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

     1  /*
     2  **
     3  ** The author disclaims copyright to this source code.  In place of
     4  ** a legal notice, here is a blessing:
     5  **
     6  **    May you do good and not evil.
     7  **    May you find forgiveness for yourself and forgive others.
     8  **    May you share freely, never taking more than you give.
     9  **
    10  *************************************************************************
    11  ** This file contains code used by the compiler to add foreign key
    12  ** support to compiled SQL statements.
    13  */
    14  #include "sqliteInt.h"
    15  
    16  #ifndef SQLITE_OMIT_FOREIGN_KEY
    17  #ifndef SQLITE_OMIT_TRIGGER
    18  
    19  /*
    20  ** Deferred and Immediate FKs
    21  ** --------------------------
    22  **
    23  ** Foreign keys in SQLite come in two flavours: deferred and immediate.
    24  ** If an immediate foreign key constraint is violated,
    25  ** SQLITE_CONSTRAINT_FOREIGNKEY is returned and the current
    26  ** statement transaction rolled back. If a 
    27  ** deferred foreign key constraint is violated, no action is taken 
    28  ** immediately. However if the application attempts to commit the 
    29  ** transaction before fixing the constraint violation, the attempt fails.
    30  **
    31  ** Deferred constraints are implemented using a simple counter associated
    32  ** with the database handle. The counter is set to zero each time a 
    33  ** database transaction is opened. Each time a statement is executed 
    34  ** that causes a foreign key violation, the counter is incremented. Each
    35  ** time a statement is executed that removes an existing violation from
    36  ** the database, the counter is decremented. When the transaction is
    37  ** committed, the commit fails if the current value of the counter is
    38  ** greater than zero. This scheme has two big drawbacks:
    39  **
    40  **   * When a commit fails due to a deferred foreign key constraint, 
    41  **     there is no way to tell which foreign constraint is not satisfied,
    42  **     or which row it is not satisfied for.
    43  **
    44  **   * If the database contains foreign key violations when the 
    45  **     transaction is opened, this may cause the mechanism to malfunction.
    46  **
    47  ** Despite these problems, this approach is adopted as it seems simpler
    48  ** than the alternatives.
    49  **
    50  ** INSERT operations:
    51  **
    52  **   I.1) For each FK for which the table is the child table, search
    53  **        the parent table for a match. If none is found increment the
    54  **        constraint counter.
    55  **
    56  **   I.2) For each FK for which the table is the parent table, 
    57  **        search the child table for rows that correspond to the new
    58  **        row in the parent table. Decrement the counter for each row
    59  **        found (as the constraint is now satisfied).
    60  **
    61  ** DELETE operations:
    62  **
    63  **   D.1) For each FK for which the table is the child table, 
    64  **        search the parent table for a row that corresponds to the 
    65  **        deleted row in the child table. If such a row is not found, 
    66  **        decrement the counter.
    67  **
    68  **   D.2) For each FK for which the table is the parent table, search 
    69  **        the child table for rows that correspond to the deleted row 
    70  **        in the parent table. For each found increment the counter.
    71  **
    72  ** UPDATE operations:
    73  **
    74  **   An UPDATE command requires that all 4 steps above are taken, but only
    75  **   for FK constraints for which the affected columns are actually 
    76  **   modified (values must be compared at runtime).
    77  **
    78  ** Note that I.1 and D.1 are very similar operations, as are I.2 and D.2.
    79  ** This simplifies the implementation a bit.
    80  **
    81  ** For the purposes of immediate FK constraints, the OR REPLACE conflict
    82  ** resolution is considered to delete rows before the new row is inserted.
    83  ** If a delete caused by OR REPLACE violates an FK constraint, an exception
    84  ** is thrown, even if the FK constraint would be satisfied after the new 
    85  ** row is inserted.
    86  **
    87  ** Immediate constraints are usually handled similarly. The only difference 
    88  ** is that the counter used is stored as part of each individual statement
    89  ** object (struct Vdbe). If, after the statement has run, its immediate
    90  ** constraint counter is greater than zero,
    91  ** it returns SQLITE_CONSTRAINT_FOREIGNKEY
    92  ** and the statement transaction is rolled back. An exception is an INSERT
    93  ** statement that inserts a single row only (no triggers). In this case,
    94  ** instead of using a counter, an exception is thrown immediately if the
    95  ** INSERT violates a foreign key constraint. This is necessary as such
    96  ** an INSERT does not open a statement transaction.
    97  **
    98  ** TODO: How should dropping a table be handled? How should renaming a 
    99  ** table be handled?
   100  **
   101  **
   102  ** Query API Notes
   103  ** ---------------
   104  **
   105  ** Before coding an UPDATE or DELETE row operation, the code-generator
   106  ** for those two operations needs to know whether or not the operation
   107  ** requires any FK processing and, if so, which columns of the original
   108  ** row are required by the FK processing VDBE code (i.e. if FKs were
   109  ** implemented using triggers, which of the old.* columns would be 
   110  ** accessed). No information is required by the code-generator before
   111  ** coding an INSERT operation. The functions used by the UPDATE/DELETE
   112  ** generation code to query for this information are:
   113  **
   114  **   sqlite3FkRequired() - Test to see if FK processing is required.
   115  **   sqlite3FkOldmask()  - Query for the set of required old.* columns.
   116  **
   117  **
   118  ** Externally accessible module functions
   119  ** --------------------------------------
   120  **
   121  **   sqlite3FkCheck()    - Check for foreign key violations.
   122  **   sqlite3FkActions()  - Code triggers for ON UPDATE/ON DELETE actions.
   123  **   sqlite3FkDelete()   - Delete an FKey structure.
   124  */
   125  
   126  /*
   127  ** VDBE Calling Convention
   128  ** -----------------------
   129  **
   130  ** Example:
   131  **
   132  **   For the following INSERT statement:
   133  **
   134  **     CREATE TABLE t1(a, b INTEGER PRIMARY KEY, c);
   135  **     INSERT INTO t1 VALUES(1, 2, 3.1);
   136  **
   137  **   Register (x):        2    (type integer)
   138  **   Register (x+1):      1    (type integer)
   139  **   Register (x+2):      NULL (type NULL)
   140  **   Register (x+3):      3.1  (type real)
   141  */
   142  
   143  /*
   144  ** A foreign key constraint requires that the key columns in the parent
   145  ** table are collectively subject to a UNIQUE or PRIMARY KEY constraint.
   146  ** Given that pParent is the parent table for foreign key constraint pFKey, 
   147  ** search the schema for a unique index on the parent key columns. 
   148  **
   149  ** If successful, zero is returned. If the parent key is an INTEGER PRIMARY 
   150  ** KEY column, then output variable *ppIdx is set to NULL. Otherwise, *ppIdx 
   151  ** is set to point to the unique index. 
   152  ** 
   153  ** If the parent key consists of a single column (the foreign key constraint
   154  ** is not a composite foreign key), output variable *paiCol is set to NULL.
