  2017      case TK_COLUMN:
  2018        return ExprHasProperty(p, EP_CanBeNull) ||
  2019               p->pTab==0 ||  /* Reference to column of index on expression */
  2020               (p->iColumn>=0 && p->pTab->aCol[p->iColumn].notNull==0);
  2021      default:
  2022        return 1;
  2023    }
  2024  }
  2025  
  2026  /*
  2027  ** Return TRUE if the given expression is a constant which would be
  2028  ** unchanged by OP_Affinity with the affinity given in the second
  2029  ** argument.
  2030  **
  2031  ** This routine is used to determine if the OP_Affinity operation
  2032  ** can be omitted.  When in doubt return FALSE.  A false negative
  2033  ** is harmless.  A false positive, however, can result in the wrong
  2034  ** answer.
  2035  */
  2036  int sqlite3ExprNeedsNoAffinityChange(const Expr *p, char aff){
  2037    u8 op;
  2038    if( aff==SQLITE_AFF_BLOB ) return 1;
  2039    while( p->op==TK_UPLUS || p->op==TK_UMINUS ){ p = p->pLeft; }
  2040    op = p->op;
  2041    if( op==TK_REGISTER ) op = p->op2;
  2042    switch( op ){
  2043      case TK_INTEGER: {
  2044        return aff==SQLITE_AFF_INTEGER || aff==SQLITE_AFF_NUMERIC;
  2045      }
  2046      case TK_FLOAT: {
  2047        return aff==SQLITE_AFF_REAL || aff==SQLITE_AFF_NUMERIC;
  2048      }
  2049      case TK_STRING: {
  2050        return aff==SQLITE_AFF_TEXT;
  2051      }
  2052      case TK_BLOB: {
  2053        return 1;
  2054      }
  2055      case TK_COLUMN: {
  2056        assert( p->iTable>=0 );  /* p cannot be part of a CHECK constraint */
  2057        return p->iColumn<0
  2058            && (aff==SQLITE_AFF_INTEGER || aff==SQLITE_AFF_NUMERIC);
  2059      }
  2060      default: {
  2061        return 0;
  2062      }
  2063    }
  2064  }
  2065  
  2066  /*
  2067  ** Return TRUE if the given string is a row-id column name.
  2068  */
  2069  int sqlite3IsRowid(const char *z){
  2070    if( sqlite3StrICmp(z, "_ROWID_")==0 ) return 1;
  2071    if( sqlite3StrICmp(z, "ROWID")==0 ) return 1;
  2072    if( sqlite3StrICmp(z, "OID")==0 ) return 1;
  2073    return 0;
  2074  }
  2075  
  2076  /*
  2077  ** pX is the RHS of an IN operator.  If pX is a SELECT statement 
  2078  ** that can be simplified to a direct table access, then return
  2079  ** a pointer to the SELECT statement.  If pX is not a SELECT statement,
  2080  ** or if the SELECT statement needs to be manifested into a transient
  2081  ** table, then return NULL.
  2082  */
  2083  #ifndef SQLITE_OMIT_SUBQUERY
  2084  static Select *isCandidateForInOpt(Expr *pX){
  2085    Select *p;
  2086    SrcList *pSrc;
  2087    ExprList *pEList;
  2088    Table *pTab;
  2089    int i;
  2090    if( !ExprHasProperty(pX, EP_xIsSelect) ) return 0;  /* Not a subquery */
  2091    if( ExprHasProperty(pX, EP_VarSelect)  ) return 0;  /* Correlated subq */
  2092    p = pX->x.pSelect;
  2093    if( p->pPrior ) return 0;              /* Not a compound SELECT */
  2094    if( p->selFlags & (SF_Distinct|SF_Aggregate) ){
  2095      testcase( (p->selFlags & (SF_Distinct|SF_Aggregate))==SF_Distinct );
  2096      testcase( (p->selFlags & (SF_Distinct|SF_Aggregate))==SF_Aggregate );
  2097      return 0; /* No DISTINCT keyword and no aggregate functions */
  2098    }
  2099    assert( p->pGroupBy==0 );              /* Has no GROUP BY clause */
  2100    if( p->pLimit ) return 0;              /* Has no LIMIT clause */
  2101    assert( p->pOffset==0 );               /* No LIMIT means no OFFSET */
  2102    if( p->pWhere ) return 0;              /* Has no WHERE clause */
  2103    pSrc = p->pSrc;
  2104    assert( pSrc!=0 );
  2105    if( pSrc->nSrc!=1 ) return 0;          /* Single term in FROM clause */
  2106    if( pSrc->a[0].pSelect ) return 0;     /* FROM is not a subquery or view */
  2107    pTab = pSrc->a[0].pTab;
  2108    assert( pTab!=0 );
  2109    assert( pTab->pSelect==0 );            /* FROM clause is not a view */
  2110    if( IsVirtual(pTab) ) return 0;        /* FROM clause not a virtual table */
  2111    pEList = p->pEList;
  2112    assert( pEList!=0 );
  2113    /* All SELECT results must be columns. */
  2114    for(i=0; i<pEList->nExpr; i++){
  2115      Expr *pRes = pEList->a[i].pExpr;
  2116      if( pRes->op!=TK_COLUMN ) return 0;
  2117      assert( pRes->iTable==pSrc->a[0].iCursor );  /* Not a correlated subquery */
  2118    }
  2119    return p;
  2120  }
  2121  #endif /* SQLITE_OMIT_SUBQUERY */
  2122  
  2123  #ifndef SQLITE_OMIT_SUBQUERY
  2124  /*
  2125  ** Generate code that checks the left-most column of index table iCur to see if
  2126  ** it contains any NULL entries.  Cause the register at regHasNull to be set
  2127  ** to a non-NULL value if iCur contains no NULLs.  Cause register regHasNull
  2128  ** to be set to NULL if iCur contains one or more NULL values.
  2129  */
  2130  static void sqlite3SetHasNullFlag(Vdbe *v, int iCur, int regHasNull){
  2131    int addr1;
  2132    sqlite3VdbeAddOp2(v, OP_Integer, 0, regHasNull);
  2133    addr1 = sqlite3VdbeAddOp1(v, OP_Rewind, iCur); VdbeCoverage(v);
  2134    sqlite3VdbeAddOp3(v, OP_Column, iCur, 0, regHasNull);
  2135    sqlite3VdbeChangeP5(v, OPFLAG_TYPEOFARG);
  2136    VdbeComment((v, "first_entry_in(%d)", iCur));
  2137    sqlite3VdbeJumpHere(v, addr1);
  2138  }
  2139  #endif
  2140  
  2141  
  2142  #ifndef SQLITE_OMIT_SUBQUERY
  2143  /*
  2144  ** The argument is an IN operator with a list (not a subquery) on the 
  2145  ** right-hand side.  Return TRUE if that list is constant.
  2146  */
  2147  static int sqlite3InRhsIsConstant(Expr *pIn){
  2148    Expr *pLHS;
  2149    int res;
  2150    assert( !ExprHasProperty(pIn, EP_xIsSelect) );
  2151    pLHS = pIn->pLeft;
  2152    pIn->pLeft = 0;
  2153    res = sqlite3ExprIsConstant(pIn);
  2154    pIn->pLeft = pLHS;
  2155    return res;
  2156  }
  2157  #endif
  2158  
  2159  /*
  2160  ** This function is used by the implementation of the IN (...) operator.
  2161  ** The pX parameter is the expression on the RHS of the IN operator, which
  2162  ** might be either a list of expressions or a subquery.
  2163  **
  2164  ** The job of this routine is to find or create a b-tree object that can
  2165  ** be used either to test for membership in the RHS set or to iterate through
  2166  ** all members of the RHS set, skipping duplicates.
  2167  **
  2168  ** A cursor is opened on the b-tree object that is the RHS of the IN operator
  2169  ** and pX->iTable is set to the index of that cursor.
  2170  **
  2171  ** The returned value of this function indicates the b-tree type, as follows:
  2172  **
  2173  **   IN_INDEX_ROWID      - The cursor was opened on a database table.
  2174  **   IN_INDEX_INDEX_ASC  - The cursor was opened on an ascending index.
  2175  **   IN_INDEX_INDEX_DESC - The cursor was opened on a descending index.
  2176  **   IN_INDEX_EPH        - The cursor was opened on a specially created and
  2177  **                         populated epheremal table.
  2178  **   IN_INDEX_NOOP       - No cursor was allocated.  The IN operator must be
  2179  **                         implemented as a sequence of comparisons.
  2180  **
  2181  ** An existing b-tree might be used if the RHS expression pX is a simple
  2182  ** subquery such as:
  2183  **
  2184  **     SELECT <column1>, <column2>... FROM <table>
  2185  **
  2186  ** If the RHS of the IN operator is a list or a more complex subquery, then
  2187  ** an ephemeral table might need to be generated from the RHS and then
  2188  ** pX->iTable made to point to the ephemeral table instead of an
  2189  ** existing table.
  2190  **
  2191  ** The inFlags parameter must contain exactly one of the bits
  2192  ** IN_INDEX_MEMBERSHIP or IN_INDEX_LOOP.  If inFlags contains
  2193  ** IN_INDEX_MEMBERSHIP, then the generated table will be used for a
  2194  ** fast membership test.  When the IN_INDEX_LOOP bit is set, the
  2195  ** IN index will be used to loop over all values of the RHS of the
  2196  ** IN operator.
  2197  **
  2198  ** When IN_INDEX_LOOP is used (and the b-tree will be used to iterate
  2199  ** through the set members) then the b-tree must not contain duplicates.
  2200  ** An epheremal table must be used unless the selected columns are guaranteed
  2201  ** to be unique - either because it is an INTEGER PRIMARY KEY or due to
  2202  ** a UNIQUE constraint or index.
  2203  **
  2204  ** When IN_INDEX_MEMBERSHIP is used (and the b-tree will be used 
  2205  ** for fast set membership tests) then an epheremal table must 
  2206  ** be used unless <columns> is a single INTEGER PRIMARY KEY column or an 
  2207  ** index can be found with the specified <columns> as its left-most.
  2208  **
  2209  ** If the IN_INDEX_NOOP_OK and IN_INDEX_MEMBERSHIP are both set and
  2210  ** if the RHS of the IN operator is a list (not a subquery) then this
  2211  ** routine might decide that creating an ephemeral b-tree for membership
  2212  ** testing is too expensive and return IN_INDEX_NOOP.  In that case, the
  2213  ** calling routine should implement the IN operator using a sequence
  2214  ** of Eq or Ne comparison operations.
  2215  **
  2216  ** When the b-tree is being used for membership tests, the calling function
  2217  ** might need to know whether or not the RHS side of the IN operator
  2218  ** contains a NULL.  If prRhsHasNull is not a NULL pointer and 
  2219  ** if there is any chance that the (...) might contain a NULL value at
  2220  ** runtime, then a register is allocated and the register number written
  2221  ** to *prRhsHasNull. If there is no chance that the (...) contains a
  2222  ** NULL value, then *prRhsHasNull is left unchanged.
  2223  **
  2224  ** If a register is allocated and its location stored in *prRhsHasNull, then
  2225  ** the value in that register will be NULL if the b-tree contains one or more
  2226  ** NULL values, and it will be some non-NULL value if the b-tree contains no
  2227  ** NULL values.
  2228  **
  2229  ** If the aiMap parameter is not NULL, it must point to an array containing
  2230  ** one element for each column returned by the SELECT statement on the RHS
  2231  ** of the IN(...) operator. The i'th entry of the array is populated with the
  2232  ** offset of the index column that matches the i'th column returned by the
  2233  ** SELECT. For example, if the expression and selected index are:
  2234  **
  2235  **   (?,?,?) IN (SELECT a, b, c FROM t1)
  2236  **   CREATE INDEX i1 ON t1(b, c, a);
  2237  **
  2238  ** then aiMap[] is populated with {2, 0, 1}.
  2239  */
  2240  #ifndef SQLITE_OMIT_SUBQUERY
  2241  int sqlite3FindInIndex(
  2242    Parse *pParse,             /* Parsing context */
  2243    Expr *pX,                  /* The right-hand side (RHS) of the IN operator */
  2244    u32 inFlags,               /* IN_INDEX_LOOP, _MEMBERSHIP, and/or _NOOP_OK */
  2245    int *prRhsHasNull,         /* Register holding NULL status.  See notes */
  2246    int *aiMap                 /* Mapping from Index fields to RHS fields */
  2247  ){
  2248    Select *p;                            /* SELECT to the right of IN operator */
  2249    int eType = 0;                        /* Type of RHS table. IN_INDEX_* */
  2250    int iTab = pParse->nTab++;            /* Cursor of the RHS table */
  2251    int mustBeUnique;                     /* True if RHS must be unique */
  2252    Vdbe *v = sqlite3GetVdbe(pParse);     /* Virtual machine being coded */
  2253  
  2254    assert( pX->op==TK_IN );
  2255    mustBeUnique = (inFlags & IN_INDEX_LOOP)!=0;
  2256  
  2257    /* If the RHS of this IN(...) operator is a SELECT, and if it matters 
  2258    ** whether or not the SELECT result contains NULL values, check whether
  2259    ** or not NULL is actually possible (it may not be, for example, due 
  2260    ** to NOT NULL constraints in the schema). If no NULL values are possible,
  2261    ** set prRhsHasNull to 0 before continuing.  */
  2262    if( prRhsHasNull && (pX->flags & EP_xIsSelect) ){
  2263      int i;
  2264      ExprList *pEList = pX->x.pSelect->pEList;
  2265      for(i=0; i<pEList->nExpr; i++){
  2266        if( sqlite3ExprCanBeNull(pEList->a[i].pExpr) ) break;
  2267      }
  2268      if( i==pEList->nExpr ){
  2269        prRhsHasNull = 0;
  2270      }
  2271    }
  2272  
  2273    /* Check to see if an existing table or index can be used to
  2274    ** satisfy the query.  This is preferable to generating a new 
  2275    ** ephemeral table.  */
  2276    if( pParse->nErr==0 && (p = isCandidateForInOpt(pX))!=0 ){
  2277      sqlite3 *db = pParse->db;              /* Database connection */
  2278      Table *pTab;                           /* Table <table>. */
  2279      i16 iDb;                               /* Database idx for pTab */
  2280      ExprList *pEList = p->pEList;
  2281      int nExpr = pEList->nExpr;
  2282  
  2283      assert( p->pEList!=0 );             /* Because of isCandidateForInOpt(p) */
  2284      assert( p->pEList->a[0].pExpr!=0 ); /* Because of isCandidateForInOpt(p) */
  2285      assert( p->pSrc!=0 );               /* Because of isCandidateForInOpt(p) */
  2286      pTab = p->pSrc->a[0].pTab;
  2287  
  2288      /* Code an OP_Transaction and OP_TableLock for <table>. */
  2289      iDb = sqlite3SchemaToIndex(db, pTab->pSchema);
  2290      sqlite3CodeVerifySchema(pParse, iDb);
  2291      sqlite3TableLock(pParse, iDb, pTab->tnum, 0, pTab->zName);
  2292  
  2293      assert(v);  /* sqlite3GetVdbe() has always been previously called */
  2294      if( nExpr==1 && pEList->a[0].pExpr->iColumn<0 ){
  2295        /* The "x IN (SELECT rowid FROM table)" case */
  2296        int iAddr = sqlite3VdbeAddOp0(v, OP_Once);
  2297        VdbeCoverage(v);
  2298  
  2299        sqlite3OpenTable(pParse, iTab, iDb, pTab, OP_OpenRead);
  2300        eType = IN_INDEX_ROWID;
  2301  
  2302        sqlite3VdbeJumpHere(v, iAddr);
  2303      }else{
  2304        Index *pIdx;                         /* Iterator variable */
  2305        int affinity_ok = 1;
  2306        int i;
  2307  
  2308        /* Check that the affinity that will be used to perform each 
  2309        ** comparison is the same as the affinity of each column in table
  2310        ** on the RHS of the IN operator.  If it not, it is not possible to
  2311        ** use any index of the RHS table.  */
  2312        for(i=0; i<nExpr && affinity_ok; i++){
  2313          Expr *pLhs = sqlite3VectorFieldSubexpr(pX->pLeft, i);
  2314          int iCol = pEList->a[i].pExpr->iColumn;
  2315          char idxaff = sqlite3TableColumnAffinity(pTab,iCol); /* RHS table */
  2316          char cmpaff = sqlite3CompareAffinity(pLhs, idxaff);
  2317          testcase( cmpaff==SQLITE_AFF_BLOB );
  2318          testcase( cmpaff==SQLITE_AFF_TEXT );
  2319          switch( cmpaff ){
  2320            case SQLITE_AFF_BLOB:
  2321              break;
  2322            case SQLITE_AFF_TEXT:
  2323              /* sqlite3CompareAffinity() only returns TEXT if one side or the
  2324              ** other has no affinity and the other side is TEXT.  Hence,
  2325              ** the only way for cmpaff to be TEXT is for idxaff to be TEXT
  2326              ** and for the term on the LHS of the IN to have no affinity. */
  2327              assert( idxaff==SQLITE_AFF_TEXT );
  2328              break;
  2329            default:
  2330              affinity_ok = sqlite3IsNumericAffinity(idxaff);
  2331          }
  2332        }
  2333  
  2334        if( affinity_ok ){
  2335          /* Search for an existing index that will work for this IN operator */
  2336          for(pIdx=pTab->pIndex; pIdx && eType==0; pIdx=pIdx->pNext){
  2337            Bitmask colUsed;      /* Columns of the index used */
  2338            Bitmask mCol;         /* Mask for the current column */
  2339            if( pIdx->nColumn<nExpr ) continue;
  2340            /* Maximum nColumn is BMS-2, not BMS-1, so that we can compute
  2341            ** BITMASK(nExpr) without overflowing */
  2342            testcase( pIdx->nColumn==BMS-2 );
  2343            testcase( pIdx->nColumn==BMS-1 );
  2344            if( pIdx->nColumn>=BMS-1 ) continue;
  2345            if( mustBeUnique ){
  2346              if( pIdx->nKeyCol>nExpr
  2347               ||(pIdx->nColumn>nExpr && !IsUniqueIndex(pIdx))
  2348              ){
  2349                continue;  /* This index is not unique over the IN RHS columns */
  2350              }
  2351            }
  2352    
  2353            colUsed = 0;   /* Columns of index used so far */
  2354            for(i=0; i<nExpr; i++){
  2355              Expr *pLhs = sqlite3VectorFieldSubexpr(pX->pLeft, i);
  2356              Expr *pRhs = pEList->a[i].pExpr;
  2357              CollSeq *pReq = sqlite3BinaryCompareCollSeq(pParse, pLhs, pRhs);
  2358              int j;
  2359    
  2360              assert( pReq!=0 || pRhs->iColumn==XN_ROWID || pParse->nErr );
  2361              for(j=0; j<nExpr; j++){
  2362                if( pIdx->aiColumn[j]!=pRhs->iColumn ) continue;
  2363                assert( pIdx->azColl[j] );
  2364                if( pReq!=0 && sqlite3StrICmp(pReq->zName, pIdx->azColl[j])!=0 ){
  2365                  continue;
  2366                }
  2367                break;
  2368              }
  2369              if( j==nExpr ) break;
  2370              mCol = MASKBIT(j);
  2371              if( mCol & colUsed ) break; /* Each column used only once */
  2372              colUsed |= mCol;
  2373              if( aiMap ) aiMap[i] = j;
  2374            }
  2375    
  2376            assert( i==nExpr || colUsed!=(MASKBIT(nExpr)-1) );
  2377            if( colUsed==(MASKBIT(nExpr)-1) ){
  2378              /* If we reach this point, that means the index pIdx is usable */
  2379              int iAddr = sqlite3VdbeAddOp0(v, OP_Once); VdbeCoverage(v);
  2380  #ifndef SQLITE_OMIT_EXPLAIN
  2381              sqlite3VdbeAddOp4(v, OP_Explain, 0, 0, 0,
  2382                sqlite3MPrintf(db, "USING INDEX %s FOR IN-OPERATOR",pIdx->zName),
  2383                P4_DYNAMIC);
  2384  #endif
  2385              sqlite3VdbeAddOp3(v, OP_OpenRead, iTab, pIdx->tnum, iDb);
  2386              sqlite3VdbeSetP4KeyInfo(pParse, pIdx);
  2387              VdbeComment((v, "%s", pIdx->zName));
  2388              assert( IN_INDEX_INDEX_DESC == IN_INDEX_INDEX_ASC+1 );
  2389              eType = IN_INDEX_INDEX_ASC + pIdx->aSortOrder[0];
  2390    
  2391              if( prRhsHasNull ){
  2392  #ifdef SQLITE_ENABLE_COLUMN_USED_MASK
  2393                i64 mask = (1<<nExpr)-1;
  2394                sqlite3VdbeAddOp4Dup8(v, OP_ColumnsUsed, 
  2395                    iTab, 0, 0, (u8*)&mask, P4_INT64);
  2396  #endif
  2397                *prRhsHasNull = ++pParse->nMem;
  2398                if( nExpr==1 ){
  2399                  sqlite3SetHasNullFlag(v, iTab, *prRhsHasNull);
  2400                }
  2401              }
  2402              sqlite3VdbeJumpHere(v, iAddr);
  2403            }
  2404          } /* End loop over indexes */
  2405        } /* End if( affinity_ok ) */
  2406      } /* End if not an rowid index */
  2407    } /* End attempt to optimize using an index */
  2408  
  2409    /* If no preexisting index is available for the IN clause
  2410    ** and IN_INDEX_NOOP is an allowed reply
  2411    ** and the RHS of the IN operator is a list, not a subquery
  2412    ** and the RHS is not constant or has two or fewer terms,
  2413    ** then it is not worth creating an ephemeral table to evaluate
  2414    ** the IN operator so return IN_INDEX_NOOP.
  2415    */
  2416    if( eType==0
  2417     && (inFlags & IN_INDEX_NOOP_OK)
  2418     && !ExprHasProperty(pX, EP_xIsSelect)
  2419     && (!sqlite3InRhsIsConstant(pX) || pX->x.pList->nExpr<=2)
  2420    ){
  2421      eType = IN_INDEX_NOOP;
  2422    }
  2423  
  2424    if( eType==0 ){
  2425      /* Could not find an existing table or index to use as the RHS b-tree.
  2426      ** We will have to generate an ephemeral table to do the job.
  2427      */
  2428      u32 savedNQueryLoop = pParse->nQueryLoop;
  2429      int rMayHaveNull = 0;
  2430      eType = IN_INDEX_EPH;
  2431      if( inFlags & IN_INDEX_LOOP ){
  2432        pParse->nQueryLoop = 0;
  2433        if( pX->pLeft->iColumn<0 && !ExprHasProperty(pX, EP_xIsSelect) ){
  2434          eType = IN_INDEX_ROWID;
  2435        }
  2436      }else if( prRhsHasNull ){
  2437        *prRhsHasNull = rMayHaveNull = ++pParse->nMem;
  2438      }
  2439      sqlite3CodeSubselect(pParse, pX, rMayHaveNull, eType==IN_INDEX_ROWID);
  2440      pParse->nQueryLoop = savedNQueryLoop;
  2441    }else{
  2442      pX->iTable = iTab;
  2443    }
  2444  
  2445    if( aiMap && eType!=IN_INDEX_INDEX_ASC && eType!=IN_INDEX_INDEX_DESC ){
  2446      int i, n;
  2447      n = sqlite3ExprVectorSize(pX->pLeft);
  2448      for(i=0; i<n; i++) aiMap[i] = i;
  2449    }
  2450    return eType;
  2451  }
  2452  #endif
  2453  
  2454  #ifndef SQLITE_OMIT_SUBQUERY
  2455  /*
  2456  ** Argument pExpr is an (?, ?...) IN(...) expression. This 
  2457  ** function allocates and returns a nul-terminated string containing 
  2458  ** the affinities to be used for each column of the comparison.
  2459  **
  2460  ** It is the responsibility of the caller to ensure that the returned
  2461  ** string is eventually freed using sqlite3DbFree().
  2462  */
  2463  static char *exprINAffinity(Parse *pParse, Expr *pExpr){
  2464    Expr *pLeft = pExpr->pLeft;
  2465    int nVal = sqlite3ExprVectorSize(pLeft);
  2466    Select *pSelect = (pExpr->flags & EP_xIsSelect) ? pExpr->x.pSelect : 0;
  2467    char *zRet;
  2468  
  2469    assert( pExpr->op==TK_IN );
  2470    zRet = sqlite3DbMallocRaw(pParse->db, nVal+1);
  2471    if( zRet ){
  2472      int i;
  2473      for(i=0; i<nVal; i++){
  2474        Expr *pA = sqlite3VectorFieldSubexpr(pLeft, i);
  2475        char a = sqlite3ExprAffinity(pA);
  2476        if( pSelect ){
  2477          zRet[i] = sqlite3CompareAffinity(pSelect->pEList->a[i].pExpr, a);
  2478        }else{
  2479          zRet[i] = a;
  2480        }
  2481      }
  2482      zRet[nVal] = '\0';
  2483    }
  2484    return zRet;
  2485  }
  2486  #endif
  2487  
  2488  #ifndef SQLITE_OMIT_SUBQUERY
  2489  /*
  2490  ** Load the Parse object passed as the first argument with an error 
  2491  ** message of the form:
  2492  **
  2493  **   "sub-select returns N columns - expected M"
  2494  */   
  2495  void sqlite3SubselectError(Parse *pParse, int nActual, int nExpect){
  2496    const char *zFmt = "sub-select returns %d columns - expected %d";
  2497    sqlite3ErrorMsg(pParse, zFmt, nActual, nExpect);
  2498  }
  2499  #endif
  2500  
  2501  /*
  2502  ** Expression pExpr is a vector that has been used in a context where
  2503  ** it is not permitted. If pExpr is a sub-select vector, this routine 
  2504  ** loads the Parse object with a message of the form:
  2505  **
  2506  **   "sub-select returns N columns - expected 1"
  2507  **
  2508  ** Or, if it is a regular scalar vector:
  2509  **
  2510  **   "row value misused"
  2511  */   
  2512  void sqlite3VectorErrorMsg(Parse *pParse, Expr *pExpr){
  2513  #ifndef SQLITE_OMIT_SUBQUERY
  2514    if( pExpr->flags & EP_xIsSelect ){
  2515      sqlite3SubselectError(pParse, pExpr->x.pSelect->pEList->nExpr, 1);
  2516    }else
  2517  #endif
  2518    {
  2519      sqlite3ErrorMsg(pParse, "row value misused");
  2520    }
  2521  }
  2522  
  2523  /*
  2524  ** Generate code for scalar subqueries used as a subquery expression, EXISTS,
  2525  ** or IN operators.  Examples:
  2526  **
  2527  **     (SELECT a FROM b)          -- subquery
  2528  **     EXISTS (SELECT a FROM b)   -- EXISTS subquery
  2529  **     x IN (4,5,11)              -- IN operator with list on right-hand side
  2530  **     x IN (SELECT a FROM b)     -- IN operator with subquery on the right
  2531  **
  2532  ** The pExpr parameter describes the expression that contains the IN
  2533  ** operator or subquery.
  2534  **
  2535  ** If parameter isRowid is non-zero, then expression pExpr is guaranteed
  2536  ** to be of the form "<rowid> IN (?, ?, ?)", where <rowid> is a reference
  2537  ** to some integer key column of a table B-Tree. In this case, use an
  2538  ** intkey B-Tree to store the set of IN(...) values instead of the usual
  2539  ** (slower) variable length keys B-Tree.
  2540  **
  2541  ** If rMayHaveNull is non-zero, that means that the operation is an IN
  2542  ** (not a SELECT or EXISTS) and that the RHS might contains NULLs.
  2543  ** All this routine does is initialize the register given by rMayHaveNull
  2544  ** to NULL.  Calling routines will take care of changing this register
  2545  ** value to non-NULL if the RHS is NULL-free.
  2546  **
  2547  ** For a SELECT or EXISTS operator, return the register that holds the
  2548  ** result.  For a multi-column SELECT, the result is stored in a contiguous
  2549  ** array of registers and the return value is the register of the left-most
  2550  ** result column.  Return 0 for IN operators or if an error occurs.
  2551  */
  2552  #ifndef SQLITE_OMIT_SUBQUERY
  2553  int sqlite3CodeSubselect(
  2554    Parse *pParse,          /* Parsing context */
  2555    Expr *pExpr,            /* The IN, SELECT, or EXISTS operator */
  2556    int rHasNullFlag,       /* Register that records whether NULLs exist in RHS */
  2557    int isRowid             /* If true, LHS of IN operator is a rowid */
  2558  ){
  2559    int jmpIfDynamic = -1;                      /* One-time test address */
  2560    int rReg = 0;                           /* Register storing resulting */
  2561    Vdbe *v = sqlite3GetVdbe(pParse);
  2562    if( NEVER(v==0) ) return 0;
  2563    sqlite3ExprCachePush(pParse);
  2564  
  2565    /* The evaluation of the IN/EXISTS/SELECT must be repeated every time it
  2566    ** is encountered if any of the following is true:
  2567    **
  2568    **    *  The right-hand side is a correlated subquery
  2569    **    *  The right-hand side is an expression list containing variables
  2570    **    *  We are inside a trigger
  2571    **
  2572    ** If all of the above are false, then we can run this code just once
  2573    ** save the results, and reuse the same result on subsequent invocations.
  2574    */
  2575    if( !ExprHasProperty(pExpr, EP_VarSelect) ){
  2576      jmpIfDynamic = sqlite3VdbeAddOp0(v, OP_Once); VdbeCoverage(v);
  2577    }
  2578  
  2579  #ifndef SQLITE_OMIT_EXPLAIN
  2580    if( pParse->explain==2 ){
  2581      char *zMsg = sqlite3MPrintf(pParse->db, "EXECUTE %s%s SUBQUERY %d",
  2582          jmpIfDynamic>=0?"":"CORRELATED ",
  2583          pExpr->op==TK_IN?"LIST":"SCALAR",
  2584          pParse->iNextSelectId
  2585      );
  2586      sqlite3VdbeAddOp4(v, OP_Explain, pParse->iSelectId, 0, 0, zMsg, P4_DYNAMIC);
  2587    }
  2588  #endif
  2589  
  2590    switch( pExpr->op ){
  2591      case TK_IN: {
  2592        int addr;                   /* Address of OP_OpenEphemeral instruction */
  2593        Expr *pLeft = pExpr->pLeft; /* the LHS of the IN operator */
  2594        KeyInfo *pKeyInfo = 0;      /* Key information */
  2595        int nVal;                   /* Size of vector pLeft */
  2596        
  2597        nVal = sqlite3ExprVectorSize(pLeft);
  2598        assert( !isRowid || nVal==1 );
  2599  
  2600        /* Whether this is an 'x IN(SELECT...)' or an 'x IN(<exprlist>)'
  2601        ** expression it is handled the same way.  An ephemeral table is 
  2602        ** filled with index keys representing the results from the 
  2603        ** SELECT or the <exprlist>.
  2604        **
  2605        ** If the 'x' expression is a column value, or the SELECT...
  2606        ** statement returns a column value, then the affinity of that
  2607        ** column is used to build the index keys. If both 'x' and the
  2608        ** SELECT... statement are columns, then numeric affinity is used
  2609        ** if either column has NUMERIC or INTEGER affinity. If neither
  2610        ** 'x' nor the SELECT... statement are columns, then numeric affinity
  2611        ** is used.
  2612        */
  2613        pExpr->iTable = pParse->nTab++;
  2614        addr = sqlite3VdbeAddOp2(v, OP_OpenEphemeral, 
  2615            pExpr->iTable, (isRowid?0:nVal));
  2616        pKeyInfo = isRowid ? 0 : sqlite3KeyInfoAlloc(pParse->db, nVal, 1);
  2617  
  2618        if( ExprHasProperty(pExpr, EP_xIsSelect) ){
  2619          /* Case 1:     expr IN (SELECT ...)
  2620          **
  2621          ** Generate code to write the results of the select into the temporary
  2622          ** table allocated and opened above.
  2623          */
  2624          Select *pSelect = pExpr->x.pSelect;
  2625          ExprList *pEList = pSelect->pEList;
  2626  
  2627          assert( !isRowid );
  2628          /* If the LHS and RHS of the IN operator do not match, that
  2629          ** error will have been caught long before we reach this point. */
  2630          if( ALWAYS(pEList->nExpr==nVal) ){
  2631            SelectDest dest;
  2632            int i;
  2633            sqlite3SelectDestInit(&dest, SRT_Set, pExpr->iTable);
  2634            dest.zAffSdst = exprINAffinity(pParse, pExpr);
  2635            pSelect->iLimit = 0;
  2636            testcase( pSelect->selFlags & SF_Distinct );
  2637            testcase( pKeyInfo==0 ); /* Caused by OOM in sqlite3KeyInfoAlloc() */
  2638            if( sqlite3Select(pParse, pSelect, &dest) ){
  2639              sqlite3DbFree(pParse->db, dest.zAffSdst);
  2640              sqlite3KeyInfoUnref(pKeyInfo);
  2641              return 0;
  2642            }
  2643            sqlite3DbFree(pParse->db, dest.zAffSdst);
  2644            assert( pKeyInfo!=0 ); /* OOM will cause exit after sqlite3Select() */
  2645            assert( pEList!=0 );
  2646            assert( pEList->nExpr>0 );
  2647            assert( sqlite3KeyInfoIsWriteable(pKeyInfo) );
  2648            for(i=0; i<nVal; i++){
  2649              Expr *p = sqlite3VectorFieldSubexpr(pLeft, i);
  2650              pKeyInfo->aColl[i] = sqlite3BinaryCompareCollSeq(
  2651                  pParse, p, pEList->a[i].pExpr
  2652              );
  2653            }
  2654          }
  2655        }else if( ALWAYS(pExpr->x.pList!=0) ){
  2656          /* Case 2:     expr IN (exprlist)
  2657          **
  2658          ** For each expression, build an index key from the evaluation and
  2659          ** store it in the temporary table. If <expr> is a column, then use
  2660          ** that columns affinity when building index keys. If <expr> is not
  2661          ** a column, use numeric affinity.
  2662          */
  2663          char affinity;            /* Affinity of the LHS of the IN */
  2664          int i;
  2665          ExprList *pList = pExpr->x.pList;
  2666          struct ExprList_item *pItem;
  2667          int r1, r2, r3;
  2668  
  2669          affinity = sqlite3ExprAffinity(pLeft);
  2670          if( !affinity ){
  2671            affinity = SQLITE_AFF_BLOB;
  2672          }
  2673          if( pKeyInfo ){
  2674            assert( sqlite3KeyInfoIsWriteable(pKeyInfo) );
  2675            pKeyInfo->aColl[0] = sqlite3ExprCollSeq(pParse, pExpr->pLeft);
  2676          }
  2677  
  2678          /* Loop through each expression in <exprlist>. */
  2679          r1 = sqlite3GetTempReg(pParse);
  2680          r2 = sqlite3GetTempReg(pParse);
  2681          if( isRowid ) sqlite3VdbeAddOp4(v, OP_Blob, 0, r2, 0, "", P4_STATIC);
  2682          for(i=pList->nExpr, pItem=pList->a; i>0; i--, pItem++){
  2683            Expr *pE2 = pItem->pExpr;
  2684            int iValToIns;
  2685  
  2686            /* If the expression is not constant then we will need to
  2687            ** disable the test that was generated above that makes sure
  2688            ** this code only executes once.  Because for a non-constant
  2689            ** expression we need to rerun this code each time.
  2690            */
  2691            if( jmpIfDynamic>=0 && !sqlite3ExprIsConstant(pE2) ){
  2692              sqlite3VdbeChangeToNoop(v, jmpIfDynamic);
  2693              jmpIfDynamic = -1;
  2694            }
  2695  
  2696            /* Evaluate the expression and insert it into the temp table */
  2697            if( isRowid && sqlite3ExprIsInteger(pE2, &iValToIns) ){
  2698              sqlite3VdbeAddOp3(v, OP_InsertInt, pExpr->iTable, r2, iValToIns);
  2699            }else{
  2700              r3 = sqlite3ExprCodeTarget(pParse, pE2, r1);
  2701              if( isRowid ){
  2702                sqlite3VdbeAddOp2(v, OP_MustBeInt, r3,
  2703                                  sqlite3VdbeCurrentAddr(v)+2);
  2704                VdbeCoverage(v);
  2705                sqlite3VdbeAddOp3(v, OP_Insert, pExpr->iTable, r2, r3);
  2706              }else{
  2707                sqlite3VdbeAddOp4(v, OP_MakeRecord, r3, 1, r2, &affinity, 1);
  2708                sqlite3ExprCacheAffinityChange(pParse, r3, 1);
  2709                sqlite3VdbeAddOp4Int(v, OP_IdxInsert, pExpr->iTable, r2, r3, 1);
  2710              }
  2711            }
  2712          }
  2713          sqlite3ReleaseTempReg(pParse, r1);
  2714          sqlite3ReleaseTempReg(pParse, r2);
  2715        }
  2716        if( pKeyInfo ){
  2717          sqlite3VdbeChangeP4(v, addr, (void *)pKeyInfo, P4_KEYINFO);
  2718        }
  2719        break;
  2720      }
  2721  
  2722      case TK_EXISTS:
  2723      case TK_SELECT:
  2724      default: {
  2725        /* Case 3:    (SELECT ... FROM ...)
  2726        **     or:    EXISTS(SELECT ... FROM ...)
  2727        **
  2728        ** For a SELECT, generate code to put the values for all columns of
  2729        ** the first row into an array of registers and return the index of
  2730        ** the first register.
  2731        **
  2732        ** If this is an EXISTS, write an integer 0 (not exists) or 1 (exists)
  2733        ** into a register and return that register number.
  2734        **
  2735        ** In both cases, the query is augmented with "LIMIT 1".  Any 
  2736        ** preexisting limit is discarded in place of the new LIMIT 1.
  2737        */
  2738        Select *pSel;                         /* SELECT statement to encode */
  2739        SelectDest dest;                      /* How to deal with SELECT result */
  2740        int nReg;                             /* Registers to allocate */
  2741  
  2742        testcase( pExpr->op==TK_EXISTS );
  2743        testcase( pExpr->op==TK_SELECT );
  2744        assert( pExpr->op==TK_EXISTS || pExpr->op==TK_SELECT );
  2745        assert( ExprHasProperty(pExpr, EP_xIsSelect) );
  2746  
  2747        pSel = pExpr->x.pSelect;
  2748        nReg = pExpr->op==TK_SELECT ? pSel->pEList->nExpr : 1;
  2749        sqlite3SelectDestInit(&dest, 0, pParse->nMem+1);
  2750        pParse->nMem += nReg;
  2751        if( pExpr->op==TK_SELECT ){
  2752          dest.eDest = SRT_Mem;
  2753          dest.iSdst = dest.iSDParm;
  2754          dest.nSdst = nReg;
  2755          sqlite3VdbeAddOp3(v, OP_Null, 0, dest.iSDParm, dest.iSDParm+nReg-1);
  2756          VdbeComment((v, "Init subquery result"));
  2757        }else{
  2758          dest.eDest = SRT_Exists;
  2759          sqlite3VdbeAddOp2(v, OP_Integer, 0, dest.iSDParm);
  2760          VdbeComment((v, "Init EXISTS result"));
  2761        }
  2762        sqlite3ExprDelete(pParse->db, pSel->pLimit);
  2763        pSel->pLimit = sqlite3ExprAlloc(pParse->db, TK_INTEGER,
  2764                                    &sqlite3IntTokens[1], 0);
  2765        pSel->iLimit = 0;
  2766        pSel->selFlags &= ~SF_MultiValue;
  2767        if( sqlite3Select(pParse, pSel, &dest) ){
  2768          return 0;
  2769        }
  2770        rReg = dest.iSDParm;
  2771        ExprSetVVAProperty(pExpr, EP_NoReduce);
  2772        break;
  2773      }
  2774    }
  2775  
  2776    if( rHasNullFlag ){
  2777      sqlite3SetHasNullFlag(v, pExpr->iTable, rHasNullFlag);
  2778    }
  2779  
  2780    if( jmpIfDynamic>=0 ){
  2781      sqlite3VdbeJumpHere(v, jmpIfDynamic);
  2782    }
  2783    sqlite3ExprCachePop(pParse);
  2784  
  2785    return rReg;
  2786  }
  2787  #endif /* SQLITE_OMIT_SUBQUERY */
  2788  
  2789  #ifndef SQLITE_OMIT_SUBQUERY
  2790  /*
  2791  ** Expr pIn is an IN(...) expression. This function checks that the 
  2792  ** sub-select on the RHS of the IN() operator has the same number of 
  2793  ** columns as the vector on the LHS. Or, if the RHS of the IN() is not 
  2794  ** a sub-query, that the LHS is a vector of size 1.
  2795  */
  2796  int sqlite3ExprCheckIN(Parse *pParse, Expr *pIn){
  2797    int nVector = sqlite3ExprVectorSize(pIn->pLeft);
  2798    if( (pIn->flags & EP_xIsSelect) ){
  2799      if( nVector!=pIn->x.pSelect->pEList->nExpr ){
  2800        sqlite3SubselectError(pParse, pIn->x.pSelect->pEList->nExpr, nVector);
  2801        return 1;
  2802      }
  2803    }else if( nVector!=1 ){
  2804      sqlite3VectorErrorMsg(pParse, pIn->pLeft);
  2805      return 1;
  2806    }
  2807    return 0;
  2808  }
  2809  #endif
  2810  
  2811  #ifndef SQLITE_OMIT_SUBQUERY
  2812  /*
  2813  ** Generate code for an IN expression.
  2814  **
  2815  **      x IN (SELECT ...)
  2816  **      x IN (value, value, ...)