   155  ** Otherwise, it is set to point to an allocated array of size N, where
   156  ** N is the number of columns in the parent key. The first element of the
   157  ** array is the index of the child table column that is mapped by the FK
   158  ** constraint to the parent table column stored in the left-most column
   159  ** of index *ppIdx. The second element of the array is the index of the
   160  ** child table column that corresponds to the second left-most column of
   161  ** *ppIdx, and so on.
   162  **
   163  ** If the required index cannot be found, either because:
   164  **
   165  **   1) The named parent key columns do not exist, or
   166  **
   167  **   2) The named parent key columns do exist, but are not subject to a
   168  **      UNIQUE or PRIMARY KEY constraint, or
   169  **
   170  **   3) No parent key columns were provided explicitly as part of the
   171  **      foreign key definition, and the parent table does not have a
   172  **      PRIMARY KEY, or
   173  **
   174  **   4) No parent key columns were provided explicitly as part of the
   175  **      foreign key definition, and the PRIMARY KEY of the parent table 
   176  **      consists of a different number of columns to the child key in 
   177  **      the child table.
   178  **
   179  ** then non-zero is returned, and a "foreign key mismatch" error loaded
   180  ** into pParse. If an OOM error occurs, non-zero is returned and the
   181  ** pParse->db->mallocFailed flag is set.
   182  */
   183  int sqlite3FkLocateIndex(
   184    Parse *pParse,                  /* Parse context to store any error in */
   185    Table *pParent,                 /* Parent table of FK constraint pFKey */
   186    FKey *pFKey,                    /* Foreign key to find index for */
   187    Index **ppIdx,                  /* OUT: Unique index on parent table */
   188    int **paiCol                    /* OUT: Map of index columns in pFKey */
   189  ){
   190    Index *pIdx = 0;                    /* Value to return via *ppIdx */
   191    int *aiCol = 0;                     /* Value to return via *paiCol */
   192    int nCol = pFKey->nCol;             /* Number of columns in parent key */
   193    char *zKey = pFKey->aCol[0].zCol;   /* Name of left-most parent key column */
   194  
   195    /* The caller is responsible for zeroing output parameters. */
   196    assert( ppIdx && *ppIdx==0 );
   197    assert( !paiCol || *paiCol==0 );
   198    assert( pParse );
   199  
   200    /* If this is a non-composite (single column) foreign key, check if it 
   201    ** maps to the INTEGER PRIMARY KEY of table pParent. If so, leave *ppIdx 
   202    ** and *paiCol set to zero and return early. 
   203    **
   204    ** Otherwise, for a composite foreign key (more than one column), allocate
   205    ** space for the aiCol array (returned via output parameter *paiCol).
   206    ** Non-composite foreign keys do not require the aiCol array.
   207    */
   208    if( nCol==1 ){
   209      /* The FK maps to the IPK if any of the following are true:
   210      **
   211      **   1) There is an INTEGER PRIMARY KEY column and the FK is implicitly 
   212      **      mapped to the primary key of table pParent, or
   213      **   2) The FK is explicitly mapped to a column declared as INTEGER
   214      **      PRIMARY KEY.
   215      */
   216      if( pParent->iPKey>=0 ){
   217        if( !zKey ) return 0;
   218        if( !sqlite3StrICmp(pParent->aCol[pParent->iPKey].zName, zKey) ) return 0;
   219      }
   220    }else if( paiCol ){
   221      assert( nCol>1 );
   222      aiCol = (int *)sqlite3DbMallocRawNN(pParse->db, nCol*sizeof(int));
   223      if( !aiCol ) return 1;
   224      *paiCol = aiCol;
   225    }
   226  
   227    for(pIdx=pParent->pIndex; pIdx; pIdx=pIdx->pNext){
   228      if( pIdx->nKeyCol==nCol && IsUniqueIndex(pIdx) && pIdx->pPartIdxWhere==0 ){ 
   229        /* pIdx is a UNIQUE index (or a PRIMARY KEY) and has the right number
   230        ** of columns. If each indexed column corresponds to a foreign key
   231        ** column of pFKey, then this index is a winner.  */
   232  
   233        if( zKey==0 ){
   234          /* If zKey is NULL, then this foreign key is implicitly mapped to 
   235          ** the PRIMARY KEY of table pParent. The PRIMARY KEY index may be 
   236          ** identified by the test.  */
   237          if( IsPrimaryKeyIndex(pIdx) ){
   238            if( aiCol ){
   239              int i;
   240              for(i=0; i<nCol; i++) aiCol[i] = pFKey->aCol[i].iFrom;
   241            }
   242            break;
   243          }
   244        }else{
   245          /* If zKey is non-NULL, then this foreign key was declared to
   246          ** map to an explicit list of columns in table pParent. Check if this
   247          ** index matches those columns. Also, check that the index uses
   248          ** the default collation sequences for each column. */
   249          int i, j;
   250          for(i=0; i<nCol; i++){
   251            i16 iCol = pIdx->aiColumn[i];     /* Index of column in parent tbl */
   252            const char *zDfltColl;            /* Def. collation for column */
   253            char *zIdxCol;                    /* Name of indexed column */
   254  
   255            if( iCol<0 ) break; /* No foreign keys against expression indexes */
   256  
   257            /* If the index uses a collation sequence that is different from
   258            ** the default collation sequence for the column, this index is
   259            ** unusable. Bail out early in this case.  */
   260            zDfltColl = pParent->aCol[iCol].zColl;
   261            if( !zDfltColl ) zDfltColl = sqlite3StrBINARY;
   262            if( sqlite3StrICmp(pIdx->azColl[i], zDfltColl) ) break;
   263  
   264            zIdxCol = pParent->aCol[iCol].zName;
   265            for(j=0; j<nCol; j++){
   266              if( sqlite3StrICmp(pFKey->aCol[j].zCol, zIdxCol)==0 ){
   267                if( aiCol ) aiCol[i] = pFKey->aCol[j].iFrom;
   268                break;
   269              }
   270            }
   271            if( j==nCol ) break;
   272          }
   273          if( i==nCol ) break;      /* pIdx is usable */
   274        }
   275      }
   276    }
   277  
   278    if( !pIdx ){
   279      if( !pParse->disableTriggers ){
   280        sqlite3ErrorMsg(pParse,
   281             "foreign key mismatch - \"%w\" referencing \"%w\"",
   282             pFKey->pFrom->zName, pFKey->zTo);
   283      }
   284      sqlite3DbFree(pParse->db, aiCol);
   285      return 1;
   286    }
   287  
   288    *ppIdx = pIdx;
   289    return 0;
   290  }
   291  
   292  /*
   293  ** This function is called when a row is inserted into or deleted from the 
   294  ** child table of foreign key constraint pFKey. If an SQL UPDATE is executed 
   295  ** on the child table of pFKey, this function is invoked twice for each row
   296  ** affected - once to "delete" the old row, and then again to "insert" the
   297  ** new row.