  2817  **
  2818  ** The left-hand side (LHS) is a scalar or vector expression.  The 
  2819  ** right-hand side (RHS) is an array of zero or more scalar values, or a
  2820  ** subquery.  If the RHS is a subquery, the number of result columns must
  2821  ** match the number of columns in the vector on the LHS.  If the RHS is
  2822  ** a list of values, the LHS must be a scalar. 
  2823  **
  2824  ** The IN operator is true if the LHS value is contained within the RHS.
  2825  ** The result is false if the LHS is definitely not in the RHS.  The 
  2826  ** result is NULL if the presence of the LHS in the RHS cannot be 
  2827  ** determined due to NULLs.
  2828  **
  2829  ** This routine generates code that jumps to destIfFalse if the LHS is not 
  2830  ** contained within the RHS.  If due to NULLs we cannot determine if the LHS
  2831  ** is contained in the RHS then jump to destIfNull.  If the LHS is contained
  2832  ** within the RHS then fall through.
  2833  **
  2834  ** See the separate in-operator.md documentation file in the canonical
  2835  ** SQLite source tree for additional information.
  2836  */
  2837  static void sqlite3ExprCodeIN(
  2838    Parse *pParse,        /* Parsing and code generating context */
  2839    Expr *pExpr,          /* The IN expression */
  2840    int destIfFalse,      /* Jump here if LHS is not contained in the RHS */
  2841    int destIfNull        /* Jump here if the results are unknown due to NULLs */
  2842  ){
  2843    int rRhsHasNull = 0;  /* Register that is true if RHS contains NULL values */
  2844    int eType;            /* Type of the RHS */
  2845    int rLhs;             /* Register(s) holding the LHS values */
  2846    int rLhsOrig;         /* LHS values prior to reordering by aiMap[] */
  2847    Vdbe *v;              /* Statement under construction */
  2848    int *aiMap = 0;       /* Map from vector field to index column */
  2849    char *zAff = 0;       /* Affinity string for comparisons */
  2850    int nVector;          /* Size of vectors for this IN operator */
  2851    int iDummy;           /* Dummy parameter to exprCodeVector() */
  2852    Expr *pLeft;          /* The LHS of the IN operator */
  2853    int i;                /* loop counter */
  2854    int destStep2;        /* Where to jump when NULLs seen in step 2 */
  2855    int destStep6 = 0;    /* Start of code for Step 6 */
  2856    int addrTruthOp;      /* Address of opcode that determines the IN is true */
  2857    int destNotNull;      /* Jump here if a comparison is not true in step 6 */
  2858    int addrTop;          /* Top of the step-6 loop */ 
  2859  
  2860    pLeft = pExpr->pLeft;
  2861    if( sqlite3ExprCheckIN(pParse, pExpr) ) return;
  2862    zAff = exprINAffinity(pParse, pExpr);
  2863    nVector = sqlite3ExprVectorSize(pExpr->pLeft);
  2864    aiMap = (int*)sqlite3DbMallocZero(
  2865        pParse->db, nVector*(sizeof(int) + sizeof(char)) + 1
  2866    );
  2867    if( pParse->db->mallocFailed ) goto sqlite3ExprCodeIN_oom_error;
  2868  
  2869    /* Attempt to compute the RHS. After this step, if anything other than
  2870    ** IN_INDEX_NOOP is returned, the table opened ith cursor pExpr->iTable 
  2871    ** contains the values that make up the RHS. If IN_INDEX_NOOP is returned,
  2872    ** the RHS has not yet been coded.  */
  2873    v = pParse->pVdbe;
  2874    assert( v!=0 );       /* OOM detected prior to this routine */
  2875    VdbeNoopComment((v, "begin IN expr"));
  2876    eType = sqlite3FindInIndex(pParse, pExpr,
  2877                               IN_INDEX_MEMBERSHIP | IN_INDEX_NOOP_OK,
  2878                               destIfFalse==destIfNull ? 0 : &rRhsHasNull, aiMap);
  2879  
  2880    assert( pParse->nErr || nVector==1 || eType==IN_INDEX_EPH
  2881         || eType==IN_INDEX_INDEX_ASC || eType==IN_INDEX_INDEX_DESC 
  2882    );
  2883  #ifdef SQLITE_DEBUG
  2884    /* Confirm that aiMap[] contains nVector integer values between 0 and
  2885    ** nVector-1. */
  2886    for(i=0; i<nVector; i++){
  2887      int j, cnt;
  2888      for(cnt=j=0; j<nVector; j++) if( aiMap[j]==i ) cnt++;
  2889      assert( cnt==1 );
  2890    }
  2891  #endif
  2892  
  2893    /* Code the LHS, the <expr> from "<expr> IN (...)". If the LHS is a 
  2894    ** vector, then it is stored in an array of nVector registers starting 
  2895    ** at r1.
  2896    **
  2897    ** sqlite3FindInIndex() might have reordered the fields of the LHS vector
  2898    ** so that the fields are in the same order as an existing index.   The
  2899    ** aiMap[] array contains a mapping from the original LHS field order to
  2900    ** the field order that matches the RHS index.
  2901    */
  2902    sqlite3ExprCachePush(pParse);
  2903    rLhsOrig = exprCodeVector(pParse, pLeft, &iDummy);
  2904    for(i=0; i<nVector && aiMap[i]==i; i++){} /* Are LHS fields reordered? */
  2905    if( i==nVector ){
  2906      /* LHS fields are not reordered */
  2907      rLhs = rLhsOrig;
  2908    }else{
  2909      /* Need to reorder the LHS fields according to aiMap */
  2910      rLhs = sqlite3GetTempRange(pParse, nVector);
  2911      for(i=0; i<nVector; i++){
  2912        sqlite3VdbeAddOp3(v, OP_Copy, rLhsOrig+i, rLhs+aiMap[i], 0);
  2913      }
  2914    }
  2915  
  2916    /* If sqlite3FindInIndex() did not find or create an index that is
  2917    ** suitable for evaluating the IN operator, then evaluate using a
  2918    ** sequence of comparisons.
  2919    **
  2920    ** This is step (1) in the in-operator.md optimized algorithm.
  2921    */
  2922    if( eType==IN_INDEX_NOOP ){
  2923      ExprList *pList = pExpr->x.pList;
  2924      CollSeq *pColl = sqlite3ExprCollSeq(pParse, pExpr->pLeft);
  2925      int labelOk = sqlite3VdbeMakeLabel(v);
  2926      int r2, regToFree;
  2927      int regCkNull = 0;
  2928      int ii;
  2929      assert( !ExprHasProperty(pExpr, EP_xIsSelect) );
  2930      if( destIfNull!=destIfFalse ){
  2931        regCkNull = sqlite3GetTempReg(pParse);
  2932        sqlite3VdbeAddOp3(v, OP_BitAnd, rLhs, rLhs, regCkNull);
  2933      }
  2934      for(ii=0; ii<pList->nExpr; ii++){
  2935        r2 = sqlite3ExprCodeTemp(pParse, pList->a[ii].pExpr, &regToFree);
  2936        if( regCkNull && sqlite3ExprCanBeNull(pList->a[ii].pExpr) ){
  2937          sqlite3VdbeAddOp3(v, OP_BitAnd, regCkNull, r2, regCkNull);
  2938        }
  2939        if( ii<pList->nExpr-1 || destIfNull!=destIfFalse ){
  2940          sqlite3VdbeAddOp4(v, OP_Eq, rLhs, labelOk, r2,
  2941                            (void*)pColl, P4_COLLSEQ);
  2942          VdbeCoverageIf(v, ii<pList->nExpr-1);
  2943          VdbeCoverageIf(v, ii==pList->nExpr-1);
  2944          sqlite3VdbeChangeP5(v, zAff[0]);
  2945        }else{
  2946          assert( destIfNull==destIfFalse );
  2947          sqlite3VdbeAddOp4(v, OP_Ne, rLhs, destIfFalse, r2,
  2948                            (void*)pColl, P4_COLLSEQ); VdbeCoverage(v);
  2949          sqlite3VdbeChangeP5(v, zAff[0] | SQLITE_JUMPIFNULL);
  2950        }
  2951        sqlite3ReleaseTempReg(pParse, regToFree);
  2952      }
  2953      if( regCkNull ){
  2954        sqlite3VdbeAddOp2(v, OP_IsNull, regCkNull, destIfNull); VdbeCoverage(v);
  2955        sqlite3VdbeGoto(v, destIfFalse);
  2956      }
  2957      sqlite3VdbeResolveLabel(v, labelOk);
  2958      sqlite3ReleaseTempReg(pParse, regCkNull);
  2959      goto sqlite3ExprCodeIN_finished;
  2960    }
  2961  
  2962    /* Step 2: Check to see if the LHS contains any NULL columns.  If the
  2963    ** LHS does contain NULLs then the result must be either FALSE or NULL.
  2964    ** We will then skip the binary search of the RHS.
  2965    */
  2966    if( destIfNull==destIfFalse ){
  2967      destStep2 = destIfFalse;
  2968    }else{
  2969      destStep2 = destStep6 = sqlite3VdbeMakeLabel(v);
  2970    }
  2971    for(i=0; i<nVector; i++){
  2972      Expr *p = sqlite3VectorFieldSubexpr(pExpr->pLeft, i);
  2973      if( sqlite3ExprCanBeNull(p) ){
  2974        sqlite3VdbeAddOp2(v, OP_IsNull, rLhs+i, destStep2);
  2975        VdbeCoverage(v);
  2976      }
  2977    }
  2978  
  2979    /* Step 3.  The LHS is now known to be non-NULL.  Do the binary search
  2980    ** of the RHS using the LHS as a probe.  If found, the result is
  2981    ** true.
  2982    */
  2983    if( eType==IN_INDEX_ROWID ){
  2984      /* In this case, the RHS is the ROWID of table b-tree and so we also
  2985      ** know that the RHS is non-NULL.  Hence, we combine steps 3 and 4
  2986      ** into a single opcode. */
  2987      sqlite3VdbeAddOp3(v, OP_SeekRowid, pExpr->iTable, destIfFalse, rLhs);
  2988      VdbeCoverage(v);
  2989      addrTruthOp = sqlite3VdbeAddOp0(v, OP_Goto);  /* Return True */
  2990    }else{
  2991      sqlite3VdbeAddOp4(v, OP_Affinity, rLhs, nVector, 0, zAff, nVector);
  2992      if( destIfFalse==destIfNull ){
  2993        /* Combine Step 3 and Step 5 into a single opcode */
  2994        sqlite3VdbeAddOp4Int(v, OP_NotFound, pExpr->iTable, destIfFalse,
  2995                             rLhs, nVector); VdbeCoverage(v);
  2996        goto sqlite3ExprCodeIN_finished;
  2997      }
  2998      /* Ordinary Step 3, for the case where FALSE and NULL are distinct */
  2999      addrTruthOp = sqlite3VdbeAddOp4Int(v, OP_Found, pExpr->iTable, 0,
  3000                                        rLhs, nVector); VdbeCoverage(v);
  3001    }
  3002  
  3003    /* Step 4.  If the RHS is known to be non-NULL and we did not find
  3004    ** an match on the search above, then the result must be FALSE.
  3005    */
  3006    if( rRhsHasNull && nVector==1 ){
  3007      sqlite3VdbeAddOp2(v, OP_NotNull, rRhsHasNull, destIfFalse);
  3008      VdbeCoverage(v);
  3009    }
  3010  
  3011    /* Step 5.  If we do not care about the difference between NULL and
  3012    ** FALSE, then just return false. 
  3013    */
  3014    if( destIfFalse==destIfNull ) sqlite3VdbeGoto(v, destIfFalse);
  3015  
  3016    /* Step 6: Loop through rows of the RHS.  Compare each row to the LHS.
  3017    ** If any comparison is NULL, then the result is NULL.  If all
  3018    ** comparisons are FALSE then the final result is FALSE.
  3019    **
  3020    ** For a scalar LHS, it is sufficient to check just the first row
  3021    ** of the RHS.
  3022    */
  3023    if( destStep6 ) sqlite3VdbeResolveLabel(v, destStep6);
  3024    addrTop = sqlite3VdbeAddOp2(v, OP_Rewind, pExpr->iTable, destIfFalse);
  3025    VdbeCoverage(v);
  3026    if( nVector>1 ){
  3027      destNotNull = sqlite3VdbeMakeLabel(v);
  3028    }else{
  3029      /* For nVector==1, combine steps 6 and 7 by immediately returning
  3030      ** FALSE if the first comparison is not NULL */
  3031      destNotNull = destIfFalse;
  3032    }
  3033    for(i=0; i<nVector; i++){
  3034      Expr *p;
  3035      CollSeq *pColl;
  3036      int r3 = sqlite3GetTempReg(pParse);
  3037      p = sqlite3VectorFieldSubexpr(pLeft, i);
  3038      pColl = sqlite3ExprCollSeq(pParse, p);
  3039      sqlite3VdbeAddOp3(v, OP_Column, pExpr->iTable, i, r3);
  3040      sqlite3VdbeAddOp4(v, OP_Ne, rLhs+i, destNotNull, r3,
  3041                        (void*)pColl, P4_COLLSEQ);
  3042      VdbeCoverage(v);
  3043      sqlite3ReleaseTempReg(pParse, r3);
  3044    }
  3045    sqlite3VdbeAddOp2(v, OP_Goto, 0, destIfNull);
  3046    if( nVector>1 ){
  3047      sqlite3VdbeResolveLabel(v, destNotNull);
  3048      sqlite3VdbeAddOp2(v, OP_Next, pExpr->iTable, addrTop+1);
  3049      VdbeCoverage(v);
  3050  
  3051      /* Step 7:  If we reach this point, we know that the result must
  3052      ** be false. */
  3053      sqlite3VdbeAddOp2(v, OP_Goto, 0, destIfFalse);
  3054    }
  3055  
  3056    /* Jumps here in order to return true. */
  3057    sqlite3VdbeJumpHere(v, addrTruthOp);
  3058  
  3059  sqlite3ExprCodeIN_finished:
  3060    if( rLhs!=rLhsOrig ) sqlite3ReleaseTempReg(pParse, rLhs);
  3061    sqlite3ExprCachePop(pParse);
  3062    VdbeComment((v, "end IN expr"));
  3063  sqlite3ExprCodeIN_oom_error:
  3064    sqlite3DbFree(pParse->db, aiMap);
  3065    sqlite3DbFree(pParse->db, zAff);
  3066  }
  3067  #endif /* SQLITE_OMIT_SUBQUERY */
  3068  
  3069  #ifndef SQLITE_OMIT_FLOATING_POINT
  3070  /*
  3071  ** Generate an instruction that will put the floating point
  3072  ** value described by z[0..n-1] into register iMem.
  3073  **
  3074  ** The z[] string will probably not be zero-terminated.  But the 
  3075  ** z[n] character is guaranteed to be something that does not look
  3076  ** like the continuation of the number.
  3077  */
  3078  static void codeReal(Vdbe *v, const char *z, int negateFlag, int iMem){
  3079    if( ALWAYS(z!=0) ){
  3080      double value;
  3081      sqlite3AtoF(z, &value, sqlite3Strlen30(z), SQLITE_UTF8);
  3082      assert( !sqlite3IsNaN(value) ); /* The new AtoF never returns NaN */
  3083      if( negateFlag ) value = -value;
  3084      sqlite3VdbeAddOp4Dup8(v, OP_Real, 0, iMem, 0, (u8*)&value, P4_REAL);
  3085    }
  3086  }
  3087  #endif
  3088  
  3089  
  3090  /*
  3091  ** Generate an instruction that will put the integer describe by
  3092  ** text z[0..n-1] into register iMem.
  3093  **
  3094  ** Expr.u.zToken is always UTF8 and zero-terminated.
  3095  */
  3096  static void codeInteger(Parse *pParse, Expr *pExpr, int negFlag, int iMem){
  3097    Vdbe *v = pParse->pVdbe;
  3098    if( pExpr->flags & EP_IntValue ){
  3099      int i = pExpr->u.iValue;
  3100      assert( i>=0 );
  3101      if( negFlag ) i = -i;
  3102      sqlite3VdbeAddOp2(v, OP_Integer, i, iMem);
  3103    }else{
  3104      int c;
  3105      i64 value;
  3106      const char *z = pExpr->u.zToken;
  3107      assert( z!=0 );
  3108      c = sqlite3DecOrHexToI64(z, &value);
  3109      if( (c==3 && !negFlag) || (c==2) || (negFlag && value==SMALLEST_INT64)){
  3110  #ifdef SQLITE_OMIT_FLOATING_POINT
  3111        sqlite3ErrorMsg(pParse, "oversized integer: %s%s", negFlag ? "-" : "", z);
  3112  #else
  3113  #ifndef SQLITE_OMIT_HEX_INTEGER
  3114        if( sqlite3_strnicmp(z,"0x",2)==0 ){
  3115          sqlite3ErrorMsg(pParse, "hex literal too big: %s%s", negFlag?"-":"",z);
  3116        }else
  3117  #endif
  3118        {
  3119          codeReal(v, z, negFlag, iMem);
  3120        }
  3121  #endif
  3122      }else{
  3123        if( negFlag ){ value = c==3 ? SMALLEST_INT64 : -value; }
  3124        sqlite3VdbeAddOp4Dup8(v, OP_Int64, 0, iMem, 0, (u8*)&value, P4_INT64);
  3125      }
  3126    }
  3127  }
  3128  
  3129  /*
  3130  ** Erase column-cache entry number i
  3131  */
  3132  static void cacheEntryClear(Parse *pParse, int i){
  3133    if( pParse->aColCache[i].tempReg ){
  3134      if( pParse->nTempReg<ArraySize(pParse->aTempReg) ){
  3135        pParse->aTempReg[pParse->nTempReg++] = pParse->aColCache[i].iReg;
  3136      }
  3137    }
  3138    pParse->nColCache--;
  3139    if( i<pParse->nColCache ){
  3140      pParse->aColCache[i] = pParse->aColCache[pParse->nColCache];
  3141    }
  3142  }
  3143  
  3144  
  3145  /*
  3146  ** Record in the column cache that a particular column from a
  3147  ** particular table is stored in a particular register.
  3148  */
  3149  void sqlite3ExprCacheStore(Parse *pParse, int iTab, int iCol, int iReg){
  3150    int i;
  3151    int minLru;
  3152    int idxLru;
  3153    struct yColCache *p;
  3154  
  3155    /* Unless an error has occurred, register numbers are always positive. */
  3156    assert( iReg>0 || pParse->nErr || pParse->db->mallocFailed );
  3157    assert( iCol>=-1 && iCol<32768 );  /* Finite column numbers */
  3158  
  3159    /* The SQLITE_ColumnCache flag disables the column cache.  This is used
  3160    ** for testing only - to verify that SQLite always gets the same answer
  3161    ** with and without the column cache.
  3162    */
  3163    if( OptimizationDisabled(pParse->db, SQLITE_ColumnCache) ) return;
  3164  
  3165    /* First replace any existing entry.
  3166    **
  3167    ** Actually, the way the column cache is currently used, we are guaranteed
  3168    ** that the object will never already be in cache.  Verify this guarantee.
  3169    */
  3170  #ifndef NDEBUG
  3171    for(i=0, p=pParse->aColCache; i<pParse->nColCache; i++, p++){
  3172      assert( p->iTable!=iTab || p->iColumn!=iCol );
  3173    }
  3174  #endif
  3175  
  3176    /* If the cache is already full, delete the least recently used entry */
  3177    if( pParse->nColCache>=SQLITE_N_COLCACHE ){
  3178      minLru = 0x7fffffff;
  3179      idxLru = -1;
  3180      for(i=0, p=pParse->aColCache; i<SQLITE_N_COLCACHE; i++, p++){
  3181        if( p->lru<minLru ){
  3182          idxLru = i;
  3183          minLru = p->lru;
  3184        }
  3185      }
  3186      p = &pParse->aColCache[idxLru];
  3187    }else{
  3188      p = &pParse->aColCache[pParse->nColCache++];
  3189    }
  3190  
  3191    /* Add the new entry to the end of the cache */
  3192    p->iLevel = pParse->iCacheLevel;
  3193    p->iTable = iTab;
  3194    p->iColumn = iCol;
  3195    p->iReg = iReg;
  3196    p->tempReg = 0;
  3197    p->lru = pParse->iCacheCnt++;
  3198  }
  3199  
  3200  /*
  3201  ** Indicate that registers between iReg..iReg+nReg-1 are being overwritten.
  3202  ** Purge the range of registers from the column cache.
  3203  */
  3204  void sqlite3ExprCacheRemove(Parse *pParse, int iReg, int nReg){
  3205    int i = 0;
  3206    while( i<pParse->nColCache ){
  3207      struct yColCache *p = &pParse->aColCache[i];
  3208      if( p->iReg >= iReg && p->iReg < iReg+nReg ){
  3209        cacheEntryClear(pParse, i);
  3210      }else{
  3211        i++;
  3212      }
  3213    }
  3214  }
  3215  
  3216  /*
  3217  ** Remember the current column cache context.  Any new entries added
  3218  ** added to the column cache after this call are removed when the
  3219  ** corresponding pop occurs.