   298  **
   299  ** Each time it is called, this function generates VDBE code to locate the
   300  ** row in the parent table that corresponds to the row being inserted into 
   301  ** or deleted from the child table. If the parent row can be found, no 
   302  ** special action is taken. Otherwise, if the parent row can *not* be
   303  ** found in the parent table:
   304  **
   305  **   Operation | FK type   | Action taken
   306  **   --------------------------------------------------------------------------
   307  **   INSERT      immediate   Increment the "immediate constraint counter".
   308  **
   309  **   DELETE      immediate   Decrement the "immediate constraint counter".
   310  **
   311  **   INSERT      deferred    Increment the "deferred constraint counter".
   312  **
   313  **   DELETE      deferred    Decrement the "deferred constraint counter".
   314  **
   315  ** These operations are identified in the comment at the top of this file 
   316  ** (fkey.c) as "I.1" and "D.1".
   317  */
   318  static void fkLookupParent(
   319    Parse *pParse,        /* Parse context */
   320    int iDb,              /* Index of database housing pTab */
   321    Table *pTab,          /* Parent table of FK pFKey */
   322    Index *pIdx,          /* Unique index on parent key columns in pTab */
   323    FKey *pFKey,          /* Foreign key constraint */
   324    int *aiCol,           /* Map from parent key columns to child table columns */
   325    int regData,          /* Address of array containing child table row */
   326    int nIncr,            /* Increment constraint counter by this */
   327    int isIgnore          /* If true, pretend pTab contains all NULL values */
   328  ){
   329    int i;                                    /* Iterator variable */
   330    Vdbe *v = sqlite3GetVdbe(pParse);         /* Vdbe to add code to */
   331    int iCur = pParse->nTab - 1;              /* Cursor number to use */
   332    int iOk = sqlite3VdbeMakeLabel(v);        /* jump here if parent key found */
   333  
   334    /* If nIncr is less than zero, then check at runtime if there are any
   335    ** outstanding constraints to resolve. If there are not, there is no need
   336    ** to check if deleting this row resolves any outstanding violations.
   337    **
   338    ** Check if any of the key columns in the child table row are NULL. If 
   339    ** any are, then the constraint is considered satisfied. No need to 
   340    ** search for a matching row in the parent table.  */
   341    if( nIncr<0 ){
   342      sqlite3VdbeAddOp2(v, OP_FkIfZero, pFKey->isDeferred, iOk);
   343      VdbeCoverage(v);
   344    }
   345    for(i=0; i<pFKey->nCol; i++){
   346      int iReg = aiCol[i] + regData + 1;
   347      sqlite3VdbeAddOp2(v, OP_IsNull, iReg, iOk); VdbeCoverage(v);
   348    }
   349  
   350    if( isIgnore==0 ){
   351      if( pIdx==0 ){
   352        /* If pIdx is NULL, then the parent key is the INTEGER PRIMARY KEY
   353        ** column of the parent table (table pTab).  */
   354        int iMustBeInt;               /* Address of MustBeInt instruction */
   355        int regTemp = sqlite3GetTempReg(pParse);
   356    
   357        /* Invoke MustBeInt to coerce the child key value to an integer (i.e. 
   358        ** apply the affinity of the parent key). If this fails, then there
   359        ** is no matching parent key. Before using MustBeInt, make a copy of
   360        ** the value. Otherwise, the value inserted into the child key column
   361        ** will have INTEGER affinity applied to it, which may not be correct.  */
   362        sqlite3VdbeAddOp2(v, OP_SCopy, aiCol[0]+1+regData, regTemp);
   363        iMustBeInt = sqlite3VdbeAddOp2(v, OP_MustBeInt, regTemp, 0);
   364        VdbeCoverage(v);
   365    
   366        /* If the parent table is the same as the child table, and we are about
   367        ** to increment the constraint-counter (i.e. this is an INSERT operation),
   368        ** then check if the row being inserted matches itself. If so, do not
   369        ** increment the constraint-counter.  */
   370        if( pTab==pFKey->pFrom && nIncr==1 ){
   371          sqlite3VdbeAddOp3(v, OP_Eq, regData, iOk, regTemp); VdbeCoverage(v);
   372          sqlite3VdbeChangeP5(v, SQLITE_NOTNULL);
   373        }
   374    
   375        sqlite3OpenTable(pParse, iCur, iDb, pTab, OP_OpenRead);
   376        sqlite3VdbeAddOp3(v, OP_NotExists, iCur, 0, regTemp); VdbeCoverage(v);
   377        sqlite3VdbeGoto(v, iOk);
   378        sqlite3VdbeJumpHere(v, sqlite3VdbeCurrentAddr(v)-2);
   379        sqlite3VdbeJumpHere(v, iMustBeInt);
   380        sqlite3ReleaseTempReg(pParse, regTemp);
   381      }else{
   382        int nCol = pFKey->nCol;
   383        int regTemp = sqlite3GetTempRange(pParse, nCol);
   384        int regRec = sqlite3GetTempReg(pParse);
   385    
   386        sqlite3VdbeAddOp3(v, OP_OpenRead, iCur, pIdx->tnum, iDb);
   387        sqlite3VdbeSetP4KeyInfo(pParse, pIdx);
   388        for(i=0; i<nCol; i++){
   389          sqlite3VdbeAddOp2(v, OP_Copy, aiCol[i]+1+regData, regTemp+i);
   390        }
   391    
   392        /* If the parent table is the same as the child table, and we are about
   393        ** to increment the constraint-counter (i.e. this is an INSERT operation),
   394        ** then check if the row being inserted matches itself. If so, do not
   395        ** increment the constraint-counter. 
   396        **
   397        ** If any of the parent-key values are NULL, then the row cannot match 
   398        ** itself. So set JUMPIFNULL to make sure we do the OP_Found if any
   399        ** of the parent-key values are NULL (at this point it is known that
   400        ** none of the child key values are).