  3220  */
  3221  void sqlite3ExprCachePush(Parse *pParse){
  3222    pParse->iCacheLevel++;
  3223  #ifdef SQLITE_DEBUG
  3224    if( pParse->db->flags & SQLITE_VdbeAddopTrace ){
  3225      printf("PUSH to %d\n", pParse->iCacheLevel);
  3226    }
  3227  #endif
  3228  }
  3229  
  3230  /*
  3231  ** Remove from the column cache any entries that were added since the
  3232  ** the previous sqlite3ExprCachePush operation.  In other words, restore
  3233  ** the cache to the state it was in prior the most recent Push.
  3234  */
  3235  void sqlite3ExprCachePop(Parse *pParse){
  3236    int i = 0;
  3237    assert( pParse->iCacheLevel>=1 );
  3238    pParse->iCacheLevel--;
  3239  #ifdef SQLITE_DEBUG
  3240    if( pParse->db->flags & SQLITE_VdbeAddopTrace ){
  3241      printf("POP  to %d\n", pParse->iCacheLevel);
  3242    }
  3243  #endif
  3244    while( i<pParse->nColCache ){
  3245      if( pParse->aColCache[i].iLevel>pParse->iCacheLevel ){
  3246        cacheEntryClear(pParse, i);
  3247      }else{
  3248        i++;
  3249      }
  3250    }
  3251  }
  3252  
  3253  /*
  3254  ** When a cached column is reused, make sure that its register is
  3255  ** no longer available as a temp register.  ticket #3879:  that same
  3256  ** register might be in the cache in multiple places, so be sure to
  3257  ** get them all.
  3258  */
  3259  static void sqlite3ExprCachePinRegister(Parse *pParse, int iReg){
  3260    int i;
  3261    struct yColCache *p;
  3262    for(i=0, p=pParse->aColCache; i<pParse->nColCache; i++, p++){
  3263      if( p->iReg==iReg ){
  3264        p->tempReg = 0;
  3265      }
  3266    }
  3267  }
  3268  
  3269  /* Generate code that will load into register regOut a value that is
  3270  ** appropriate for the iIdxCol-th column of index pIdx.
  3271  */
  3272  void sqlite3ExprCodeLoadIndexColumn(
  3273    Parse *pParse,  /* The parsing context */
  3274    Index *pIdx,    /* The index whose column is to be loaded */
  3275    int iTabCur,    /* Cursor pointing to a table row */
  3276    int iIdxCol,    /* The column of the index to be loaded */
  3277    int regOut      /* Store the index column value in this register */
  3278  ){
  3279    i16 iTabCol = pIdx->aiColumn[iIdxCol];
  3280    if( iTabCol==XN_EXPR ){
  3281      assert( pIdx->aColExpr );
  3282      assert( pIdx->aColExpr->nExpr>iIdxCol );
  3283      pParse->iSelfTab = iTabCur + 1;
  3284      sqlite3ExprCodeCopy(pParse, pIdx->aColExpr->a[iIdxCol].pExpr, regOut);
  3285      pParse->iSelfTab = 0;
  3286    }else{
  3287      sqlite3ExprCodeGetColumnOfTable(pParse->pVdbe, pIdx->pTable, iTabCur,
  3288                                      iTabCol, regOut);
  3289    }
  3290  }
  3291  
  3292  /*
  3293  ** Generate code to extract the value of the iCol-th column of a table.
  3294  */
  3295  void sqlite3ExprCodeGetColumnOfTable(
  3296    Vdbe *v,        /* The VDBE under construction */
  3297    Table *pTab,    /* The table containing the value */
  3298    int iTabCur,    /* The table cursor.  Or the PK cursor for WITHOUT ROWID */
  3299    int iCol,       /* Index of the column to extract */
  3300    int regOut      /* Extract the value into this register */
  3301  ){
  3302    if( pTab==0 ){
  3303      sqlite3VdbeAddOp3(v, OP_Column, iTabCur, iCol, regOut);
  3304      return;
  3305    }
  3306    if( iCol<0 || iCol==pTab->iPKey ){
  3307      sqlite3VdbeAddOp2(v, OP_Rowid, iTabCur, regOut);
  3308    }else{
  3309      int op = IsVirtual(pTab) ? OP_VColumn : OP_Column;
  3310      int x = iCol;
  3311      if( !HasRowid(pTab) && !IsVirtual(pTab) ){
  3312        x = sqlite3ColumnOfIndex(sqlite3PrimaryKeyIndex(pTab), iCol);
  3313      }
  3314      sqlite3VdbeAddOp3(v, op, iTabCur, x, regOut);
  3315    }
  3316    if( iCol>=0 ){
  3317      sqlite3ColumnDefault(v, pTab, iCol, regOut);
  3318    }
  3319  }
  3320  
  3321  /*
  3322  ** Generate code that will extract the iColumn-th column from
  3323  ** table pTab and store the column value in a register. 
  3324  **
  3325  ** An effort is made to store the column value in register iReg.  This
  3326  ** is not garanteeed for GetColumn() - the result can be stored in
  3327  ** any register.  But the result is guaranteed to land in register iReg
  3328  ** for GetColumnToReg().
  3329  **
  3330  ** There must be an open cursor to pTab in iTable when this routine
  3331  ** is called.  If iColumn<0 then code is generated that extracts the rowid.
  3332  */
  3333  int sqlite3ExprCodeGetColumn(
  3334    Parse *pParse,   /* Parsing and code generating context */
  3335    Table *pTab,     /* Description of the table we are reading from */
  3336    int iColumn,     /* Index of the table column */
  3337    int iTable,      /* The cursor pointing to the table */
  3338    int iReg,        /* Store results here */
  3339    u8 p5            /* P5 value for OP_Column + FLAGS */
  3340  ){
  3341    Vdbe *v = pParse->pVdbe;
  3342    int i;
  3343    struct yColCache *p;
  3344  
  3345    for(i=0, p=pParse->aColCache; i<pParse->nColCache; i++, p++){
  3346      if( p->iTable==iTable && p->iColumn==iColumn ){
  3347        p->lru = pParse->iCacheCnt++;
  3348        sqlite3ExprCachePinRegister(pParse, p->iReg);
  3349        return p->iReg;
  3350      }
  3351    }  
  3352    assert( v!=0 );
  3353    sqlite3ExprCodeGetColumnOfTable(v, pTab, iTable, iColumn, iReg);
  3354    if( p5 ){
  3355      sqlite3VdbeChangeP5(v, p5);
  3356    }else{   
  3357      sqlite3ExprCacheStore(pParse, iTable, iColumn, iReg);
  3358    }
  3359    return iReg;
  3360  }
  3361  void sqlite3ExprCodeGetColumnToReg(
  3362    Parse *pParse,   /* Parsing and code generating context */
  3363    Table *pTab,     /* Description of the table we are reading from */
  3364    int iColumn,     /* Index of the table column */
  3365    int iTable,      /* The cursor pointing to the table */
  3366    int iReg         /* Store results here */
  3367  ){
  3368    int r1 = sqlite3ExprCodeGetColumn(pParse, pTab, iColumn, iTable, iReg, 0);
  3369    if( r1!=iReg ) sqlite3VdbeAddOp2(pParse->pVdbe, OP_SCopy, r1, iReg);
  3370  }
  3371  
  3372  
  3373  /*
  3374  ** Clear all column cache entries.
  3375  */
  3376  void sqlite3ExprCacheClear(Parse *pParse){
  3377    int i;
  3378  
  3379  #ifdef SQLITE_DEBUG
  3380    if( pParse->db->flags & SQLITE_VdbeAddopTrace ){
  3381      printf("CLEAR\n");
  3382    }
  3383  #endif
  3384    for(i=0; i<pParse->nColCache; i++){
  3385      if( pParse->aColCache[i].tempReg
  3386       && pParse->nTempReg<ArraySize(pParse->aTempReg)
  3387      ){
  3388         pParse->aTempReg[pParse->nTempReg++] = pParse->aColCache[i].iReg;
  3389      }
  3390    }
  3391    pParse->nColCache = 0;
  3392  }
  3393  
  3394  /*
  3395  ** Record the fact that an affinity change has occurred on iCount
  3396  ** registers starting with iStart.
  3397  */
  3398  void sqlite3ExprCacheAffinityChange(Parse *pParse, int iStart, int iCount){
  3399    sqlite3ExprCacheRemove(pParse, iStart, iCount);
  3400  }
  3401  
  3402  /*
  3403  ** Generate code to move content from registers iFrom...iFrom+nReg-1
  3404  ** over to iTo..iTo+nReg-1. Keep the column cache up-to-date.
  3405  */
  3406  void sqlite3ExprCodeMove(Parse *pParse, int iFrom, int iTo, int nReg){
  3407    assert( iFrom>=iTo+nReg || iFrom+nReg<=iTo );
  3408    sqlite3VdbeAddOp3(pParse->pVdbe, OP_Move, iFrom, iTo, nReg);
  3409    sqlite3ExprCacheRemove(pParse, iFrom, nReg);
  3410  }
  3411  
  3412  #if defined(SQLITE_DEBUG) || defined(SQLITE_COVERAGE_TEST)
  3413  /*
  3414  ** Return true if any register in the range iFrom..iTo (inclusive)
  3415  ** is used as part of the column cache.
  3416  **
  3417  ** This routine is used within assert() and testcase() macros only
  3418  ** and does not appear in a normal build.
  3419  */
  3420  static int usedAsColumnCache(Parse *pParse, int iFrom, int iTo){
  3421    int i;
  3422    struct yColCache *p;
  3423    for(i=0, p=pParse->aColCache; i<pParse->nColCache; i++, p++){
  3424      int r = p->iReg;
  3425      if( r>=iFrom && r<=iTo ) return 1;    /*NO_TEST*/
  3426    }
  3427    return 0;
  3428  }
  3429  #endif /* SQLITE_DEBUG || SQLITE_COVERAGE_TEST */
  3430  
  3431  
  3432  /*
  3433  ** Convert a scalar expression node to a TK_REGISTER referencing
  3434  ** register iReg.  The caller must ensure that iReg already contains
  3435  ** the correct value for the expression.
  3436  */
  3437  static void exprToRegister(Expr *p, int iReg){
  3438    p->op2 = p->op;
  3439    p->op = TK_REGISTER;
  3440    p->iTable = iReg;
  3441    ExprClearProperty(p, EP_Skip);
  3442  }
  3443  
  3444  /*
  3445  ** Evaluate an expression (either a vector or a scalar expression) and store
  3446  ** the result in continguous temporary registers.  Return the index of
  3447  ** the first register used to store the result.
  3448  **
  3449  ** If the returned result register is a temporary scalar, then also write
  3450  ** that register number into *piFreeable.  If the returned result register
  3451  ** is not a temporary or if the expression is a vector set *piFreeable
  3452  ** to 0.
  3453  */
  3454  static int exprCodeVector(Parse *pParse, Expr *p, int *piFreeable){
  3455    int iResult;
  3456    int nResult = sqlite3ExprVectorSize(p);
  3457    if( nResult==1 ){
  3458      iResult = sqlite3ExprCodeTemp(pParse, p, piFreeable);
  3459    }else{
  3460      *piFreeable = 0;
  3461      if( p->op==TK_SELECT ){
  3462  #if SQLITE_OMIT_SUBQUERY
  3463        iResult = 0;
  3464  #else
  3465        iResult = sqlite3CodeSubselect(pParse, p, 0, 0);
  3466  #endif
  3467      }else{
  3468        int i;
  3469        iResult = pParse->nMem+1;
  3470        pParse->nMem += nResult;
  3471        for(i=0; i<nResult; i++){
  3472          sqlite3ExprCodeFactorable(pParse, p->x.pList->a[i].pExpr, i+iResult);
  3473        }
  3474      }
  3475    }
  3476    return iResult;
  3477  }
  3478  
  3479  
  3480  /*
  3481  ** Generate code into the current Vdbe to evaluate the given
  3482  ** expression.  Attempt to store the results in register "target".
  3483  ** Return the register where results are stored.
  3484  **
  3485  ** With this routine, there is no guarantee that results will
  3486  ** be stored in target.  The result might be stored in some other
  3487  ** register if it is convenient to do so.  The calling function
  3488  ** must check the return code and move the results to the desired
  3489  ** register.
  3490  */
  3491  int sqlite3ExprCodeTarget(Parse *pParse, Expr *pExpr, int target){
  3492    Vdbe *v = pParse->pVdbe;  /* The VM under construction */
  3493    int op;                   /* The opcode being coded */
  3494    int inReg = target;       /* Results stored in register inReg */
  3495    int regFree1 = 0;         /* If non-zero free this temporary register */
  3496    int regFree2 = 0;         /* If non-zero free this temporary register */
  3497    int r1, r2;               /* Various register numbers */
  3498    Expr tempX;               /* Temporary expression node */
  3499    int p5 = 0;
  3500  
  3501    assert( target>0 && target<=pParse->nMem );
  3502    if( v==0 ){
  3503      assert( pParse->db->mallocFailed );
  3504      return 0;
  3505    }
  3506  
  3507    if( pExpr==0 ){
  3508      op = TK_NULL;
  3509    }else{
  3510      op = pExpr->op;
  3511    }
  3512    switch( op ){
  3513      case TK_AGG_COLUMN: {
  3514        AggInfo *pAggInfo = pExpr->pAggInfo;
  3515        struct AggInfo_col *pCol = &pAggInfo->aCol[pExpr->iAgg];
  3516        if( !pAggInfo->directMode ){
  3517          assert( pCol->iMem>0 );
  3518          return pCol->iMem;
  3519        }else if( pAggInfo->useSortingIdx ){
  3520          sqlite3VdbeAddOp3(v, OP_Column, pAggInfo->sortingIdxPTab,
  3521                                pCol->iSorterColumn, target);
  3522          return target;
  3523        }
  3524        /* Otherwise, fall thru into the TK_COLUMN case */
  3525      }
  3526      case TK_COLUMN: {
  3527        int iTab = pExpr->iTable;
  3528        if( iTab<0 ){
  3529          if( pParse->iSelfTab<0 ){
  3530            /* Generating CHECK constraints or inserting into partial index */
  3531            return pExpr->iColumn - pParse->iSelfTab;
  3532          }else{
  3533            /* Coding an expression that is part of an index where column names
  3534            ** in the index refer to the table to which the index belongs */
  3535            iTab = pParse->iSelfTab - 1;
  3536          }
  3537        }
  3538        return sqlite3ExprCodeGetColumn(pParse, pExpr->pTab,
  3539                                 pExpr->iColumn, iTab, target,
  3540                                 pExpr->op2);
  3541      }
  3542      case TK_INTEGER: {
  3543        codeInteger(pParse, pExpr, 0, target);
  3544        return target;
  3545      }
  3546  #ifndef SQLITE_OMIT_FLOATING_POINT
  3547      case TK_FLOAT: {
  3548        assert( !ExprHasProperty(pExpr, EP_IntValue) );
  3549        codeReal(v, pExpr->u.zToken, 0, target);
  3550        return target;
  3551      }
  3552  #endif
  3553      case TK_STRING: {
  3554        assert( !ExprHasProperty(pExpr, EP_IntValue) );
  3555        sqlite3VdbeLoadString(v, target, pExpr->u.zToken);
  3556        return target;
  3557      }
  3558      case TK_NULL: {
  3559        sqlite3VdbeAddOp2(v, OP_Null, 0, target);
  3560        return target;
  3561      }
  3562  #ifndef SQLITE_OMIT_BLOB_LITERAL
  3563      case TK_BLOB: {
  3564        int n;
  3565        const char *z;
  3566        char *zBlob;
  3567        assert( !ExprHasProperty(pExpr, EP_IntValue) );
  3568        assert( pExpr->u.zToken[0]=='x' || pExpr->u.zToken[0]=='X' );
  3569        assert( pExpr->u.zToken[1]=='\'' );
  3570        z = &pExpr->u.zToken[2];
  3571        n = sqlite3Strlen30(z) - 1;
  3572        assert( z[n]=='\'' );
  3573        zBlob = sqlite3HexToBlob(sqlite3VdbeDb(v), z, n);
  3574        sqlite3VdbeAddOp4(v, OP_Blob, n/2, target, 0, zBlob, P4_DYNAMIC);
  3575        return target;
  3576      }
  3577  #endif
  3578      case TK_VARIABLE: {
  3579        assert( !ExprHasProperty(pExpr, EP_IntValue) );
  3580        assert( pExpr->u.zToken!=0 );
  3581        assert( pExpr->u.zToken[0]!=0 );
  3582        sqlite3VdbeAddOp2(v, OP_Variable, pExpr->iColumn, target);
  3583        if( pExpr->u.zToken[1]!=0 ){
  3584          const char *z = sqlite3VListNumToName(pParse->pVList, pExpr->iColumn);
  3585          assert( pExpr->u.zToken[0]=='?' || strcmp(pExpr->u.zToken, z)==0 );
  3586          pParse->pVList[0] = 0; /* Indicate VList may no longer be enlarged */
  3587          sqlite3VdbeAppendP4(v, (char*)z, P4_STATIC);
  3588        }
  3589        return target;
  3590      }
  3591      case TK_REGISTER: {
  3592        return pExpr->iTable;
  3593      }
  3594  #ifndef SQLITE_OMIT_CAST
  3595      case TK_CAST: {
  3596        /* Expressions of the form:   CAST(pLeft AS token) */
  3597        inReg = sqlite3ExprCodeTarget(pParse, pExpr->pLeft, target);
  3598        if( inReg!=target ){
  3599          sqlite3VdbeAddOp2(v, OP_SCopy, inReg, target);
  3600          inReg = target;
  3601        }
  3602        sqlite3VdbeAddOp2(v, OP_Cast, target,
  3603                          sqlite3AffinityType(pExpr->u.zToken, 0));
  3604        testcase( usedAsColumnCache(pParse, inReg, inReg) );
  3605        sqlite3ExprCacheAffinityChange(pParse, inReg, 1);
  3606        return inReg;
  3607      }
  3608  #endif /* SQLITE_OMIT_CAST */
  3609      case TK_IS:
  3610      case TK_ISNOT:
  3611        op = (op==TK_IS) ? TK_EQ : TK_NE;
  3612        p5 = SQLITE_NULLEQ;
  3613        /* fall-through */
  3614      case TK_LT:
  3615      case TK_LE:
  3616      case TK_GT:
  3617      case TK_GE:
  3618      case TK_NE:
  3619      case TK_EQ: {
  3620        Expr *pLeft = pExpr->pLeft;
  3621        if( sqlite3ExprIsVector(pLeft) ){
  3622          codeVectorCompare(pParse, pExpr, target, op, p5);
  3623        }else{
  3624          r1 = sqlite3ExprCodeTemp(pParse, pLeft, &regFree1);
  3625          r2 = sqlite3ExprCodeTemp(pParse, pExpr->pRight, &regFree2);
  3626          codeCompare(pParse, pLeft, pExpr->pRight, op,
  3627              r1, r2, inReg, SQLITE_STOREP2 | p5);
  3628          assert(TK_LT==OP_Lt); testcase(op==OP_Lt); VdbeCoverageIf(v,op==OP_Lt);
  3629          assert(TK_LE==OP_Le); testcase(op==OP_Le); VdbeCoverageIf(v,op==OP_Le);
  3630          assert(TK_GT==OP_Gt); testcase(op==OP_Gt); VdbeCoverageIf(v,op==OP_Gt);
  3631          assert(TK_GE==OP_Ge); testcase(op==OP_Ge); VdbeCoverageIf(v,op==OP_Ge);
  3632          assert(TK_EQ==OP_Eq); testcase(op==OP_Eq); VdbeCoverageIf(v,op==OP_Eq);
  3633          assert(TK_NE==OP_Ne); testcase(op==OP_Ne); VdbeCoverageIf(v,op==OP_Ne);
  3634          testcase( regFree1==0 );
  3635          testcase( regFree2==0 );
  3636        }
  3637        break;
  3638      }
  3639      case TK_AND:
  3640      case TK_OR:
  3641      case TK_PLUS:
  3642      case TK_STAR:
  3643      case TK_MINUS:
  3644      case TK_REM:
  3645      case TK_BITAND:
  3646      case TK_BITOR:
  3647      case TK_SLASH:
  3648      case TK_LSHIFT:
  3649      case TK_RSHIFT: 
  3650      case TK_CONCAT: {
  3651        assert( TK_AND==OP_And );            testcase( op==TK_AND );
  3652        assert( TK_OR==OP_Or );              testcase( op==TK_OR );
  3653        assert( TK_PLUS==OP_Add );           testcase( op==TK_PLUS );
  3654        assert( TK_MINUS==OP_Subtract );     testcase( op==TK_MINUS );
  3655        assert( TK_REM==OP_Remainder );      testcase( op==TK_REM );
  3656        assert( TK_BITAND==OP_BitAnd );      testcase( op==TK_BITAND );
  3657        assert( TK_BITOR==OP_BitOr );        testcase( op==TK_BITOR );
  3658        assert( TK_SLASH==OP_Divide );       testcase( op==TK_SLASH );
  3659        assert( TK_LSHIFT==OP_ShiftLeft );   testcase( op==TK_LSHIFT );
  3660        assert( TK_RSHIFT==OP_ShiftRight );  testcase( op==TK_RSHIFT );
  3661        assert( TK_CONCAT==OP_Concat );      testcase( op==TK_CONCAT );
  3662        r1 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, &regFree1);
  3663        r2 = sqlite3ExprCodeTemp(pParse, pExpr->pRight, &regFree2);
  3664        sqlite3VdbeAddOp3(v, op, r2, r1, target);
  3665        testcase( regFree1==0 );
  3666        testcase( regFree2==0 );
  3667        break;
  3668      }
  3669      case TK_UMINUS: {
  3670        Expr *pLeft = pExpr->pLeft;
  3671        assert( pLeft );
  3672        if( pLeft->op==TK_INTEGER ){
  3673          codeInteger(pParse, pLeft, 1, target);
  3674          return target;
  3675  #ifndef SQLITE_OMIT_FLOATING_POINT
  3676        }else if( pLeft->op==TK_FLOAT ){
  3677          assert( !ExprHasProperty(pExpr, EP_IntValue) );
  3678          codeReal(v, pLeft->u.zToken, 1, target);
  3679          return target;
  3680  #endif
  3681        }else{
  3682          tempX.op = TK_INTEGER;
  3683          tempX.flags = EP_IntValue|EP_TokenOnly;
  3684          tempX.u.iValue = 0;
  3685          r1 = sqlite3ExprCodeTemp(pParse, &tempX, &regFree1);
  3686          r2 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, &regFree2);
  3687          sqlite3VdbeAddOp3(v, OP_Subtract, r2, r1, target);
  3688          testcase( regFree2==0 );
  3689        }
  3690        break;
  3691      }
  3692      case TK_BITNOT:
  3693      case TK_NOT: {
  3694        assert( TK_BITNOT==OP_BitNot );   testcase( op==TK_BITNOT );
  3695        assert( TK_NOT==OP_Not );         testcase( op==TK_NOT );
  3696        r1 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, &regFree1);
  3697        testcase( regFree1==0 );
  3698        sqlite3VdbeAddOp2(v, op, r1, inReg);
  3699        break;
  3700      }
  3701      case TK_ISNULL:
  3702      case TK_NOTNULL: {
  3703        int addr;
  3704        assert( TK_ISNULL==OP_IsNull );   testcase( op==TK_ISNULL );
  3705        assert( TK_NOTNULL==OP_NotNull ); testcase( op==TK_NOTNULL );
  3706        sqlite3VdbeAddOp2(v, OP_Integer, 1, target);
  3707        r1 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, &regFree1);
  3708        testcase( regFree1==0 );
  3709        addr = sqlite3VdbeAddOp1(v, op, r1);
  3710        VdbeCoverageIf(v, op==TK_ISNULL);
  3711        VdbeCoverageIf(v, op==TK_NOTNULL);
  3712        sqlite3VdbeAddOp2(v, OP_Integer, 0, target);
  3713        sqlite3VdbeJumpHere(v, addr);
  3714        break;
  3715      }
  3716      case TK_AGG_FUNCTION: {
  3717        AggInfo *pInfo = pExpr->pAggInfo;
  3718        if( pInfo==0 ){
  3719          assert( !ExprHasProperty(pExpr, EP_IntValue) );
  3720          sqlite3ErrorMsg(pParse, "misuse of aggregate: %s()", pExpr->u.zToken);
  3721        }else{
  3722          return pInfo->aFunc[pExpr->iAgg].iMem;
  3723        }
  3724        break;
  3725      }
  3726      case TK_FUNCTION: {
  3727        ExprList *pFarg;       /* List of function arguments */
  3728        int nFarg;             /* Number of function arguments */
  3729        FuncDef *pDef;         /* The function definition object */
  3730        const char *zId;       /* The function name */
  3731        u32 constMask = 0;     /* Mask of function arguments that are constant */
  3732        int i;                 /* Loop counter */
  3733        sqlite3 *db = pParse->db;  /* The database connection */
  3734        u8 enc = ENC(db);      /* The text encoding used by this database */
  3735        CollSeq *pColl = 0;    /* A collating sequence */
  3736  
  3737        if( ConstFactorOk(pParse) && sqlite3ExprIsConstantNotJoin(pExpr) ){
  3738          /* SQL functions can be expensive. So try to move constant functions
  3739          ** out of the inner loop, even if that means an extra OP_Copy. */
  3740          return sqlite3ExprCodeAtInit(pParse, pExpr, -1);
  3741        }
  3742        assert( !ExprHasProperty(pExpr, EP_xIsSelect) );
  3743        if( ExprHasProperty(pExpr, EP_TokenOnly) ){
  3744          pFarg = 0;
  3745        }else{
  3746          pFarg = pExpr->x.pList;
  3747        }
  3748        nFarg = pFarg ? pFarg->nExpr : 0;
  3749        assert( !ExprHasProperty(pExpr, EP_IntValue) );
  3750        zId = pExpr->u.zToken;
  3751        pDef = sqlite3FindFunction(db, zId, nFarg, enc, 0);
  3752  #ifdef SQLITE_ENABLE_UNKNOWN_SQL_FUNCTION
  3753        if( pDef==0 && pParse->explain ){
  3754          pDef = sqlite3FindFunction(db, "unknown", nFarg, enc, 0);
  3755        }
  3756  #endif
  3757        if( pDef==0 || pDef->xFinalize!=0 ){
  3758          sqlite3ErrorMsg(pParse, "unknown function: %s()", zId);
  3759          break;
  3760        }
  3761  
  3762        /* Attempt a direct implementation of the built-in COALESCE() and
  3763        ** IFNULL() functions.  This avoids unnecessary evaluation of
  3764        ** arguments past the first non-NULL argument.