   401        */
   402        if( pTab==pFKey->pFrom && nIncr==1 ){
   403          int iJump = sqlite3VdbeCurrentAddr(v) + nCol + 1;
   404          for(i=0; i<nCol; i++){
   405            int iChild = aiCol[i]+1+regData;
   406            int iParent = pIdx->aiColumn[i]+1+regData;
   407            assert( pIdx->aiColumn[i]>=0 );
   408            assert( aiCol[i]!=pTab->iPKey );
   409            if( pIdx->aiColumn[i]==pTab->iPKey ){
   410              /* The parent key is a composite key that includes the IPK column */
   411              iParent = regData;
   412            }
   413            sqlite3VdbeAddOp3(v, OP_Ne, iChild, iJump, iParent); VdbeCoverage(v);
   414            sqlite3VdbeChangeP5(v, SQLITE_JUMPIFNULL);
   415          }
   416          sqlite3VdbeGoto(v, iOk);
   417        }
   418    
   419        sqlite3VdbeAddOp4(v, OP_MakeRecord, regTemp, nCol, regRec,
   420                          sqlite3IndexAffinityStr(pParse->db,pIdx), nCol);
   421        sqlite3VdbeAddOp4Int(v, OP_Found, iCur, iOk, regRec, 0); VdbeCoverage(v);
   422    
   423        sqlite3ReleaseTempReg(pParse, regRec);
   424        sqlite3ReleaseTempRange(pParse, regTemp, nCol);
   425      }
   426    }
   427  
   428    if( !pFKey->isDeferred && !(pParse->db->flags & SQLITE_DeferFKs)
   429     && !pParse->pToplevel 
   430     && !pParse->isMultiWrite 
   431    ){
   432      /* Special case: If this is an INSERT statement that will insert exactly
   433      ** one row into the table, raise a constraint immediately instead of
   434      ** incrementing a counter. This is necessary as the VM code is being
   435      ** generated for will not open a statement transaction.  */
   436      assert( nIncr==1 );
   437      sqlite3HaltConstraint(pParse, SQLITE_CONSTRAINT_FOREIGNKEY,
   438          OE_Abort, 0, P4_STATIC, P5_ConstraintFK);
   439    }else{
   440      if( nIncr>0 && pFKey->isDeferred==0 ){
   441        sqlite3MayAbort(pParse);
   442      }
   443      sqlite3VdbeAddOp2(v, OP_FkCounter, pFKey->isDeferred, nIncr);
   444    }
   445  
   446    sqlite3VdbeResolveLabel(v, iOk);
   447    sqlite3VdbeAddOp1(v, OP_Close, iCur);
   448  }
   449  
   450  
   451  /*
   452  ** Return an Expr object that refers to a memory register corresponding
   453  ** to column iCol of table pTab.
   454  **
   455  ** regBase is the first of an array of register that contains the data
   456  ** for pTab.  regBase itself holds the rowid.  regBase+1 holds the first
   457  ** column.  regBase+2 holds the second column, and so forth.
   458  */
   459  static Expr *exprTableRegister(
   460    Parse *pParse,     /* Parsing and code generating context */
   461    Table *pTab,       /* The table whose content is at r[regBase]... */
   462    int regBase,       /* Contents of table pTab */
   463    i16 iCol           /* Which column of pTab is desired */
   464  ){
   465    Expr *pExpr;
   466    Column *pCol;
   467    const char *zColl;
   468    sqlite3 *db = pParse->db;
   469  
   470    pExpr = sqlite3Expr(db, TK_REGISTER, 0);
   471    if( pExpr ){
   472      if( iCol>=0 && iCol!=pTab->iPKey ){
   473        pCol = &pTab->aCol[iCol];
   474        pExpr->iTable = regBase + iCol + 1;
   475        pExpr->affinity = pCol->affinity;
   476        zColl = pCol->zColl;
   477        if( zColl==0 ) zColl = db->pDfltColl->zName;
   478        pExpr = sqlite3ExprAddCollateString(pParse, pExpr, zColl);
   479      }else{
   480        pExpr->iTable = regBase;
   481        pExpr->affinity = SQLITE_AFF_INTEGER;
   482      }
   483    }
   484    return pExpr;
   485  }
   486  
   487  /*
   488  ** Return an Expr object that refers to column iCol of table pTab which
   489  ** has cursor iCur.
   490  */
   491  static Expr *exprTableColumn(
   492    sqlite3 *db,      /* The database connection */
   493    Table *pTab,      /* The table whose column is desired */
   494    int iCursor,      /* The open cursor on the table */
   495    i16 iCol          /* The column that is wanted */
   496  ){
   497    Expr *pExpr = sqlite3Expr(db, TK_COLUMN, 0);
   498    if( pExpr ){
   499      pExpr->pTab = pTab;
   500      pExpr->iTable = iCursor;
   501      pExpr->iColumn = iCol;
   502    }
   503    return pExpr;
   504  }
   505  
   506  /*
   507  ** This function is called to generate code executed when a row is deleted
   508  ** from the parent table of foreign key constraint pFKey and, if pFKey is 
   509  ** deferred, when a row is inserted into the same table. When generating
   510  ** code for an SQL UPDATE operation, this function may be called twice -
   511  ** once to "delete" the old row and once to "insert" the new row.
   512  **
   513  ** Parameter nIncr is passed -1 when inserting a row (as this may decrease
   514  ** the number of FK violations in the db) or +1 when deleting one (as this
   515  ** may increase the number of FK constraint problems).
   516  **
   517  ** The code generated by this function scans through the rows in the child
   518  ** table that correspond to the parent table row being deleted or inserted.
   519  ** For each child row found, one of the following actions is taken:
   520  **
   521  **   Operation | FK type   | Action taken
   522  **   --------------------------------------------------------------------------
   523  **   DELETE      immediate   Increment the "immediate constraint counter".
   524  **                           Or, if the ON (UPDATE|DELETE) action is RESTRICT,
   525  **                           throw a "FOREIGN KEY constraint failed" exception.
   526  **
   527  **   INSERT      immediate   Decrement the "immediate constraint counter".
   528  **
   529  **   DELETE      deferred    Increment the "deferred constraint counter".
   530  **                           Or, if the ON (UPDATE|DELETE) action is RESTRICT,
   531  **                           throw a "FOREIGN KEY constraint failed" exception.
   532  **
   533  **   INSERT      deferred    Decrement the "deferred constraint counter".
   534  **
   535  ** These operations are identified in the comment at the top of this file 
   536  ** (fkey.c) as "I.2" and "D.2".
   537  */
   538  static void fkScanChildren(
   539    Parse *pParse,                  /* Parse context */
   540    SrcList *pSrc,                  /* The child table to be scanned */
   541    Table *pTab,                    /* The parent table */
   542    Index *pIdx,                    /* Index on parent covering the foreign key */
   543    FKey *pFKey,                    /* The foreign key linking pSrc to pTab */
   544    int *aiCol,                     /* Map from pIdx cols to child table cols */
   545    int regData,                    /* Parent row data starts here */
   546    int nIncr                       /* Amount to increment deferred counter by */
   547  ){
   548    sqlite3 *db = pParse->db;       /* Database handle */
   549    int i;                          /* Iterator variable */
   550    Expr *pWhere = 0;               /* WHERE clause to scan with */
   551    NameContext sNameContext;       /* Context used to resolve WHERE clause */
   552    WhereInfo *pWInfo;              /* Context used by sqlite3WhereXXX() */
   553    int iFkIfZero = 0;              /* Address of OP_FkIfZero */
   554    Vdbe *v = sqlite3GetVdbe(pParse);
   555  
   556    assert( pIdx==0 || pIdx->pTable==pTab );
   557    assert( pIdx==0 || pIdx->nKeyCol==pFKey->nCol );
   558    assert( pIdx!=0 || pFKey->nCol==1 );
   559    assert( pIdx!=0 || HasRowid(pTab) );
   560  
   561    if( nIncr<0 ){
   562      iFkIfZero = sqlite3VdbeAddOp2(v, OP_FkIfZero, pFKey->isDeferred, 0);
   563      VdbeCoverage(v);
   564    }
   565  
   566    /* Create an Expr object representing an SQL expression like:
   567    **
   568    **   <parent-key1> = <child-key1> AND <parent-key2> = <child-key2> ...