  3765        */
  3766        if( pDef->funcFlags & SQLITE_FUNC_COALESCE ){
  3767          int endCoalesce = sqlite3VdbeMakeLabel(v);
  3768          assert( nFarg>=2 );
  3769          sqlite3ExprCode(pParse, pFarg->a[0].pExpr, target);
  3770          for(i=1; i<nFarg; i++){
  3771            sqlite3VdbeAddOp2(v, OP_NotNull, target, endCoalesce);
  3772            VdbeCoverage(v);
  3773            sqlite3ExprCacheRemove(pParse, target, 1);
  3774            sqlite3ExprCachePush(pParse);
  3775            sqlite3ExprCode(pParse, pFarg->a[i].pExpr, target);
  3776            sqlite3ExprCachePop(pParse);
  3777          }
  3778          sqlite3VdbeResolveLabel(v, endCoalesce);
  3779          break;
  3780        }
  3781  
  3782        /* The UNLIKELY() function is a no-op.  The result is the value
  3783        ** of the first argument.
  3784        */
  3785        if( pDef->funcFlags & SQLITE_FUNC_UNLIKELY ){
  3786          assert( nFarg>=1 );
  3787          return sqlite3ExprCodeTarget(pParse, pFarg->a[0].pExpr, target);
  3788        }
  3789  
  3790  #ifdef SQLITE_DEBUG
  3791        /* The AFFINITY() function evaluates to a string that describes
  3792        ** the type affinity of the argument.  This is used for testing of
  3793        ** the SQLite type logic.
  3794        */
  3795        if( pDef->funcFlags & SQLITE_FUNC_AFFINITY ){
  3796          const char *azAff[] = { "blob", "text", "numeric", "integer", "real" };
  3797          char aff;
  3798          assert( nFarg==1 );
  3799          aff = sqlite3ExprAffinity(pFarg->a[0].pExpr);
  3800          sqlite3VdbeLoadString(v, target, 
  3801                                aff ? azAff[aff-SQLITE_AFF_BLOB] : "none");
  3802          return target;
  3803        }
  3804  #endif
  3805  
  3806        for(i=0; i<nFarg; i++){
  3807          if( i<32 && sqlite3ExprIsConstant(pFarg->a[i].pExpr) ){
  3808            testcase( i==31 );
  3809            constMask |= MASKBIT32(i);
  3810          }
  3811          if( (pDef->funcFlags & SQLITE_FUNC_NEEDCOLL)!=0 && !pColl ){
  3812            pColl = sqlite3ExprCollSeq(pParse, pFarg->a[i].pExpr);
  3813          }
  3814        }
  3815        if( pFarg ){
  3816          if( constMask ){
  3817            r1 = pParse->nMem+1;
  3818            pParse->nMem += nFarg;
  3819          }else{
  3820            r1 = sqlite3GetTempRange(pParse, nFarg);
  3821          }
  3822  
  3823          /* For length() and typeof() functions with a column argument,
  3824          ** set the P5 parameter to the OP_Column opcode to OPFLAG_LENGTHARG
  3825          ** or OPFLAG_TYPEOFARG respectively, to avoid unnecessary data
  3826          ** loading.
  3827          */
  3828          if( (pDef->funcFlags & (SQLITE_FUNC_LENGTH|SQLITE_FUNC_TYPEOF))!=0 ){
  3829            u8 exprOp;
  3830            assert( nFarg==1 );
  3831            assert( pFarg->a[0].pExpr!=0 );
  3832            exprOp = pFarg->a[0].pExpr->op;
  3833            if( exprOp==TK_COLUMN || exprOp==TK_AGG_COLUMN ){
  3834              assert( SQLITE_FUNC_LENGTH==OPFLAG_LENGTHARG );
  3835              assert( SQLITE_FUNC_TYPEOF==OPFLAG_TYPEOFARG );
  3836              testcase( pDef->funcFlags & OPFLAG_LENGTHARG );
  3837              pFarg->a[0].pExpr->op2 = 
  3838                    pDef->funcFlags & (OPFLAG_LENGTHARG|OPFLAG_TYPEOFARG);
  3839            }
  3840          }
  3841  
  3842          sqlite3ExprCachePush(pParse);     /* Ticket 2ea2425d34be */
  3843          sqlite3ExprCodeExprList(pParse, pFarg, r1, 0,
  3844                                  SQLITE_ECEL_DUP|SQLITE_ECEL_FACTOR);
  3845          sqlite3ExprCachePop(pParse);      /* Ticket 2ea2425d34be */
  3846        }else{
  3847          r1 = 0;
  3848        }
  3849  #ifndef SQLITE_OMIT_VIRTUALTABLE
  3850        /* Possibly overload the function if the first argument is
  3851        ** a virtual table column.
  3852        **
  3853        ** For infix functions (LIKE, GLOB, REGEXP, and MATCH) use the
  3854        ** second argument, not the first, as the argument to test to
  3855        ** see if it is a column in a virtual table.  This is done because
  3856        ** the left operand of infix functions (the operand we want to
  3857        ** control overloading) ends up as the second argument to the
  3858        ** function.  The expression "A glob B" is equivalent to 
  3859        ** "glob(B,A).  We want to use the A in "A glob B" to test
  3860        ** for function overloading.  But we use the B term in "glob(B,A)".
  3861        */
  3862        if( nFarg>=2 && (pExpr->flags & EP_InfixFunc) ){
  3863          pDef = sqlite3VtabOverloadFunction(db, pDef, nFarg, pFarg->a[1].pExpr);
  3864        }else if( nFarg>0 ){
  3865          pDef = sqlite3VtabOverloadFunction(db, pDef, nFarg, pFarg->a[0].pExpr);
  3866        }
  3867  #endif
  3868        if( pDef->funcFlags & SQLITE_FUNC_NEEDCOLL ){
  3869          if( !pColl ) pColl = db->pDfltColl; 
  3870          sqlite3VdbeAddOp4(v, OP_CollSeq, 0, 0, 0, (char *)pColl, P4_COLLSEQ);
  3871        }
  3872        sqlite3VdbeAddOp4(v, pParse->iSelfTab ? OP_PureFunc0 : OP_Function0,
  3873                          constMask, r1, target, (char*)pDef, P4_FUNCDEF);
  3874        sqlite3VdbeChangeP5(v, (u8)nFarg);
  3875        if( nFarg && constMask==0 ){
  3876          sqlite3ReleaseTempRange(pParse, r1, nFarg);
  3877        }
  3878        return target;
  3879      }
  3880  #ifndef SQLITE_OMIT_SUBQUERY
  3881      case TK_EXISTS:
  3882      case TK_SELECT: {
  3883        int nCol;
  3884        testcase( op==TK_EXISTS );
  3885        testcase( op==TK_SELECT );
  3886        if( op==TK_SELECT && (nCol = pExpr->x.pSelect->pEList->nExpr)!=1 ){
  3887          sqlite3SubselectError(pParse, nCol, 1);
  3888        }else{
  3889          return sqlite3CodeSubselect(pParse, pExpr, 0, 0);
  3890        }
  3891        break;
  3892      }
  3893      case TK_SELECT_COLUMN: {
  3894        int n;
  3895        if( pExpr->pLeft->iTable==0 ){
  3896          pExpr->pLeft->iTable = sqlite3CodeSubselect(pParse, pExpr->pLeft, 0, 0);
  3897        }
  3898        assert( pExpr->iTable==0 || pExpr->pLeft->op==TK_SELECT );
  3899        if( pExpr->iTable
  3900         && pExpr->iTable!=(n = sqlite3ExprVectorSize(pExpr->pLeft)) 
  3901        ){
  3902          sqlite3ErrorMsg(pParse, "%d columns assigned %d values",
  3903                                  pExpr->iTable, n);
  3904        }
  3905        return pExpr->pLeft->iTable + pExpr->iColumn;
  3906      }
  3907      case TK_IN: {
  3908        int destIfFalse = sqlite3VdbeMakeLabel(v);
  3909        int destIfNull = sqlite3VdbeMakeLabel(v);
  3910        sqlite3VdbeAddOp2(v, OP_Null, 0, target);
  3911        sqlite3ExprCodeIN(pParse, pExpr, destIfFalse, destIfNull);
  3912        sqlite3VdbeAddOp2(v, OP_Integer, 1, target);
  3913        sqlite3VdbeResolveLabel(v, destIfFalse);
  3914        sqlite3VdbeAddOp2(v, OP_AddImm, target, 0);
  3915        sqlite3VdbeResolveLabel(v, destIfNull);
  3916        return target;
  3917      }
  3918  #endif /* SQLITE_OMIT_SUBQUERY */
  3919  
  3920  
  3921      /*
  3922      **    x BETWEEN y AND z
  3923      **
  3924      ** This is equivalent to
  3925      **
  3926      **    x>=y AND x<=z
  3927      **
  3928      ** X is stored in pExpr->pLeft.
  3929      ** Y is stored in pExpr->pList->a[0].pExpr.
  3930      ** Z is stored in pExpr->pList->a[1].pExpr.
  3931      */
  3932      case TK_BETWEEN: {
  3933        exprCodeBetween(pParse, pExpr, target, 0, 0);
  3934        return target;
  3935      }
  3936      case TK_SPAN:
  3937      case TK_COLLATE: 
  3938      case TK_UPLUS: {
  3939        return sqlite3ExprCodeTarget(pParse, pExpr->pLeft, target);
  3940      }
  3941  
  3942      case TK_TRIGGER: {
  3943        /* If the opcode is TK_TRIGGER, then the expression is a reference
  3944        ** to a column in the new.* or old.* pseudo-tables available to
  3945        ** trigger programs. In this case Expr.iTable is set to 1 for the
  3946        ** new.* pseudo-table, or 0 for the old.* pseudo-table. Expr.iColumn
  3947        ** is set to the column of the pseudo-table to read, or to -1 to
  3948        ** read the rowid field.
  3949        **
  3950        ** The expression is implemented using an OP_Param opcode. The p1
  3951        ** parameter is set to 0 for an old.rowid reference, or to (i+1)
  3952        ** to reference another column of the old.* pseudo-table, where 
  3953        ** i is the index of the column. For a new.rowid reference, p1 is
  3954        ** set to (n+1), where n is the number of columns in each pseudo-table.
  3955        ** For a reference to any other column in the new.* pseudo-table, p1
  3956        ** is set to (n+2+i), where n and i are as defined previously. For
  3957        ** example, if the table on which triggers are being fired is
  3958        ** declared as:
  3959        **
  3960        **   CREATE TABLE t1(a, b);
  3961        **
  3962        ** Then p1 is interpreted as follows:
  3963        **
  3964        **   p1==0   ->    old.rowid     p1==3   ->    new.rowid
  3965        **   p1==1   ->    old.a         p1==4   ->    new.a
  3966        **   p1==2   ->    old.b         p1==5   ->    new.b       
  3967        */
  3968        Table *pTab = pExpr->pTab;
  3969        int p1 = pExpr->iTable * (pTab->nCol+1) + 1 + pExpr->iColumn;
  3970  
  3971        assert( pExpr->iTable==0 || pExpr->iTable==1 );
  3972        assert( pExpr->iColumn>=-1 && pExpr->iColumn<pTab->nCol );
  3973        assert( pTab->iPKey<0 || pExpr->iColumn!=pTab->iPKey );
  3974        assert( p1>=0 && p1<(pTab->nCol*2+2) );
  3975  
  3976        sqlite3VdbeAddOp2(v, OP_Param, p1, target);
  3977        VdbeComment((v, "%s.%s -> $%d",
  3978          (pExpr->iTable ? "new" : "old"),
  3979          (pExpr->iColumn<0 ? "rowid" : pExpr->pTab->aCol[pExpr->iColumn].zName),
  3980          target
  3981        ));
  3982  
  3983  #ifndef SQLITE_OMIT_FLOATING_POINT
  3984        /* If the column has REAL affinity, it may currently be stored as an
  3985        ** integer. Use OP_RealAffinity to make sure it is really real.
  3986        **
  3987        ** EVIDENCE-OF: R-60985-57662 SQLite will convert the value back to
  3988        ** floating point when extracting it from the record.  */
  3989        if( pExpr->iColumn>=0 
  3990         && pTab->aCol[pExpr->iColumn].affinity==SQLITE_AFF_REAL
  3991        ){
  3992          sqlite3VdbeAddOp1(v, OP_RealAffinity, target);
  3993        }
  3994  #endif
  3995        break;
  3996      }
  3997  
  3998      case TK_VECTOR: {
  3999        sqlite3ErrorMsg(pParse, "row value misused");
  4000        break;
  4001      }
  4002  
  4003      case TK_IF_NULL_ROW: {
  4004        int addrINR;
  4005        addrINR = sqlite3VdbeAddOp1(v, OP_IfNullRow, pExpr->iTable);
  4006        sqlite3ExprCachePush(pParse);
  4007        inReg = sqlite3ExprCodeTarget(pParse, pExpr->pLeft, target);
  4008        sqlite3ExprCachePop(pParse);
  4009        sqlite3VdbeJumpHere(v, addrINR);
  4010        sqlite3VdbeChangeP3(v, addrINR, inReg);
  4011        break;
  4012      }
  4013  
  4014      /*
  4015      ** Form A:
  4016      **   CASE x WHEN e1 THEN r1 WHEN e2 THEN r2 ... WHEN eN THEN rN ELSE y END
  4017      **
  4018      ** Form B:
  4019      **   CASE WHEN e1 THEN r1 WHEN e2 THEN r2 ... WHEN eN THEN rN ELSE y END
  4020      **
  4021      ** Form A is can be transformed into the equivalent form B as follows:
  4022      **   CASE WHEN x=e1 THEN r1 WHEN x=e2 THEN r2 ...
  4023      **        WHEN x=eN THEN rN ELSE y END
  4024      **
  4025      ** X (if it exists) is in pExpr->pLeft.
  4026      ** Y is in the last element of pExpr->x.pList if pExpr->x.pList->nExpr is
  4027      ** odd.  The Y is also optional.  If the number of elements in x.pList
  4028      ** is even, then Y is omitted and the "otherwise" result is NULL.
  4029      ** Ei is in pExpr->pList->a[i*2] and Ri is pExpr->pList->a[i*2+1].
  4030      **
  4031      ** The result of the expression is the Ri for the first matching Ei,
  4032      ** or if there is no matching Ei, the ELSE term Y, or if there is
  4033      ** no ELSE term, NULL.
  4034      */
  4035      default: assert( op==TK_CASE ); {
  4036        int endLabel;                     /* GOTO label for end of CASE stmt */
  4037        int nextCase;                     /* GOTO label for next WHEN clause */
  4038        int nExpr;                        /* 2x number of WHEN terms */
  4039        int i;                            /* Loop counter */
  4040        ExprList *pEList;                 /* List of WHEN terms */
  4041        struct ExprList_item *aListelem;  /* Array of WHEN terms */
  4042        Expr opCompare;                   /* The X==Ei expression */
  4043        Expr *pX;                         /* The X expression */
  4044        Expr *pTest = 0;                  /* X==Ei (form A) or just Ei (form B) */
  4045        VVA_ONLY( int iCacheLevel = pParse->iCacheLevel; )
  4046  
  4047        assert( !ExprHasProperty(pExpr, EP_xIsSelect) && pExpr->x.pList );
  4048        assert(pExpr->x.pList->nExpr > 0);
  4049        pEList = pExpr->x.pList;
  4050        aListelem = pEList->a;
  4051        nExpr = pEList->nExpr;
  4052        endLabel = sqlite3VdbeMakeLabel(v);
  4053        if( (pX = pExpr->pLeft)!=0 ){
  4054          tempX = *pX;
  4055          testcase( pX->op==TK_COLUMN );
  4056          exprToRegister(&tempX, exprCodeVector(pParse, &tempX, &regFree1));
  4057          testcase( regFree1==0 );
  4058          memset(&opCompare, 0, sizeof(opCompare));
  4059          opCompare.op = TK_EQ;
  4060          opCompare.pLeft = &tempX;
  4061          pTest = &opCompare;
  4062          /* Ticket b351d95f9cd5ef17e9d9dbae18f5ca8611190001:
  4063          ** The value in regFree1 might get SCopy-ed into the file result.