   569    **
   570    ** The collation sequence used for the comparison should be that of
   571    ** the parent key columns. The affinity of the parent key column should
   572    ** be applied to each child key value before the comparison takes place.
   573    */
   574    for(i=0; i<pFKey->nCol; i++){
   575      Expr *pLeft;                  /* Value from parent table row */
   576      Expr *pRight;                 /* Column ref to child table */
   577      Expr *pEq;                    /* Expression (pLeft = pRight) */
   578      i16 iCol;                     /* Index of column in child table */ 
   579      const char *zCol;             /* Name of column in child table */
   580  
   581      iCol = pIdx ? pIdx->aiColumn[i] : -1;
   582      pLeft = exprTableRegister(pParse, pTab, regData, iCol);
   583      iCol = aiCol ? aiCol[i] : pFKey->aCol[0].iFrom;
   584      assert( iCol>=0 );
   585      zCol = pFKey->pFrom->aCol[iCol].zName;
   586      pRight = sqlite3Expr(db, TK_ID, zCol);
   587      pEq = sqlite3PExpr(pParse, TK_EQ, pLeft, pRight);
   588      pWhere = sqlite3ExprAnd(db, pWhere, pEq);
   589    }
   590  
   591    /* If the child table is the same as the parent table, then add terms
   592    ** to the WHERE clause that prevent this entry from being scanned.
   593    ** The added WHERE clause terms are like this:
   594    **
   595    **     $current_rowid!=rowid
   596    **     NOT( $current_a==a AND $current_b==b AND ... )
   597    **
   598    ** The first form is used for rowid tables.  The second form is used
   599    ** for WITHOUT ROWID tables.  In the second form, the primary key is
   600    ** (a,b,...)
   601    */
   602    if( pTab==pFKey->pFrom && nIncr>0 ){
   603      Expr *pNe;                    /* Expression (pLeft != pRight) */
   604      Expr *pLeft;                  /* Value from parent table row */
   605      Expr *pRight;                 /* Column ref to child table */
   606      if( HasRowid(pTab) ){
   607        pLeft = exprTableRegister(pParse, pTab, regData, -1);
   608        pRight = exprTableColumn(db, pTab, pSrc->a[0].iCursor, -1);
   609        pNe = sqlite3PExpr(pParse, TK_NE, pLeft, pRight);
   610      }else{
   611        Expr *pEq, *pAll = 0;
   612        Index *pPk = sqlite3PrimaryKeyIndex(pTab);
   613        assert( pIdx!=0 );
   614        for(i=0; i<pPk->nKeyCol; i++){
   615          i16 iCol = pIdx->aiColumn[i];
   616          assert( iCol>=0 );
   617          pLeft = exprTableRegister(pParse, pTab, regData, iCol);
   618          pRight = exprTableColumn(db, pTab, pSrc->a[0].iCursor, iCol);
   619          pEq = sqlite3PExpr(pParse, TK_EQ, pLeft, pRight);
   620          pAll = sqlite3ExprAnd(db, pAll, pEq);
   621        }
   622        pNe = sqlite3PExpr(pParse, TK_NOT, pAll, 0);
   623      }
   624      pWhere = sqlite3ExprAnd(db, pWhere, pNe);
   625    }
   626  
   627    /* Resolve the references in the WHERE clause. */
   628    memset(&sNameContext, 0, sizeof(NameContext));
   629    sNameContext.pSrcList = pSrc;
   630    sNameContext.pParse = pParse;
   631    sqlite3ResolveExprNames(&sNameContext, pWhere);
   632  
   633    /* Create VDBE to loop through the entries in pSrc that match the WHERE
   634    ** clause. For each row found, increment either the deferred or immediate
   635    ** foreign key constraint counter. */
   636    if( pParse->nErr==0 ){
   637      pWInfo = sqlite3WhereBegin(pParse, pSrc, pWhere, 0, 0, 0, 0);
   638      sqlite3VdbeAddOp2(v, OP_FkCounter, pFKey->isDeferred, nIncr);
   639      if( pWInfo ){
   640        sqlite3WhereEnd(pWInfo);
   641      }
   642    }
   643  
   644    /* Clean up the WHERE clause constructed above. */
   645    sqlite3ExprDelete(db, pWhere);
   646    if( iFkIfZero ){
   647      sqlite3VdbeJumpHere(v, iFkIfZero);
   648    }
   649  }
   650  
   651  /*
   652  ** This function returns a linked list of FKey objects (connected by
   653  ** FKey.pNextTo) holding all children of table pTab.  For example,
   654  ** given the following schema:
   655  **
   656  **   CREATE TABLE t1(a PRIMARY KEY);
   657  **   CREATE TABLE t2(b REFERENCES t1(a);
   658  **
   659  ** Calling this function with table "t1" as an argument returns a pointer
   660  ** to the FKey structure representing the foreign key constraint on table
   661  ** "t2". Calling this function with "t2" as the argument would return a
   662  ** NULL pointer (as there are no FK constraints for which t2 is the parent
   663  ** table).
   664  */
   665  FKey *sqlite3FkReferences(Table *pTab){
   666    return (FKey *)sqlite3HashFind(&pTab->pSchema->fkeyHash, pTab->zName);
   667  }
   668  
   669  /*
   670  ** The second argument is a Trigger structure allocated by the 
   671  ** fkActionTrigger() routine. This function deletes the Trigger structure
   672  ** and all of its sub-components.
   673  **
   674  ** The Trigger structure or any of its sub-components may be allocated from
   675  ** the lookaside buffer belonging to database handle dbMem.
   676  */
   677  static void fkTriggerDelete(sqlite3 *dbMem, Trigger *p){
   678    if( p ){
   679      TriggerStep *pStep = p->step_list;
   680      sqlite3ExprDelete(dbMem, pStep->pWhere);
   681      sqlite3ExprListDelete(dbMem, pStep->pExprList);
   682      sqlite3SelectDelete(dbMem, pStep->pSelect);
   683      sqlite3ExprDelete(dbMem, p->pWhen);
   684      sqlite3DbFree(dbMem, p);
   685    }
   686  }
   687  
   688  /*
   689  ** This function is called to generate code that runs when table pTab is
   690  ** being dropped from the database. The SrcList passed as the second argument
   691  ** to this function contains a single entry guaranteed to resolve to
   692  ** table pTab.
   693  **
   694  ** Normally, no code is required. However, if either
   695  **
   696  **   (a) The table is the parent table of a FK constraint, or
   697  **   (b) The table is the child table of a deferred FK constraint and it is
   698  **       determined at runtime that there are outstanding deferred FK 
   699  **       constraint violations in the database,
   700  **
   701  ** then the equivalent of "DELETE FROM <tbl>" is executed before dropping
   702  ** the table from the database. Triggers are disabled while running this
   703  ** DELETE, but foreign key actions are not.
   704  */
   705  void sqlite3FkDropTable(Parse *pParse, SrcList *pName, Table *pTab){
   706    sqlite3 *db = pParse->db;
   707    if( (db->flags&SQLITE_ForeignKeys) && !IsVirtual(pTab) && !pTab->pSelect ){
   708      int iSkip = 0;
   709      Vdbe *v = sqlite3GetVdbe(pParse);
   710  
   711      assert( v );                  /* VDBE has already been allocated */
   712      if( sqlite3FkReferences(pTab)==0 ){
   713        /* Search for a deferred foreign key constraint for which this table
   714        ** is the child table. If one cannot be found, return without 
   715        ** generating any VDBE code. If one can be found, then jump over
   716        ** the entire DELETE if there are no outstanding deferred constraints
   717        ** when this statement is run.  */
   718        FKey *p;
   719        for(p=pTab->pFKey; p; p=p->pNextFrom){
   720          if( p->isDeferred || (db->flags & SQLITE_DeferFKs) ) break;
   721        }
   722        if( !p ) return;
   723        iSkip = sqlite3VdbeMakeLabel(v);
   724        sqlite3VdbeAddOp2(v, OP_FkIfZero, 1, iSkip); VdbeCoverage(v);
   725      }
   726  
   727      pParse->disableTriggers = 1;
   728      sqlite3DeleteFrom(pParse, sqlite3SrcListDup(db, pName, 0), 0);
   729      pParse->disableTriggers = 0;
   730  
   731      /* If the DELETE has generated immediate foreign key constraint 
   732      ** violations, halt the VDBE and return an error at this point, before
   733      ** any modifications to the schema are made. This is because statement
   734      ** transactions are not able to rollback schema changes.  
   735      **
   736      ** If the SQLITE_DeferFKs flag is set, then this is not required, as
   737      ** the statement transaction will not be rolled back even if FK
   738      ** constraints are violated.
   739      */
   740      if( (db->flags & SQLITE_DeferFKs)==0 ){
   741        sqlite3VdbeAddOp2(v, OP_FkIfZero, 0, sqlite3VdbeCurrentAddr(v)+2);
   742        VdbeCoverage(v);
   743        sqlite3HaltConstraint(pParse, SQLITE_CONSTRAINT_FOREIGNKEY,
   744            OE_Abort, 0, P4_STATIC, P5_ConstraintFK);
   745      }
   746  
   747      if( iSkip ){
   748        sqlite3VdbeResolveLabel(v, iSkip);
   749      }
   750    }
   751  }
   752  
   753  
   754  /*
   755  ** The second argument points to an FKey object representing a foreign key
   756  ** for which pTab is the child table. An UPDATE statement against pTab
   757  ** is currently being processed. For each column of the table that is 
   758  ** actually updated, the corresponding element in the aChange[] array
   759  ** is zero or greater (if a column is unmodified the corresponding element
   760  ** is set to -1). If the rowid column is modified by the UPDATE statement
   761  ** the bChngRowid argument is non-zero.
   762  **
   763  ** This function returns true if any of the columns that are part of the
   764  ** child key for FK constraint *p are modified.
   765  */
   766  static int fkChildIsModified(
   767    Table *pTab,                    /* Table being updated */
   768    FKey *p,                        /* Foreign key for which pTab is the child */
   769    int *aChange,                   /* Array indicating modified columns */
   770    int bChngRowid                  /* True if rowid is modified by this update */
   771  ){
   772    int i;
   773    for(i=0; i<p->nCol; i++){
   774      int iChildKey = p->aCol[i].iFrom;
   775      if( aChange[iChildKey]>=0 ) return 1;
   776      if( iChildKey==pTab->iPKey && bChngRowid ) return 1;
   777    }
   778    return 0;
   779  }
   780  
   781  /*
   782  ** The second argument points to an FKey object representing a foreign key
   783  ** for which pTab is the parent table. An UPDATE statement against pTab
   784  ** is currently being processed. For each column of the table that is 
   785  ** actually updated, the corresponding element in the aChange[] array
   786  ** is zero or greater (if a column is unmodified the corresponding element
   787  ** is set to -1). If the rowid column is modified by the UPDATE statement
   788  ** the bChngRowid argument is non-zero.
   789  **
   790  ** This function returns true if any of the columns that are part of the
   791  ** parent key for FK constraint *p are modified.
   792  */
   793  static int fkParentIsModified(
   794    Table *pTab, 
   795    FKey *p, 
   796    int *aChange, 
   797    int bChngRowid
   798  ){
   799    int i;
   800    for(i=0; i<p->nCol; i++){
   801      char *zKey = p->aCol[i].zCol;
   802      int iKey;
   803      for(iKey=0; iKey<pTab->nCol; iKey++){
   804        if( aChange[iKey]>=0 || (iKey==pTab->iPKey && bChngRowid) ){
   805          Column *pCol = &pTab->aCol[iKey];
   806          if( zKey ){
   807            if( 0==sqlite3StrICmp(pCol->zName, zKey) ) return 1;
   808          }else if( pCol->colFlags & COLFLAG_PRIMKEY ){
   809            return 1;
   810          }
   811        }
   812      }
   813    }
   814    return 0;
   815  }
   816  
   817  /*
   818  ** Return true if the parser passed as the first argument is being
   819  ** used to code a trigger that is really a "SET NULL" action belonging
   820  ** to trigger pFKey.
   821  */
   822  static int isSetNullAction(Parse *pParse, FKey *pFKey){
   823    Parse *pTop = sqlite3ParseToplevel(pParse);
   824    if( pTop->pTriggerPrg ){
   825      Trigger *p = pTop->pTriggerPrg->pTrigger;
   826      if( (p==pFKey->apTrigger[0] && pFKey->aAction[0]==OE_SetNull)
   827       || (p==pFKey->apTrigger[1] && pFKey->aAction[1]==OE_SetNull)
   828      ){
   829        return 1;
   830      }
   831    }
   832    return 0;
   833  }
   834  
   835  /*
   836  ** This function is called when inserting, deleting or updating a row of
   837  ** table pTab to generate VDBE code to perform foreign key constraint 
   838  ** processing for the operation.
   839  **
   840  ** For a DELETE operation, parameter regOld is passed the index of the
   841  ** first register in an array of (pTab->nCol+1) registers containing the
   842  ** rowid of the row being deleted, followed by each of the column values
   843  ** of the row being deleted, from left to right. Parameter regNew is passed
   844  ** zero in this case.
   845  **
   846  ** For an INSERT operation, regOld is passed zero and regNew is passed the
   847  ** first register of an array of (pTab->nCol+1) registers containing the new
   848  ** row data.
   849  **
   850  ** For an UPDATE operation, this function is called twice. Once before
   851  ** the original record is deleted from the table using the calling convention
   852  ** described for DELETE. Then again after the original record is deleted
   853  ** but before the new record is inserted using the INSERT convention. 