  4064          ** So make sure that the regFree1 register is not reused for other
  4065          ** purposes and possibly overwritten.  */
  4066          regFree1 = 0;
  4067        }
  4068        for(i=0; i<nExpr-1; i=i+2){
  4069          sqlite3ExprCachePush(pParse);
  4070          if( pX ){
  4071            assert( pTest!=0 );
  4072            opCompare.pRight = aListelem[i].pExpr;
  4073          }else{
  4074            pTest = aListelem[i].pExpr;
  4075          }
  4076          nextCase = sqlite3VdbeMakeLabel(v);
  4077          testcase( pTest->op==TK_COLUMN );
  4078          sqlite3ExprIfFalse(pParse, pTest, nextCase, SQLITE_JUMPIFNULL);
  4079          testcase( aListelem[i+1].pExpr->op==TK_COLUMN );
  4080          sqlite3ExprCode(pParse, aListelem[i+1].pExpr, target);
  4081          sqlite3VdbeGoto(v, endLabel);
  4082          sqlite3ExprCachePop(pParse);
  4083          sqlite3VdbeResolveLabel(v, nextCase);
  4084        }
  4085        if( (nExpr&1)!=0 ){
  4086          sqlite3ExprCachePush(pParse);
  4087          sqlite3ExprCode(pParse, pEList->a[nExpr-1].pExpr, target);
  4088          sqlite3ExprCachePop(pParse);
  4089        }else{
  4090          sqlite3VdbeAddOp2(v, OP_Null, 0, target);
  4091        }
  4092        assert( pParse->db->mallocFailed || pParse->nErr>0 
  4093             || pParse->iCacheLevel==iCacheLevel );
  4094        sqlite3VdbeResolveLabel(v, endLabel);
  4095        break;
  4096      }
  4097  #ifndef SQLITE_OMIT_TRIGGER
  4098      case TK_RAISE: {
  4099        assert( pExpr->affinity==OE_Rollback 
  4100             || pExpr->affinity==OE_Abort
  4101             || pExpr->affinity==OE_Fail
  4102             || pExpr->affinity==OE_Ignore
  4103        );
  4104        if( !pParse->pTriggerTab ){
  4105          sqlite3ErrorMsg(pParse,
  4106                         "RAISE() may only be used within a trigger-program");
  4107          return 0;
  4108        }
  4109        if( pExpr->affinity==OE_Abort ){
  4110          sqlite3MayAbort(pParse);
  4111        }
  4112        assert( !ExprHasProperty(pExpr, EP_IntValue) );
  4113        if( pExpr->affinity==OE_Ignore ){
  4114          sqlite3VdbeAddOp4(
  4115              v, OP_Halt, SQLITE_OK, OE_Ignore, 0, pExpr->u.zToken,0);
  4116          VdbeCoverage(v);
  4117        }else{
  4118          sqlite3HaltConstraint(pParse, SQLITE_CONSTRAINT_TRIGGER,
  4119                                pExpr->affinity, pExpr->u.zToken, 0, 0);
  4120        }
  4121  
  4122        break;
  4123      }
  4124  #endif
  4125    }
  4126    sqlite3ReleaseTempReg(pParse, regFree1);
  4127    sqlite3ReleaseTempReg(pParse, regFree2);
  4128    return inReg;
  4129  }
  4130  
  4131  /*
  4132  ** Factor out the code of the given expression to initialization time.
  4133  **
  4134  ** If regDest>=0 then the result is always stored in that register and the
  4135  ** result is not reusable.  If regDest<0 then this routine is free to 
  4136  ** store the value whereever it wants.  The register where the expression 
  4137  ** is stored is returned.  When regDest<0, two identical expressions will
  4138  ** code to the same register.
  4139  */
  4140  int sqlite3ExprCodeAtInit(
  4141    Parse *pParse,    /* Parsing context */
  4142    Expr *pExpr,      /* The expression to code when the VDBE initializes */
  4143    int regDest       /* Store the value in this register */
  4144  ){
  4145    ExprList *p;
  4146    assert( ConstFactorOk(pParse) );
  4147    p = pParse->pConstExpr;
  4148    if( regDest<0 && p ){
  4149      struct ExprList_item *pItem;
  4150      int i;
  4151      for(pItem=p->a, i=p->nExpr; i>0; pItem++, i--){
  4152        if( pItem->reusable && sqlite3ExprCompare(0,pItem->pExpr,pExpr,-1)==0 ){
  4153          return pItem->u.iConstExprReg;
  4154        }
  4155      }
  4156    }
  4157    pExpr = sqlite3ExprDup(pParse->db, pExpr, 0);
  4158    p = sqlite3ExprListAppend(pParse, p, pExpr);
  4159    if( p ){
  4160       struct ExprList_item *pItem = &p->a[p->nExpr-1];
  4161       pItem->reusable = regDest<0;
  4162       if( regDest<0 ) regDest = ++pParse->nMem;
  4163       pItem->u.iConstExprReg = regDest;
  4164    }
  4165    pParse->pConstExpr = p;
  4166    return regDest;
  4167  }
  4168  
  4169  /*
  4170  ** Generate code to evaluate an expression and store the results
  4171  ** into a register.  Return the register number where the results
  4172  ** are stored.
  4173  **
  4174  ** If the register is a temporary register that can be deallocated,
  4175  ** then write its number into *pReg.  If the result register is not
  4176  ** a temporary, then set *pReg to zero.
  4177  **
  4178  ** If pExpr is a constant, then this routine might generate this
  4179  ** code to fill the register in the initialization section of the
  4180  ** VDBE program, in order to factor it out of the evaluation loop.
  4181  */
  4182  int sqlite3ExprCodeTemp(Parse *pParse, Expr *pExpr, int *pReg){
  4183    int r2;
  4184    pExpr = sqlite3ExprSkipCollate(pExpr);
  4185    if( ConstFactorOk(pParse)
  4186     && pExpr->op!=TK_REGISTER
  4187     && sqlite3ExprIsConstantNotJoin(pExpr)
  4188    ){
  4189      *pReg  = 0;
  4190      r2 = sqlite3ExprCodeAtInit(pParse, pExpr, -1);
  4191    }else{
  4192      int r1 = sqlite3GetTempReg(pParse);
  4193      r2 = sqlite3ExprCodeTarget(pParse, pExpr, r1);
  4194      if( r2==r1 ){
  4195        *pReg = r1;
  4196      }else{
  4197        sqlite3ReleaseTempReg(pParse, r1);
  4198        *pReg = 0;
  4199      }
  4200    }
  4201    return r2;
  4202  }
  4203  
  4204  /*
  4205  ** Generate code that will evaluate expression pExpr and store the
  4206  ** results in register target.  The results are guaranteed to appear
  4207  ** in register target.
  4208  */
  4209  void sqlite3ExprCode(Parse *pParse, Expr *pExpr, int target){
  4210    int inReg;
  4211  
  4212    assert( target>0 && target<=pParse->nMem );
  4213    if( pExpr && pExpr->op==TK_REGISTER ){
  4214      sqlite3VdbeAddOp2(pParse->pVdbe, OP_Copy, pExpr->iTable, target);
  4215    }else{
  4216      inReg = sqlite3ExprCodeTarget(pParse, pExpr, target);
  4217      assert( pParse->pVdbe!=0 || pParse->db->mallocFailed );
  4218      if( inReg!=target && pParse->pVdbe ){
  4219        sqlite3VdbeAddOp2(pParse->pVdbe, OP_SCopy, inReg, target);
  4220      }
  4221    }
  4222  }
  4223  
  4224  /*
  4225  ** Make a transient copy of expression pExpr and then code it using
  4226  ** sqlite3ExprCode().  This routine works just like sqlite3ExprCode()
  4227  ** except that the input expression is guaranteed to be unchanged.
  4228  */
  4229  void sqlite3ExprCodeCopy(Parse *pParse, Expr *pExpr, int target){
  4230    sqlite3 *db = pParse->db;
  4231    pExpr = sqlite3ExprDup(db, pExpr, 0);
  4232    if( !db->mallocFailed ) sqlite3ExprCode(pParse, pExpr, target);
  4233    sqlite3ExprDelete(db, pExpr);
  4234  }
  4235  
  4236  /*
  4237  ** Generate code that will evaluate expression pExpr and store the
  4238  ** results in register target.  The results are guaranteed to appear
  4239  ** in register target.  If the expression is constant, then this routine
  4240  ** might choose to code the expression at initialization time.
  4241  */
  4242  void sqlite3ExprCodeFactorable(Parse *pParse, Expr *pExpr, int target){
  4243    if( pParse->okConstFactor && sqlite3ExprIsConstant(pExpr) ){
  4244      sqlite3ExprCodeAtInit(pParse, pExpr, target);
  4245    }else{
  4246      sqlite3ExprCode(pParse, pExpr, target);
  4247    }
  4248  }
  4249  
  4250  /*
  4251  ** Generate code that evaluates the given expression and puts the result
  4252  ** in register target.
  4253  **
  4254  ** Also make a copy of the expression results into another "cache" register
  4255  ** and modify the expression so that the next time it is evaluated,
  4256  ** the result is a copy of the cache register.
  4257  **
  4258  ** This routine is used for expressions that are used multiple 
  4259  ** times.  They are evaluated once and the results of the expression
  4260  ** are reused.
  4261  */
  4262  void sqlite3ExprCodeAndCache(Parse *pParse, Expr *pExpr, int target){
  4263    Vdbe *v = pParse->pVdbe;
  4264    int iMem;
  4265  
  4266    assert( target>0 );
  4267    assert( pExpr->op!=TK_REGISTER );
  4268    sqlite3ExprCode(pParse, pExpr, target);
  4269    iMem = ++pParse->nMem;
  4270    sqlite3VdbeAddOp2(v, OP_Copy, target, iMem);
  4271    exprToRegister(pExpr, iMem);
  4272  }
  4273  
  4274  /*
  4275  ** Generate code that pushes the value of every element of the given
  4276  ** expression list into a sequence of registers beginning at target.
  4277  **
  4278  ** Return the number of elements evaluated.  The number returned will
  4279  ** usually be pList->nExpr but might be reduced if SQLITE_ECEL_OMITREF
  4280  ** is defined.
  4281  **
  4282  ** The SQLITE_ECEL_DUP flag prevents the arguments from being
  4283  ** filled using OP_SCopy.  OP_Copy must be used instead.
  4284  **
  4285  ** The SQLITE_ECEL_FACTOR argument allows constant arguments to be
  4286  ** factored out into initialization code.
  4287  **
  4288  ** The SQLITE_ECEL_REF flag means that expressions in the list with
  4289  ** ExprList.a[].u.x.iOrderByCol>0 have already been evaluated and stored
  4290  ** in registers at srcReg, and so the value can be copied from there.
  4291  ** If SQLITE_ECEL_OMITREF is also set, then the values with u.x.iOrderByCol>0
  4292  ** are simply omitted rather than being copied from srcReg.
  4293  */
  4294  int sqlite3ExprCodeExprList(
  4295    Parse *pParse,     /* Parsing context */
  4296    ExprList *pList,   /* The expression list to be coded */
  4297    int target,        /* Where to write results */
  4298    int srcReg,        /* Source registers if SQLITE_ECEL_REF */
  4299    u8 flags           /* SQLITE_ECEL_* flags */
  4300  ){
  4301    struct ExprList_item *pItem;
  4302    int i, j, n;
  4303    u8 copyOp = (flags & SQLITE_ECEL_DUP) ? OP_Copy : OP_SCopy;
  4304    Vdbe *v = pParse->pVdbe;
  4305    assert( pList!=0 );
  4306    assert( target>0 );
  4307    assert( pParse->pVdbe!=0 );  /* Never gets this far otherwise */
  4308    n = pList->nExpr;
  4309    if( !ConstFactorOk(pParse) ) flags &= ~SQLITE_ECEL_FACTOR;
  4310    for(pItem=pList->a, i=0; i<n; i++, pItem++){
  4311      Expr *pExpr = pItem->pExpr;
  4312      if( (flags & SQLITE_ECEL_REF)!=0 && (j = pItem->u.x.iOrderByCol)>0 ){
  4313        if( flags & SQLITE_ECEL_OMITREF ){
  4314          i--;
  4315          n--;
  4316        }else{
  4317          sqlite3VdbeAddOp2(v, copyOp, j+srcReg-1, target+i);
  4318        }
  4319      }else if( (flags & SQLITE_ECEL_FACTOR)!=0 && sqlite3ExprIsConstant(pExpr) ){
  4320        sqlite3ExprCodeAtInit(pParse, pExpr, target+i);
  4321      }else{
  4322        int inReg = sqlite3ExprCodeTarget(pParse, pExpr, target+i);
  4323        if( inReg!=target+i ){
  4324          VdbeOp *pOp;
  4325          if( copyOp==OP_Copy
  4326           && (pOp=sqlite3VdbeGetOp(v, -1))->opcode==OP_Copy
  4327           && pOp->p1+pOp->p3+1==inReg
  4328           && pOp->p2+pOp->p3+1==target+i
  4329          ){
  4330            pOp->p3++;
  4331          }else{
  4332            sqlite3VdbeAddOp2(v, copyOp, inReg, target+i);
  4333          }
  4334        }
  4335      }
  4336    }
  4337    return n;
  4338  }
  4339  
  4340  /*
  4341  ** Generate code for a BETWEEN operator.
  4342  **
  4343  **    x BETWEEN y AND z
  4344  **
  4345  ** The above is equivalent to 
  4346  **
  4347  **    x>=y AND x<=z
  4348  **
  4349  ** Code it as such, taking care to do the common subexpression
  4350  ** elimination of x.
  4351  **
  4352  ** The xJumpIf parameter determines details:
  4353  **
  4354  **    NULL:                   Store the boolean result in reg[dest]
  4355  **    sqlite3ExprIfTrue:      Jump to dest if true
  4356  **    sqlite3ExprIfFalse:     Jump to dest if false
  4357  **
  4358  ** The jumpIfNull parameter is ignored if xJumpIf is NULL.
  4359  */
  4360  static void exprCodeBetween(
  4361    Parse *pParse,    /* Parsing and code generating context */
  4362    Expr *pExpr,      /* The BETWEEN expression */
  4363    int dest,         /* Jump destination or storage location */
  4364    void (*xJump)(Parse*,Expr*,int,int), /* Action to take */
  4365    int jumpIfNull    /* Take the jump if the BETWEEN is NULL */
  4366  ){
  4367   Expr exprAnd;     /* The AND operator in  x>=y AND x<=z  */
  4368    Expr compLeft;    /* The  x>=y  term */
  4369    Expr compRight;   /* The  x<=z  term */
  4370    Expr exprX;       /* The  x  subexpression */
  4371    int regFree1 = 0; /* Temporary use register */
  4372  
  4373  
  4374    memset(&compLeft, 0, sizeof(Expr));
  4375    memset(&compRight, 0, sizeof(Expr));
  4376    memset(&exprAnd, 0, sizeof(Expr));
  4377  
  4378    assert( !ExprHasProperty(pExpr, EP_xIsSelect) );
  4379    exprX = *pExpr->pLeft;
  4380    exprAnd.op = TK_AND;
  4381    exprAnd.pLeft = &compLeft;
  4382    exprAnd.pRight = &compRight;
  4383    compLeft.op = TK_GE;
  4384    compLeft.pLeft = &exprX;
  4385    compLeft.pRight = pExpr->x.pList->a[0].pExpr;
  4386    compRight.op = TK_LE;
  4387    compRight.pLeft = &exprX;
  4388    compRight.pRight = pExpr->x.pList->a[1].pExpr;
  4389    exprToRegister(&exprX, exprCodeVector(pParse, &exprX, &regFree1));
  4390    if( xJump ){
  4391      xJump(pParse, &exprAnd, dest, jumpIfNull);
  4392    }else{
  4393      /* Mark the expression is being from the ON or USING clause of a join
  4394      ** so that the sqlite3ExprCodeTarget() routine will not attempt to move
  4395      ** it into the Parse.pConstExpr list.  We should use a new bit for this,
  4396      ** for clarity, but we are out of bits in the Expr.flags field so we
  4397      ** have to reuse the EP_FromJoin bit.  Bummer. */
  4398      exprX.flags |= EP_FromJoin;
  4399      sqlite3ExprCodeTarget(pParse, &exprAnd, dest);
  4400    }
  4401    sqlite3ReleaseTempReg(pParse, regFree1);
  4402  
  4403    /* Ensure adequate test coverage */
  4404    testcase( xJump==sqlite3ExprIfTrue  && jumpIfNull==0 && regFree1==0 );
  4405    testcase( xJump==sqlite3ExprIfTrue  && jumpIfNull==0 && regFree1!=0 );
  4406    testcase( xJump==sqlite3ExprIfTrue  && jumpIfNull!=0 && regFree1==0 );
  4407    testcase( xJump==sqlite3ExprIfTrue  && jumpIfNull!=0 && regFree1!=0 );
  4408    testcase( xJump==sqlite3ExprIfFalse && jumpIfNull==0 && regFree1==0 );
  4409    testcase( xJump==sqlite3ExprIfFalse && jumpIfNull==0 && regFree1!=0 );
  4410    testcase( xJump==sqlite3ExprIfFalse && jumpIfNull!=0 && regFree1==0 );
  4411    testcase( xJump==sqlite3ExprIfFalse && jumpIfNull!=0 && regFree1!=0 );
  4412    testcase( xJump==0 );
  4413  }
  4414  
  4415  /*
  4416  ** Generate code for a boolean expression such that a jump is made
  4417  ** to the label "dest" if the expression is true but execution
  4418  ** continues straight thru if the expression is false.
  4419  **
  4420  ** If the expression evaluates to NULL (neither true nor false), then
  4421  ** take the jump if the jumpIfNull flag is SQLITE_JUMPIFNULL.
  4422  **
  4423  ** This code depends on the fact that certain token values (ex: TK_EQ)
  4424  ** are the same as opcode values (ex: OP_Eq) that implement the corresponding
  4425  ** operation.  Special comments in vdbe.c and the mkopcodeh.awk script in
  4426  ** the make process cause these values to align.  Assert()s in the code
  4427  ** below verify that the numbers are aligned correctly.
  4428  */
  4429  void sqlite3ExprIfTrue(Parse *pParse, Expr *pExpr, int dest, int jumpIfNull){
  4430    Vdbe *v = pParse->pVdbe;
  4431    int op = 0;
  4432    int regFree1 = 0;
  4433    int regFree2 = 0;
  4434    int r1, r2;
  4435  
  4436    assert( jumpIfNull==SQLITE_JUMPIFNULL || jumpIfNull==0 );
  4437    if( NEVER(v==0) )     return;  /* Existence of VDBE checked by caller */
  4438    if( NEVER(pExpr==0) ) return;  /* No way this can happen */
  4439    op = pExpr->op;
  4440    switch( op ){
  4441      case TK_AND: {
  4442        int d2 = sqlite3VdbeMakeLabel(v);
  4443        testcase( jumpIfNull==0 );
  4444        sqlite3ExprIfFalse(pParse, pExpr->pLeft, d2,jumpIfNull^SQLITE_JUMPIFNULL);
  4445        sqlite3ExprCachePush(pParse);
  4446        sqlite3ExprIfTrue(pParse, pExpr->pRight, dest, jumpIfNull);
  4447        sqlite3VdbeResolveLabel(v, d2);
  4448        sqlite3ExprCachePop(pParse);
  4449        break;
  4450      }
  4451      case TK_OR: {
  4452        testcase( jumpIfNull==0 );
  4453        sqlite3ExprIfTrue(pParse, pExpr->pLeft, dest, jumpIfNull);
  4454        sqlite3ExprCachePush(pParse);
  4455        sqlite3ExprIfTrue(pParse, pExpr->pRight, dest, jumpIfNull);
  4456        sqlite3ExprCachePop(pParse);
  4457        break;
  4458      }
  4459      case TK_NOT: {
  4460        testcase( jumpIfNull==0 );
  4461        sqlite3ExprIfFalse(pParse, pExpr->pLeft, dest, jumpIfNull);
  4462        break;
  4463      }
  4464      case TK_IS:
  4465      case TK_ISNOT:
  4466        testcase( op==TK_IS );
  4467        testcase( op==TK_ISNOT );
  4468        op = (op==TK_IS) ? TK_EQ : TK_NE;
  4469        jumpIfNull = SQLITE_NULLEQ;
  4470        /* Fall thru */
  4471      case TK_LT:
  4472      case TK_LE:
  4473      case TK_GT:
  4474      case TK_GE:
  4475      case TK_NE:
  4476      case TK_EQ: {
  4477        if( sqlite3ExprIsVector(pExpr->pLeft) ) goto default_expr;
  4478        testcase( jumpIfNull==0 );
  4479        r1 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, &regFree1);
  4480        r2 = sqlite3ExprCodeTemp(pParse, pExpr->pRight, &regFree2);
  4481        codeCompare(pParse, pExpr->pLeft, pExpr->pRight, op,
  4482                    r1, r2, dest, jumpIfNull);
  4483        assert(TK_LT==OP_Lt); testcase(op==OP_Lt); VdbeCoverageIf(v,op==OP_Lt);
  4484        assert(TK_LE==OP_Le); testcase(op==OP_Le); VdbeCoverageIf(v,op==OP_Le);
  4485        assert(TK_GT==OP_Gt); testcase(op==OP_Gt); VdbeCoverageIf(v,op==OP_Gt);
  4486        assert(TK_GE==OP_Ge); testcase(op==OP_Ge); VdbeCoverageIf(v,op==OP_Ge);
  4487        assert(TK_EQ==OP_Eq); testcase(op==OP_Eq);
  4488        VdbeCoverageIf(v, op==OP_Eq && jumpIfNull==SQLITE_NULLEQ);
  4489        VdbeCoverageIf(v, op==OP_Eq && jumpIfNull!=SQLITE_NULLEQ);
  4490        assert(TK_NE==OP_Ne); testcase(op==OP_Ne);
  4491        VdbeCoverageIf(v, op==OP_Ne && jumpIfNull==SQLITE_NULLEQ);
  4492        VdbeCoverageIf(v, op==OP_Ne && jumpIfNull!=SQLITE_NULLEQ);
  4493        testcase( regFree1==0 );
  4494        testcase( regFree2==0 );
  4495        break;
  4496      }
  4497      case TK_ISNULL:
  4498      case TK_NOTNULL: {
  4499        assert( TK_ISNULL==OP_IsNull );   testcase( op==TK_ISNULL );
  4500        assert( TK_NOTNULL==OP_NotNull ); testcase( op==TK_NOTNULL );
  4501        r1 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, &regFree1);
  4502        sqlite3VdbeAddOp2(v, op, r1, dest);
  4503        VdbeCoverageIf(v, op==TK_ISNULL);
  4504        VdbeCoverageIf(v, op==TK_NOTNULL);
  4505        testcase( regFree1==0 );
  4506        break;
  4507      }
  4508      case TK_BETWEEN: {
  4509        testcase( jumpIfNull==0 );
  4510        exprCodeBetween(pParse, pExpr, dest, sqlite3ExprIfTrue, jumpIfNull);
  4511        break;
  4512      }
  4513  #ifndef SQLITE_OMIT_SUBQUERY
  4514      case TK_IN: {
  4515        int destIfFalse = sqlite3VdbeMakeLabel(v);
  4516        int destIfNull = jumpIfNull ? dest : destIfFalse;
  4517        sqlite3ExprCodeIN(pParse, pExpr, destIfFalse, destIfNull);
  4518        sqlite3VdbeGoto(v, dest);
  4519        sqlite3VdbeResolveLabel(v, destIfFalse);
  4520        break;
  4521      }
  4522  #endif
  4523      default: {
  4524      default_expr:
  4525        if( exprAlwaysTrue(pExpr) ){
  4526          sqlite3VdbeGoto(v, dest);
  4527        }else if( exprAlwaysFalse(pExpr) ){
  4528          /* No-op */
  4529        }else{
  4530          r1 = sqlite3ExprCodeTemp(pParse, pExpr, &regFree1);
  4531          sqlite3VdbeAddOp3(v, OP_If, r1, dest, jumpIfNull!=0);
  4532          VdbeCoverage(v);
  4533          testcase( regFree1==0 );
  4534          testcase( jumpIfNull==0 );
  4535        }
  4536        break;
  4537      }
  4538    }
  4539    sqlite3ReleaseTempReg(pParse, regFree1);
  4540    sqlite3ReleaseTempReg(pParse, regFree2);  
  4541  }
  4542  
  4543  /*
  4544  ** Generate code for a boolean expression such that a jump is made
  4545  ** to the label "dest" if the expression is false but execution
  4546  ** continues straight thru if the expression is true.
  4547  **
  4548  ** If the expression evaluates to NULL (neither true nor false) then
  4549  ** jump if jumpIfNull is SQLITE_JUMPIFNULL or fall through if jumpIfNull
  4550  ** is 0.
  4551  */
  4552  void sqlite3ExprIfFalse(Parse *pParse, Expr *pExpr, int dest, int jumpIfNull){
  4553    Vdbe *v = pParse->pVdbe;
  4554    int op = 0;
  4555    int regFree1 = 0;
  4556    int regFree2 = 0;
  4557    int r1, r2;
  4558  
  4559    assert( jumpIfNull==SQLITE_JUMPIFNULL || jumpIfNull==0 );
  4560    if( NEVER(v==0) ) return; /* Existence of VDBE checked by caller */
  4561    if( pExpr==0 )    return;
  4562  
  4563    /* The value of pExpr->op and op are related as follows:
  4564    **
  4565    **       pExpr->op            op
  4566    **       ---------          ----------
  4567    **       TK_ISNULL          OP_NotNull
  4568    **       TK_NOTNULL         OP_IsNull
  4569    **       TK_NE              OP_Eq
  4570    **       TK_EQ              OP_Ne
  4571    **       TK_GT              OP_Le
  4572    **       TK_LE              OP_Gt
  4573    **       TK_GE              OP_Lt
  4574    **       TK_LT              OP_Ge
  4575    **
  4576    ** For other values of pExpr->op, op is undefined and unused.
  4577    ** The value of TK_ and OP_ constants are arranged such that we
  4578    ** can compute the mapping above using the following expression.
  4579    ** Assert()s verify that the computation is correct.
  4580    */
  4581    op = ((pExpr->op+(TK_ISNULL&1))^1)-(TK_ISNULL&1);
  4582  
  4583    /* Verify correct alignment of TK_ and OP_ constants
  4584    */
  4585    assert( pExpr->op!=TK_ISNULL || op==OP_NotNull );
  4586    assert( pExpr->op!=TK_NOTNULL || op==OP_IsNull );
  4587    assert( pExpr->op!=TK_NE || op==OP_Eq );
  4588    assert( pExpr->op!=TK_EQ || op==OP_Ne );
  4589    assert( pExpr->op!=TK_LT || op==OP_Ge );
  4590    assert( pExpr->op!=TK_LE || op==OP_Gt );
  4591    assert( pExpr->op!=TK_GT || op==OP_Le );
  4592    assert( pExpr->op!=TK_GE || op==OP_Lt );
  4593  
  4594    switch( pExpr->op ){
  4595      case TK_AND: {
  4596        testcase( jumpIfNull==0 );
  4597        sqlite3ExprIfFalse(pParse, pExpr->pLeft, dest, jumpIfNull);
  4598        sqlite3ExprCachePush(pParse);
  4599        sqlite3ExprIfFalse(pParse, pExpr->pRight, dest, jumpIfNull);
  4600        sqlite3ExprCachePop(pParse);
  4601        break;
  4602      }
  4603      case TK_OR: {
  4604        int d2 = sqlite3VdbeMakeLabel(v);
  4605        testcase( jumpIfNull==0 );
  4606        sqlite3ExprIfTrue(pParse, pExpr->pLeft, d2, jumpIfNull^SQLITE_JUMPIFNULL);
  4607        sqlite3ExprCachePush(pParse);
  4608        sqlite3ExprIfFalse(pParse, pExpr->pRight, dest, jumpIfNull);
  4609        sqlite3VdbeResolveLabel(v, d2);
  4610        sqlite3ExprCachePop(pParse);
  4611        break;
  4612      }
  4613      case TK_NOT: {
  4614        testcase( jumpIfNull==0 );
  4615        sqlite3ExprIfTrue(pParse, pExpr->pLeft, dest, jumpIfNull);
  4616        break;
  4617      }
  4618      case TK_IS:
  4619      case TK_ISNOT:
  4620        testcase( pExpr->op==TK_IS );
  4621        testcase( pExpr->op==TK_ISNOT );
  4622        op = (pExpr->op==TK_IS) ? TK_NE : TK_EQ;
  4623        jumpIfNull = SQLITE_NULLEQ;
  4624        /* Fall thru */
  4625      case TK_LT:
  4626      case TK_LE:
  4627      case TK_GT:
  4628      case TK_GE:
  4629      case TK_NE:
  4630      case TK_EQ: {
  4631        if( sqlite3ExprIsVector(pExpr->pLeft) ) goto default_expr;
  4632        testcase( jumpIfNull==0 );
  4633        r1 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, &regFree1);
  4634        r2 = sqlite3ExprCodeTemp(pParse, pExpr->pRight, &regFree2);
  4635        codeCompare(pParse, pExpr->pLeft, pExpr->pRight, op,
  4636                    r1, r2, dest, jumpIfNull);
  4637        assert(TK_LT==OP_Lt); testcase(op==OP_Lt); VdbeCoverageIf(v,op==OP_Lt);
  4638        assert(TK_LE==OP_Le); testcase(op==OP_Le); VdbeCoverageIf(v,op==OP_Le);
  4639        assert(TK_GT==OP_Gt); testcase(op==OP_Gt); VdbeCoverageIf(v,op==OP_Gt);
  4640        assert(TK_GE==OP_Ge); testcase(op==OP_Ge); VdbeCoverageIf(v,op==OP_Ge);
  4641        assert(TK_EQ==OP_Eq); testcase(op==OP_Eq);
  4642        VdbeCoverageIf(v, op==OP_Eq && jumpIfNull!=SQLITE_NULLEQ);
  4643        VdbeCoverageIf(v, op==OP_Eq && jumpIfNull==SQLITE_NULLEQ);
  4644        assert(TK_NE==OP_Ne); testcase(op==OP_Ne);
  4645        VdbeCoverageIf(v, op==OP_Ne && jumpIfNull!=SQLITE_NULLEQ);
  4646        VdbeCoverageIf(v, op==OP_Ne && jumpIfNull==SQLITE_NULLEQ);
  4647        testcase( regFree1==0 );
  4648        testcase( regFree2==0 );
  4649        break;
  4650      }
  4651      case TK_ISNULL:
  4652      case TK_NOTNULL: {
  4653        r1 = sqlite3ExprCodeTemp(pParse, pExpr->pLeft, &regFree1);
  4654        sqlite3VdbeAddOp2(v, op, r1, dest);
  4655        testcase( op==TK_ISNULL );   VdbeCoverageIf(v, op==TK_ISNULL);
  4656        testcase( op==TK_NOTNULL );  VdbeCoverageIf(v, op==TK_NOTNULL);
  4657        testcase( regFree1==0 );
  4658        break;
  4659      }
  4660      case TK_BETWEEN: {
  4661        testcase( jumpIfNull==0 );
  4662        exprCodeBetween(pParse, pExpr, dest, sqlite3ExprIfFalse, jumpIfNull);
  4663        break;
  4664      }
  4665  #ifndef SQLITE_OMIT_SUBQUERY
  4666      case TK_IN: {
  4667        if( jumpIfNull ){
  4668          sqlite3ExprCodeIN(pParse, pExpr, dest, dest);
  4669        }else{
  4670          int destIfNull = sqlite3VdbeMakeLabel(v);
  4671          sqlite3ExprCodeIN(pParse, pExpr, dest, destIfNull);
  4672          sqlite3VdbeResolveLabel(v, destIfNull);
  4673        }
  4674        break;
  4675      }
  4676  #endif
  4677      default: {
  4678      default_expr: 
  4679        if( exprAlwaysFalse(pExpr) ){
  4680          sqlite3VdbeGoto(v, dest);
  4681        }else if( exprAlwaysTrue(pExpr) ){
  4682          /* no-op */
  4683        }else{
  4684          r1 = sqlite3ExprCodeTemp(pParse, pExpr, &regFree1);
  4685          sqlite3VdbeAddOp3(v, OP_IfNot, r1, dest, jumpIfNull!=0);
  4686          VdbeCoverage(v);
  4687          testcase( regFree1==0 );
  4688          testcase( jumpIfNull==0 );
  4689        }
  4690        break;
  4691      }
  4692    }
  4693    sqlite3ReleaseTempReg(pParse, regFree1);
  4694    sqlite3ReleaseTempReg(pParse, regFree2);
  4695  }
  4696  
  4697  /*
  4698  ** Like sqlite3ExprIfFalse() except that a copy is made of pExpr before
  4699  ** code generation, and that copy is deleted after code generation. This
  4700  ** ensures that the original pExpr is unchanged.
  4701  */
  4702  void sqlite3ExprIfFalseDup(Parse *pParse, Expr *pExpr, int dest,int jumpIfNull){
  4703    sqlite3 *db = pParse->db;
  4704    Expr *pCopy = sqlite3ExprDup(db, pExpr, 0);
  4705    if( db->mallocFailed==0 ){
  4706      sqlite3ExprIfFalse(pParse, pCopy, dest, jumpIfNull);
  4707    }
  4708    sqlite3ExprDelete(db, pCopy);
  4709  }
  4710  
  4711  /*
  4712  ** Expression pVar is guaranteed to be an SQL variable. pExpr may be any
  4713  ** type of expression.
  4714  **
  4715  ** If pExpr is a simple SQL value - an integer, real, string, blob
  4716  ** or NULL value - then the VDBE currently being prepared is configured
  4717  ** to re-prepare each time a new value is bound to variable pVar.
  4718  **
  4719  ** Additionally, if pExpr is a simple SQL value and the value is the
  4720  ** same as that currently bound to variable pVar, non-zero is returned.
  4721  ** Otherwise, if the values are not the same or if pExpr is not a simple
  4722  ** SQL value, zero is returned.
  4723  */
  4724  static int exprCompareVariable(Parse *pParse, Expr *pVar, Expr *pExpr){
  4725    int res = 0;
  4726    int iVar;
  4727    sqlite3_value *pL, *pR = 0;
  4728    
  4729    sqlite3ValueFromExpr(pParse->db, pExpr, SQLITE_UTF8, SQLITE_AFF_BLOB, &pR);
  4730    if( pR ){
  4731      iVar = pVar->iColumn;
  4732      sqlite3VdbeSetVarmask(pParse->pVdbe, iVar);
  4733      pL = sqlite3VdbeGetBoundValue(pParse->pReprepare, iVar, SQLITE_AFF_BLOB);
  4734      if( pL ){
  4735        if( sqlite3_value_type(pL)==SQLITE_TEXT ){
  4736          sqlite3_value_text(pL); /* Make sure the encoding is UTF-8 */
  4737        }
  4738        res =  0==sqlite3MemCompare(pL, pR, 0);
  4739      }
  4740      sqlite3ValueFree(pR);
  4741      sqlite3ValueFree(pL);
  4742    }
  4743  
  4744    return res;
  4745  }
  4746  
  4747  /*
  4748  ** Do a deep comparison of two expression trees.  Return 0 if the two
  4749  ** expressions are completely identical.  Return 1 if they differ only
  4750  ** by a COLLATE operator at the top level.  Return 2 if there are differences
  4751  ** other than the top-level COLLATE operator.
  4752  **
  4753  ** If any subelement of pB has Expr.iTable==(-1) then it is allowed
  4754  ** to compare equal to an equivalent element in pA with Expr.iTable==iTab.
  4755  **
  4756  ** The pA side might be using TK_REGISTER.  If that is the case and pB is
  4757  ** not using TK_REGISTER but is otherwise equivalent, then still return 0.
  4758  **
  4759  ** Sometimes this routine will return 2 even if the two expressions
  4760  ** really are equivalent.  If we cannot prove that the expressions are
  4761  ** identical, we return 2 just to be safe.  So if this routine
  4762  ** returns 2, then you do not really know for certain if the two
  4763  ** expressions are the same.  But if you get a 0 or 1 return, then you
  4764  ** can be sure the expressions are the same.  In the places where
  4765  ** this routine is used, it does not hurt to get an extra 2 - that
  4766  ** just might result in some slightly slower code.  But returning
  4767  ** an incorrect 0 or 1 could lead to a malfunction.
  4768  **
  4769  ** If pParse is not NULL then TK_VARIABLE terms in pA with bindings in
  4770  ** pParse->pReprepare can be matched against literals in pB.  The 
  4771  ** pParse->pVdbe->expmask bitmask is updated for each variable referenced.
  4772  ** If pParse is NULL (the normal case) then any TK_VARIABLE term in 
  4773  ** Argument pParse should normally be NULL. If it is not NULL and pA or
  4774  ** pB causes a return value of 2.
  4775  */
  4776  int sqlite3ExprCompare(Parse *pParse, Expr *pA, Expr *pB, int iTab){
  4777    u32 combinedFlags;
  4778    if( pA==0 || pB==0 ){
  4779      return pB==pA ? 0 : 2;
  4780    }
  4781    if( pParse && pA->op==TK_VARIABLE && exprCompareVariable(pParse, pA, pB) ){
  4782      return 0;
  4783    }
  4784    combinedFlags = pA->flags | pB->flags;
  4785    if( combinedFlags & EP_IntValue ){
  4786      if( (pA->flags&pB->flags&EP_IntValue)!=0 && pA->u.iValue==pB->u.iValue ){
  4787        return 0;
  4788      }
  4789      return 2;
  4790    }
  4791    if( pA->op!=pB->op ){
  4792      if( pA->op==TK_COLLATE && sqlite3ExprCompare(pParse, pA->pLeft,pB,iTab)<2 ){
  4793        return 1;
  4794      }
  4795      if( pB->op==TK_COLLATE && sqlite3ExprCompare(pParse, pA,pB->pLeft,iTab)<2 ){
  4796        return 1;
  4797      }
  4798      return 2;
  4799    }
  4800    if( pA->op!=TK_COLUMN && pA->op!=TK_AGG_COLUMN && pA->u.zToken ){
  4801      if( pA->op==TK_FUNCTION ){
  4802        if( sqlite3StrICmp(pA->u.zToken,pB->u.zToken)!=0 ) return 2;
  4803      }else if( strcmp(pA->u.zToken,pB->u.zToken)!=0 ){
  4804        return pA->op==TK_COLLATE ? 1 : 2;
  4805      }
  4806    }
  4807    if( (pA->flags & EP_Distinct)!=(pB->flags & EP_Distinct) ) return 2;
  4808    if( ALWAYS((combinedFlags & EP_TokenOnly)==0) ){
  4809      if( combinedFlags & EP_xIsSelect ) return 2;
  4810      if( sqlite3ExprCompare(pParse, pA->pLeft, pB->pLeft, iTab) ) return 2;
  4811      if( sqlite3ExprCompare(pParse, pA->pRight, pB->pRight, iTab) ) return 2;
  4812      if( sqlite3ExprListCompare(pA->x.pList, pB->x.pList, iTab) ) return 2;
  4813      if( ALWAYS((combinedFlags & EP_Reduced)==0) && pA->op!=TK_STRING ){
  4814        if( pA->iColumn!=pB->iColumn ) return 2;
  4815        if( pA->iTable!=pB->iTable 
  4816         && (pA->iTable!=iTab || NEVER(pB->iTable>=0)) ) return 2;
  4817      }
  4818    }
  4819    return 0;
  4820  }
  4821  
  4822  /*
  4823  ** Compare two ExprList objects.  Return 0 if they are identical and 
  4824  ** non-zero if they differ in any way.
  4825  **
  4826  ** If any subelement of pB has Expr.iTable==(-1) then it is allowed
  4827  ** to compare equal to an equivalent element in pA with Expr.iTable==iTab.
  4828  **
  4829  ** This routine might return non-zero for equivalent ExprLists.  The
  4830  ** only consequence will be disabled optimizations.  But this routine
  4831  ** must never return 0 if the two ExprList objects are different, or
  4832  ** a malfunction will result.
  4833  **
  4834  ** Two NULL pointers are considered to be the same.  But a NULL pointer
  4835  ** always differs from a non-NULL pointer.
  4836  */
  4837  int sqlite3ExprListCompare(ExprList *pA, ExprList *pB, int iTab){
  4838    int i;
  4839    if( pA==0 && pB==0 ) return 0;
  4840    if( pA==0 || pB==0 ) return 1;
  4841    if( pA->nExpr!=pB->nExpr ) return 1;
  4842    for(i=0; i<pA->nExpr; i++){
  4843      Expr *pExprA = pA->a[i].pExpr;
  4844      Expr *pExprB = pB->a[i].pExpr;
  4845      if( pA->a[i].sortOrder!=pB->a[i].sortOrder ) return 1;
  4846      if( sqlite3ExprCompare(0, pExprA, pExprB, iTab) ) return 1;
  4847    }
  4848    return 0;
  4849  }
  4850  
  4851  /*
  4852  ** Like sqlite3ExprCompare() except COLLATE operators at the top-level
  4853  ** are ignored.