   854  */
   855  void sqlite3FkCheck(
   856    Parse *pParse,                  /* Parse context */
   857    Table *pTab,                    /* Row is being deleted from this table */ 
   858    int regOld,                     /* Previous row data is stored here */
   859    int regNew,                     /* New row data is stored here */
   860    int *aChange,                   /* Array indicating UPDATEd columns (or 0) */
   861    int bChngRowid                  /* True if rowid is UPDATEd */
   862  ){
   863    sqlite3 *db = pParse->db;       /* Database handle */
   864    FKey *pFKey;                    /* Used to iterate through FKs */
   865    int iDb;                        /* Index of database containing pTab */
   866    const char *zDb;                /* Name of database containing pTab */
   867    int isIgnoreErrors = pParse->disableTriggers;
   868  
   869    /* Exactly one of regOld and regNew should be non-zero. */
   870    assert( (regOld==0)!=(regNew==0) );
   871  
   872    /* If foreign-keys are disabled, this function is a no-op. */
   873    if( (db->flags&SQLITE_ForeignKeys)==0 ) return;
   874  
   875    iDb = sqlite3SchemaToIndex(db, pTab->pSchema);
   876    zDb = db->aDb[iDb].zDbSName;
   877  
   878    /* Loop through all the foreign key constraints for which pTab is the
   879    ** child table (the table that the foreign key definition is part of).  */
   880    for(pFKey=pTab->pFKey; pFKey; pFKey=pFKey->pNextFrom){
   881      Table *pTo;                   /* Parent table of foreign key pFKey */
   882      Index *pIdx = 0;              /* Index on key columns in pTo */
   883      int *aiFree = 0;
   884      int *aiCol;
   885      int iCol;
   886      int i;
   887      int bIgnore = 0;
   888  
   889      if( aChange 
   890       && sqlite3_stricmp(pTab->zName, pFKey->zTo)!=0
   891       && fkChildIsModified(pTab, pFKey, aChange, bChngRowid)==0 
   892      ){
   893        continue;
   894      }
   895  
   896      /* Find the parent table of this foreign key. Also find a unique index 
   897      ** on the parent key columns in the parent table. If either of these 
   898      ** schema items cannot be located, set an error in pParse and return 
   899      ** early.  */
   900      if( pParse->disableTriggers ){
   901        pTo = sqlite3FindTable(db, pFKey->zTo, zDb);
   902      }else{
   903        pTo = sqlite3LocateTable(pParse, 0, pFKey->zTo, zDb);
   904      }
   905      if( !pTo || sqlite3FkLocateIndex(pParse, pTo, pFKey, &pIdx, &aiFree) ){
   906        assert( isIgnoreErrors==0 || (regOld!=0 && regNew==0) );
   907        if( !isIgnoreErrors || db->mallocFailed ) return;
   908        if( pTo==0 ){
   909          /* If isIgnoreErrors is true, then a table is being dropped. In this
   910          ** case SQLite runs a "DELETE FROM xxx" on the table being dropped
   911          ** before actually dropping it in order to check FK constraints.
   912          ** If the parent table of an FK constraint on the current table is
   913          ** missing, behave as if it is empty. i.e. decrement the relevant
   914          ** FK counter for each row of the current table with non-NULL keys.
   915          */
   916          Vdbe *v = sqlite3GetVdbe(pParse);
   917          int iJump = sqlite3VdbeCurrentAddr(v) + pFKey->nCol + 1;
   918          for(i=0; i<pFKey->nCol; i++){
   919            int iReg = pFKey->aCol[i].iFrom + regOld + 1;
   920            sqlite3VdbeAddOp2(v, OP_IsNull, iReg, iJump); VdbeCoverage(v);
   921          }
   922          sqlite3VdbeAddOp2(v, OP_FkCounter, pFKey->isDeferred, -1);
   923        }
   924        continue;
   925      }
   926      assert( pFKey->nCol==1 || (aiFree && pIdx) );
   927  
   928      if( aiFree ){
   929        aiCol = aiFree;
   930      }else{
   931        iCol = pFKey->aCol[0].iFrom;
   932        aiCol = &iCol;
   933      }
   934      for(i=0; i<pFKey->nCol; i++){
   935        if( aiCol[i]==pTab->iPKey ){
   936          aiCol[i] = -1;
   937        }
   938        assert( pIdx==0 || pIdx->aiColumn[i]>=0 );
   939  #ifndef SQLITE_OMIT_AUTHORIZATION
   940        /* Request permission to read the parent key columns. If the 
   941        ** authorization callback returns SQLITE_IGNORE, behave as if any
   942        ** values read from the parent table are NULL. */
   943        if( db->xAuth ){
   944          int rcauth;
   945          char *zCol = pTo->aCol[pIdx ? pIdx->aiColumn[i] : pTo->iPKey].zName;
   946          rcauth = sqlite3AuthReadCol(pParse, pTo->zName, zCol, iDb);
   947          bIgnore = (rcauth==SQLITE_IGNORE);
   948        }
   949  #endif
   950      }
   951  
   952      /* Take a shared-cache advisory read-lock on the parent table. Allocate 
   953      ** a cursor to use to search the unique index on the parent key columns 
   954      ** in the parent table.  */
   955      sqlite3TableLock(pParse, iDb, pTo->tnum, 0, pTo->zName);
   956      pParse->nTab++;
   957  
   958      if( regOld!=0 ){
   959        /* A row is being removed from the child table. Search for the parent.
   960        ** If the parent does not exist, removing the child row resolves an 
   961        ** outstanding foreign key constraint violation. */
   962        fkLookupParent(pParse, iDb, pTo, pIdx, pFKey, aiCol, regOld, -1, bIgnore);
   963      }
   964      if( regNew!=0 && !isSetNullAction(pParse, pFKey) ){
   965        /* A row is being added to the child table. If a parent row cannot
   966        ** be found, adding the child row has violated the FK constraint. 
   967        **
   968        ** If this operation is being performed as part of a trigger program
   969        ** that is actually a "SET NULL" action belonging to this very 
   970        ** foreign key, then omit this scan altogether. As all child key
   971        ** values are guaranteed to be NULL, it is not possible for adding
   972        ** this row to cause an FK violation.  */
   973        fkLookupParent(pParse, iDb, pTo, pIdx, pFKey, aiCol, regNew, +1, bIgnore);
   974      }
   975  
   976      sqlite3DbFree(db, aiFree);
   977    }
   978  
   979    /* Loop through all the foreign key constraints that refer to this table.