  4854  */
  4855  int sqlite3ExprCompareSkip(Expr *pA, Expr *pB, int iTab){
  4856    return sqlite3ExprCompare(0,
  4857               sqlite3ExprSkipCollate(pA),
  4858               sqlite3ExprSkipCollate(pB),
  4859               iTab);
  4860  }
  4861  
  4862  /*
  4863  ** Return true if we can prove the pE2 will always be true if pE1 is
  4864  ** true.  Return false if we cannot complete the proof or if pE2 might
  4865  ** be false.  Examples:
  4866  **
  4867  **     pE1: x==5       pE2: x==5             Result: true
  4868  **     pE1: x>0        pE2: x==5             Result: false
  4869  **     pE1: x=21       pE2: x=21 OR y=43     Result: true
  4870  **     pE1: x!=123     pE2: x IS NOT NULL    Result: true
  4871  **     pE1: x!=?1      pE2: x IS NOT NULL    Result: true
  4872  **     pE1: x IS NULL  pE2: x IS NOT NULL    Result: false
  4873  **     pE1: x IS ?2    pE2: x IS NOT NULL    Reuslt: false
  4874  **
  4875  ** When comparing TK_COLUMN nodes between pE1 and pE2, if pE2 has
  4876  ** Expr.iTable<0 then assume a table number given by iTab.
  4877  **
  4878  ** If pParse is not NULL, then the values of bound variables in pE1 are 
  4879  ** compared against literal values in pE2 and pParse->pVdbe->expmask is
  4880  ** modified to record which bound variables are referenced.  If pParse 
  4881  ** is NULL, then false will be returned if pE1 contains any bound variables.
  4882  **
  4883  ** When in doubt, return false.  Returning true might give a performance
  4884  ** improvement.  Returning false might cause a performance reduction, but
  4885  ** it will always give the correct answer and is hence always safe.
  4886  */
  4887  int sqlite3ExprImpliesExpr(Parse *pParse, Expr *pE1, Expr *pE2, int iTab){
  4888    if( sqlite3ExprCompare(pParse, pE1, pE2, iTab)==0 ){
  4889      return 1;
  4890    }
  4891    if( pE2->op==TK_OR
  4892     && (sqlite3ExprImpliesExpr(pParse, pE1, pE2->pLeft, iTab)
  4893               || sqlite3ExprImpliesExpr(pParse, pE1, pE2->pRight, iTab) )
  4894    ){
  4895      return 1;
  4896    }
  4897    if( pE2->op==TK_NOTNULL && pE1->op!=TK_ISNULL && pE1->op!=TK_IS ){
  4898      Expr *pX = sqlite3ExprSkipCollate(pE1->pLeft);
  4899      testcase( pX!=pE1->pLeft );
  4900      if( sqlite3ExprCompare(pParse, pX, pE2->pLeft, iTab)==0 ) return 1;
  4901    }
  4902    return 0;
  4903  }
  4904  
  4905  /*
  4906  ** An instance of the following structure is used by the tree walker
  4907  ** to determine if an expression can be evaluated by reference to the
  4908  ** index only, without having to do a search for the corresponding
  4909  ** table entry.  The IdxCover.pIdx field is the index.  IdxCover.iCur
  4910  ** is the cursor for the table.
  4911  */
  4912  struct IdxCover {
  4913    Index *pIdx;     /* The index to be tested for coverage */
  4914    int iCur;        /* Cursor number for the table corresponding to the index */
  4915  };
  4916  
  4917  /*
  4918  ** Check to see if there are references to columns in table 
  4919  ** pWalker->u.pIdxCover->iCur can be satisfied using the index
  4920  ** pWalker->u.pIdxCover->pIdx.
  4921  */
  4922  static int exprIdxCover(Walker *pWalker, Expr *pExpr){
  4923    if( pExpr->op==TK_COLUMN
  4924     && pExpr->iTable==pWalker->u.pIdxCover->iCur
  4925     && sqlite3ColumnOfIndex(pWalker->u.pIdxCover->pIdx, pExpr->iColumn)<0
  4926    ){
  4927      pWalker->eCode = 1;
  4928      return WRC_Abort;
  4929    }
  4930    return WRC_Continue;
  4931  }
  4932  
  4933  /*
  4934  ** Determine if an index pIdx on table with cursor iCur contains will
  4935  ** the expression pExpr.  Return true if the index does cover the
  4936  ** expression and false if the pExpr expression references table columns
  4937  ** that are not found in the index pIdx.
  4938  **
  4939  ** An index covering an expression means that the expression can be
  4940  ** evaluated using only the index and without having to lookup the
  4941  ** corresponding table entry.
  4942  */
  4943  int sqlite3ExprCoveredByIndex(
  4944    Expr *pExpr,        /* The index to be tested */
  4945    int iCur,           /* The cursor number for the corresponding table */
  4946    Index *pIdx         /* The index that might be used for coverage */
  4947  ){
  4948    Walker w;
  4949    struct IdxCover xcov;
  4950    memset(&w, 0, sizeof(w));
  4951    xcov.iCur = iCur;
  4952    xcov.pIdx = pIdx;
  4953    w.xExprCallback = exprIdxCover;
  4954    w.u.pIdxCover = &xcov;
  4955    sqlite3WalkExpr(&w, pExpr);
  4956    return !w.eCode;
  4957  }
  4958  
  4959  
  4960  /*
  4961  ** An instance of the following structure is used by the tree walker
  4962  ** to count references to table columns in the arguments of an 
  4963  ** aggregate function, in order to implement the
  4964  ** sqlite3FunctionThisSrc() routine.
  4965  */
  4966  struct SrcCount {
  4967    SrcList *pSrc;   /* One particular FROM clause in a nested query */
  4968    int nThis;       /* Number of references to columns in pSrcList */
  4969    int nOther;      /* Number of references to columns in other FROM clauses */
  4970  };
  4971  
  4972  /*
  4973  ** Count the number of references to columns.
  4974  */
  4975  static int exprSrcCount(Walker *pWalker, Expr *pExpr){
  4976    /* The NEVER() on the second term is because sqlite3FunctionUsesThisSrc()
  4977    ** is always called before sqlite3ExprAnalyzeAggregates() and so the
  4978    ** TK_COLUMNs have not yet been converted into TK_AGG_COLUMN.  If
  4979    ** sqlite3FunctionUsesThisSrc() is used differently in the future, the
  4980    ** NEVER() will need to be removed. */
  4981    if( pExpr->op==TK_COLUMN || NEVER(pExpr->op==TK_AGG_COLUMN) ){
  4982      int i;
  4983      struct SrcCount *p = pWalker->u.pSrcCount;
  4984      SrcList *pSrc = p->pSrc;
  4985      int nSrc = pSrc ? pSrc->nSrc : 0;
  4986      for(i=0; i<nSrc; i++){
  4987        if( pExpr->iTable==pSrc->a[i].iCursor ) break;
  4988      }
  4989      if( i<nSrc ){
  4990        p->nThis++;
  4991      }else{
  4992        p->nOther++;
  4993      }
  4994    }
  4995    return WRC_Continue;
  4996  }
  4997  
  4998  /*
  4999  ** Determine if any of the arguments to the pExpr Function reference
  5000  ** pSrcList.  Return true if they do.  Also return true if the function
  5001  ** has no arguments or has only constant arguments.  Return false if pExpr
  5002  ** references columns but not columns of tables found in pSrcList.
  5003  */
  5004  int sqlite3FunctionUsesThisSrc(Expr *pExpr, SrcList *pSrcList){
  5005    Walker w;
  5006    struct SrcCount cnt;
  5007    assert( pExpr->op==TK_AGG_FUNCTION );
  5008    w.xExprCallback = exprSrcCount;
  5009    w.xSelectCallback = 0;
  5010    w.u.pSrcCount = &cnt;
  5011    cnt.pSrc = pSrcList;
  5012    cnt.nThis = 0;
  5013    cnt.nOther = 0;
  5014    sqlite3WalkExprList(&w, pExpr->x.pList);
  5015    return cnt.nThis>0 || cnt.nOther==0;
  5016  }
  5017  
  5018  /*
  5019  ** Add a new element to the pAggInfo->aCol[] array.  Return the index of
  5020  ** the new element.  Return a negative number if malloc fails.
  5021  */
  5022  static int addAggInfoColumn(sqlite3 *db, AggInfo *pInfo){
  5023    int i;
  5024    pInfo->aCol = sqlite3ArrayAllocate(
  5025         db,
  5026         pInfo->aCol,
  5027         sizeof(pInfo->aCol[0]),
  5028         &pInfo->nColumn,
  5029         &i
  5030    );
  5031    return i;
  5032  }    
  5033  
  5034  /*
  5035  ** Add a new element to the pAggInfo->aFunc[] array.  Return the index of
  5036  ** the new element.  Return a negative number if malloc fails.
  5037  */
  5038  static int addAggInfoFunc(sqlite3 *db, AggInfo *pInfo){
  5039    int i;
  5040    pInfo->aFunc = sqlite3ArrayAllocate(
  5041         db, 
  5042         pInfo->aFunc,
  5043         sizeof(pInfo->aFunc[0]),
  5044         &pInfo->nFunc,
  5045         &i
  5046    );
  5047    return i;
  5048  }    
  5049  
  5050  /*
  5051  ** This is the xExprCallback for a tree walker.  It is used to
  5052  ** implement sqlite3ExprAnalyzeAggregates().  See sqlite3ExprAnalyzeAggregates
  5053  ** for additional information.
  5054  */
  5055  static int analyzeAggregate(Walker *pWalker, Expr *pExpr){
  5056    int i;
  5057    NameContext *pNC = pWalker->u.pNC;
  5058    Parse *pParse = pNC->pParse;
  5059    SrcList *pSrcList = pNC->pSrcList;
  5060    AggInfo *pAggInfo = pNC->pAggInfo;
  5061  
  5062    switch( pExpr->op ){
  5063      case TK_AGG_COLUMN:
  5064      case TK_COLUMN: {
  5065        testcase( pExpr->op==TK_AGG_COLUMN );
  5066        testcase( pExpr->op==TK_COLUMN );
  5067        /* Check to see if the column is in one of the tables in the FROM
  5068        ** clause of the aggregate query */
  5069        if( ALWAYS(pSrcList!=0) ){
  5070          struct SrcList_item *pItem = pSrcList->a;
  5071          for(i=0; i<pSrcList->nSrc; i++, pItem++){
  5072            struct AggInfo_col *pCol;
  5073            assert( !ExprHasProperty(pExpr, EP_TokenOnly|EP_Reduced) );
  5074            if( pExpr->iTable==pItem->iCursor ){
  5075              /* If we reach this point, it means that pExpr refers to a table
  5076              ** that is in the FROM clause of the aggregate query.  
  5077              **
  5078              ** Make an entry for the column in pAggInfo->aCol[] if there
  5079              ** is not an entry there already.
  5080              */
  5081              int k;
  5082              pCol = pAggInfo->aCol;
  5083              for(k=0; k<pAggInfo->nColumn; k++, pCol++){
  5084                if( pCol->iTable==pExpr->iTable &&
  5085                    pCol->iColumn==pExpr->iColumn ){
  5086                  break;
  5087                }
  5088              }
  5089              if( (k>=pAggInfo->nColumn)
  5090               && (k = addAggInfoColumn(pParse->db, pAggInfo))>=0 
  5091              ){
  5092                pCol = &pAggInfo->aCol[k];
  5093                pCol->pTab = pExpr->pTab;
  5094                pCol->iTable = pExpr->iTable;
  5095                pCol->iColumn = pExpr->iColumn;
  5096                pCol->iMem = ++pParse->nMem;
  5097                pCol->iSorterColumn = -1;
  5098                pCol->pExpr = pExpr;
  5099                if( pAggInfo->pGroupBy ){
  5100                  int j, n;
  5101                  ExprList *pGB = pAggInfo->pGroupBy;
  5102                  struct ExprList_item *pTerm = pGB->a;
  5103                  n = pGB->nExpr;
  5104                  for(j=0; j<n; j++, pTerm++){
  5105                    Expr *pE = pTerm->pExpr;
  5106                    if( pE->op==TK_COLUMN && pE->iTable==pExpr->iTable &&
  5107                        pE->iColumn==pExpr->iColumn ){
  5108                      pCol->iSorterColumn = j;
  5109                      break;
  5110                    }
  5111                  }
  5112                }
  5113                if( pCol->iSorterColumn<0 ){
  5114                  pCol->iSorterColumn = pAggInfo->nSortingColumn++;
  5115                }
  5116              }
  5117              /* There is now an entry for pExpr in pAggInfo->aCol[] (either
  5118              ** because it was there before or because we just created it).
  5119              ** Convert the pExpr to be a TK_AGG_COLUMN referring to that
  5120              ** pAggInfo->aCol[] entry.
  5121              */
  5122              ExprSetVVAProperty(pExpr, EP_NoReduce);
  5123              pExpr->pAggInfo = pAggInfo;
  5124              pExpr->op = TK_AGG_COLUMN;
  5125              pExpr->iAgg = (i16)k;
  5126              break;
  5127            } /* endif pExpr->iTable==pItem->iCursor */
  5128          } /* end loop over pSrcList */
  5129        }
  5130        return WRC_Prune;
  5131      }
  5132      case TK_AGG_FUNCTION: {
  5133        if( (pNC->ncFlags & NC_InAggFunc)==0
  5134         && pWalker->walkerDepth==pExpr->op2
  5135        ){
  5136          /* Check to see if pExpr is a duplicate of another aggregate 
  5137          ** function that is already in the pAggInfo structure
  5138          */
  5139          struct AggInfo_func *pItem = pAggInfo->aFunc;
  5140          for(i=0; i<pAggInfo->nFunc; i++, pItem++){
  5141            if( sqlite3ExprCompare(0, pItem->pExpr, pExpr, -1)==0 ){
  5142              break;
  5143            }
  5144          }
  5145          if( i>=pAggInfo->nFunc ){
  5146            /* pExpr is original.  Make a new entry in pAggInfo->aFunc[]
  5147            */
  5148            u8 enc = ENC(pParse->db);
  5149            i = addAggInfoFunc(pParse->db, pAggInfo);
  5150            if( i>=0 ){
  5151              assert( !ExprHasProperty(pExpr, EP_xIsSelect) );
  5152              pItem = &pAggInfo->aFunc[i];
  5153              pItem->pExpr = pExpr;
  5154              pItem->iMem = ++pParse->nMem;
  5155              assert( !ExprHasProperty(pExpr, EP_IntValue) );
  5156              pItem->pFunc = sqlite3FindFunction(pParse->db,
  5157                     pExpr->u.zToken, 
  5158                     pExpr->x.pList ? pExpr->x.pList->nExpr : 0, enc, 0);
  5159              if( pExpr->flags & EP_Distinct ){
  5160                pItem->iDistinct = pParse->nTab++;
  5161              }else{
  5162                pItem->iDistinct = -1;
  5163              }
  5164            }
  5165          }
  5166          /* Make pExpr point to the appropriate pAggInfo->aFunc[] entry
  5167          */
  5168          assert( !ExprHasProperty(pExpr, EP_TokenOnly|EP_Reduced) );
  5169          ExprSetVVAProperty(pExpr, EP_NoReduce);
  5170          pExpr->iAgg = (i16)i;
  5171          pExpr->pAggInfo = pAggInfo;
  5172          return WRC_Prune;
  5173        }else{
  5174          return WRC_Continue;
  5175        }
  5176      }
  5177    }
  5178    return WRC_Continue;
  5179  }
  5180  static int analyzeAggregatesInSelect(Walker *pWalker, Select *pSelect){
  5181    UNUSED_PARAMETER(pSelect);
  5182    pWalker->walkerDepth++;
  5183    return WRC_Continue;
  5184  }
  5185  static void analyzeAggregatesInSelectEnd(Walker *pWalker, Select *pSelect){
  5186    UNUSED_PARAMETER(pSelect);
  5187    pWalker->walkerDepth--;
  5188  }
  5189  
  5190  /*
  5191  ** Analyze the pExpr expression looking for aggregate functions and
  5192  ** for variables that need to be added to AggInfo object that pNC->pAggInfo
  5193  ** points to.  Additional entries are made on the AggInfo object as
  5194  ** necessary.
  5195  **
  5196  ** This routine should only be called after the expression has been
  5197  ** analyzed by sqlite3ResolveExprNames().
  5198  */
  5199  void sqlite3ExprAnalyzeAggregates(NameContext *pNC, Expr *pExpr){
  5200    Walker w;
  5201    w.xExprCallback = analyzeAggregate;
  5202    w.xSelectCallback = analyzeAggregatesInSelect;
  5203    w.xSelectCallback2 = analyzeAggregatesInSelectEnd;
  5204    w.walkerDepth = 0;
  5205    w.u.pNC = pNC;
  5206    assert( pNC->pSrcList!=0 );
  5207    sqlite3WalkExpr(&w, pExpr);
  5208  }
  5209  
  5210  /*
  5211  ** Call sqlite3ExprAnalyzeAggregates() for every expression in an
  5212  ** expression list.  Return the number of errors.
  5213  **
  5214  ** If an error is found, the analysis is cut short.
  5215  */
  5216  void sqlite3ExprAnalyzeAggList(NameContext *pNC, ExprList *pList){
  5217    struct ExprList_item *pItem;
  5218    int i;
  5219    if( pList ){
  5220      for(pItem=pList->a, i=0; i<pList->nExpr; i++, pItem++){
  5221        sqlite3ExprAnalyzeAggregates(pNC, pItem->pExpr);
  5222      }
  5223    }
  5224  }
  5225  
  5226  /*
  5227  ** Allocate a single new register for use to hold some intermediate result.
  5228  */
  5229  int sqlite3GetTempReg(Parse *pParse){
  5230    if( pParse->nTempReg==0 ){
  5231      return ++pParse->nMem;
  5232    }
  5233    return pParse->aTempReg[--pParse->nTempReg];
  5234  }
  5235  
  5236  /*
  5237  ** Deallocate a register, making available for reuse for some other
  5238  ** purpose.
  5239  **
  5240  ** If a register is currently being used by the column cache, then
  5241  ** the deallocation is deferred until the column cache line that uses
  5242  ** the register becomes stale.
  5243  */
  5244  void sqlite3ReleaseTempReg(Parse *pParse, int iReg){
  5245    if( iReg && pParse->nTempReg<ArraySize(pParse->aTempReg) ){
  5246      int i;
  5247      struct yColCache *p;
  5248      for(i=0, p=pParse->aColCache; i<pParse->nColCache; i++, p++){
  5249        if( p->iReg==iReg ){
  5250          p->tempReg = 1;
  5251          return;
  5252        }
  5253      }
  5254      pParse->aTempReg[pParse->nTempReg++] = iReg;
  5255    }
  5256  }
  5257  
  5258  /*
  5259  ** Allocate or deallocate a block of nReg consecutive registers.
  5260  */
  5261  int sqlite3GetTempRange(Parse *pParse, int nReg){
  5262    int i, n;
  5263    if( nReg==1 ) return sqlite3GetTempReg(pParse);
  5264    i = pParse->iRangeReg;
  5265    n = pParse->nRangeReg;
  5266    if( nReg<=n ){
  5267      assert( !usedAsColumnCache(pParse, i, i+n-1) );
  5268      pParse->iRangeReg += nReg;
  5269      pParse->nRangeReg -= nReg;
  5270    }else{
  5271      i = pParse->nMem+1;
  5272      pParse->nMem += nReg;
  5273    }
  5274    return i;
  5275  }
  5276  void sqlite3ReleaseTempRange(Parse *pParse, int iReg, int nReg){
  5277    if( nReg==1 ){
  5278      sqlite3ReleaseTempReg(pParse, iReg);
  5279      return;
  5280    }
  5281    sqlite3ExprCacheRemove(pParse, iReg, nReg);
  5282    if( nReg>pParse->nRangeReg ){
  5283      pParse->nRangeReg = nReg;
  5284      pParse->iRangeReg = iReg;
  5285    }
  5286  }
  5287  
  5288  /*
  5289  ** Mark all temporary registers as being unavailable for reuse.
  5290  */
  5291  void sqlite3ClearTempRegCache(Parse *pParse){
  5292    pParse->nTempReg = 0;
  5293    pParse->nRangeReg = 0;
  5294  }
  5295  
  5296  /*
  5297  ** Validate that no temporary register falls within the range of
  5298  ** iFirst..iLast, inclusive.  This routine is only call from within assert()
  5299  ** statements.
  5300  */
  5301  #ifdef SQLITE_DEBUG
  5302  int sqlite3NoTempsInRange(Parse *pParse, int iFirst, int iLast){
  5303    int i;
  5304    if( pParse->nRangeReg>0
  5305     && pParse->iRangeReg+pParse->nRangeReg > iFirst
  5306     && pParse->iRangeReg <= iLast
  5307    ){
  5308       return 0;
  5309    }
  5310    for(i=0; i<pParse->nTempReg; i++){
  5311      if( pParse->aTempReg[i]>=iFirst && pParse->aTempReg[i]<=iLast ){
  5312        return 0;
  5313      }
  5314    }
  5315    return 1;
  5316  }
  5317  #endif /* SQLITE_DEBUG */