   980    ** (the "child" constraints) */
   981    for(pFKey = sqlite3FkReferences(pTab); pFKey; pFKey=pFKey->pNextTo){
   982      Index *pIdx = 0;              /* Foreign key index for pFKey */
   983      SrcList *pSrc;
   984      int *aiCol = 0;
   985  
   986      if( aChange && fkParentIsModified(pTab, pFKey, aChange, bChngRowid)==0 ){
   987        continue;
   988      }
   989  
   990      if( !pFKey->isDeferred && !(db->flags & SQLITE_DeferFKs) 
   991       && !pParse->pToplevel && !pParse->isMultiWrite 
   992      ){
   993        assert( regOld==0 && regNew!=0 );
   994        /* Inserting a single row into a parent table cannot cause (or fix)
   995        ** an immediate foreign key violation. So do nothing in this case.  */
   996        continue;
   997      }
   998  
   999      if( sqlite3FkLocateIndex(pParse, pTab, pFKey, &pIdx, &aiCol) ){
  1000        if( !isIgnoreErrors || db->mallocFailed ) return;
  1001        continue;
  1002      }
  1003      assert( aiCol || pFKey->nCol==1 );
  1004  
  1005      /* Create a SrcList structure containing the child table.  We need the
  1006      ** child table as a SrcList for sqlite3WhereBegin() */
  1007      pSrc = sqlite3SrcListAppend(db, 0, 0, 0);
  1008      if( pSrc ){
  1009        struct SrcList_item *pItem = pSrc->a;
  1010        pItem->pTab = pFKey->pFrom;
  1011        pItem->zName = pFKey->pFrom->zName;
  1012        pItem->pTab->nTabRef++;
  1013        pItem->iCursor = pParse->nTab++;
  1014    
  1015        if( regNew!=0 ){
  1016          fkScanChildren(pParse, pSrc, pTab, pIdx, pFKey, aiCol, regNew, -1);
  1017        }
  1018        if( regOld!=0 ){
  1019          int eAction = pFKey->aAction[aChange!=0];
  1020          fkScanChildren(pParse, pSrc, pTab, pIdx, pFKey, aiCol, regOld, 1);
  1021          /* If this is a deferred FK constraint, or a CASCADE or SET NULL
  1022          ** action applies, then any foreign key violations caused by
  1023          ** removing the parent key will be rectified by the action trigger.
  1024          ** So do not set the "may-abort" flag in this case.
  1025          **
  1026          ** Note 1: If the FK is declared "ON UPDATE CASCADE", then the
  1027          ** may-abort flag will eventually be set on this statement anyway
  1028          ** (when this function is called as part of processing the UPDATE
  1029          ** within the action trigger).
  1030          **
  1031          ** Note 2: At first glance it may seem like SQLite could simply omit
  1032          ** all OP_FkCounter related scans when either CASCADE or SET NULL
  1033          ** applies. The trouble starts if the CASCADE or SET NULL action 
  1034          ** trigger causes other triggers or action rules attached to the 
  1035          ** child table to fire. In these cases the fk constraint counters
  1036          ** might be set incorrectly if any OP_FkCounter related scans are 
  1037          ** omitted.  */
  1038          if( !pFKey->isDeferred && eAction!=OE_Cascade && eAction!=OE_SetNull ){
  1039            sqlite3MayAbort(pParse);
  1040          }
  1041        }
  1042        pItem->zName = 0;
  1043        sqlite3SrcListDelete(db, pSrc);
  1044      }
  1045      sqlite3DbFree(db, aiCol);
  1046    }
  1047  }
  1048  
  1049  #define COLUMN_MASK(x) (((x)>31) ? 0xffffffff : ((u32)1<<(x)))
  1050  
  1051  /*
  1052  ** This function is called before generating code to update or delete a 
  1053  ** row contained in table pTab.
  1054  */
  1055  u32 sqlite3FkOldmask(
  1056    Parse *pParse,                  /* Parse context */
  1057    Table *pTab                     /* Table being modified */
  1058  ){
  1059    u32 mask = 0;
  1060    if( pParse->db->flags&SQLITE_ForeignKeys ){
  1061      FKey *p;
  1062      int i;
  1063      for(p=pTab->pFKey; p; p=p->pNextFrom){
  1064        for(i=0; i<p->nCol; i++) mask |= COLUMN_MASK(p->aCol[i].iFrom);
  1065      }
  1066      for(p=sqlite3FkReferences(pTab); p; p=p->pNextTo){
  1067        Index *pIdx = 0;
  1068        sqlite3FkLocateIndex(pParse, pTab, p, &pIdx, 0);
  1069        if( pIdx ){
  1070          for(i=0; i<pIdx->nKeyCol; i++){
  1071            assert( pIdx->aiColumn[i]>=0 );
  1072            mask |= COLUMN_MASK(pIdx->aiColumn[i]);
  1073          }
  1074        }
  1075      }
  1076    }
  1077    return mask;
  1078  }
  1079  
  1080  
  1081  /*
  1082  ** This function is called before generating code to update or delete a 
  1083  ** row contained in table pTab. If the operation is a DELETE, then
  1084  ** parameter aChange is passed a NULL value. For an UPDATE, aChange points
  1085  ** to an array of size N, where N is the number of columns in table pTab.
  1086  ** If the i'th column is not modified by the UPDATE, then the corresponding 
  1087  ** entry in the aChange[] array is set to -1. If the column is modified,
  1088  ** the value is 0 or greater. Parameter chngRowid is set to true if the
  1089  ** UPDATE statement modifies the rowid fields of the table.
  1090  **
  1091  ** If any foreign key processing will be required, this function returns
  1092  ** non-zero. If there is no foreign key related processing, this function 
  1093  ** returns zero.
  1094  **
  1095  ** For an UPDATE, this function returns 2 if:
  1096  **
  1097  **   * There are any FKs for which pTab is the child and the parent table, or
  1098  **   * the UPDATE modifies one or more parent keys for which the action is
  1099  **     not "NO ACTION" (i.e. is CASCADE, SET DEFAULT or SET NULL).
  1100  **
  1101  ** Or, assuming some other foreign key processing is required, 1.
  1102  */
  1103  int sqlite3FkRequired(
  1104    Parse *pParse,                  /* Parse context */
  1105    Table *pTab,                    /* Table being modified */
  1106    int *aChange,                   /* Non-NULL for UPDATE operations */
  1107    int chngRowid                   /* True for UPDATE that affects rowid */
  1108  ){
  1109    int eRet = 0;
  1110    if( pParse->db->flags&SQLITE_ForeignKeys ){
  1111      if( !aChange ){
  1112        /* A DELETE operation. Foreign key processing is required if the 
  1113        ** table in question is either the child or parent table for any 
  1114        ** foreign key constraint.  */
  1115        eRet = (sqlite3FkReferences(pTab) || pTab->pFKey);
  1116      }else{
  1117        /* This is an UPDATE. Foreign key processing is only required if the
  1118        ** operation modifies one or more child or parent key columns. */
  1119        FKey *p;
  1120  
  1121        /* Check if any child key columns are being modified. */
  1122        for(p=pTab->pFKey; p; p=p->pNextFrom){
  1123          if( 0==sqlite3_stricmp(pTab->zName, p->zTo) ) return 2;
  1124          if( fkChildIsModified(pTab, p, aChange, chngRowid) ){
  1125            eRet = 1;
  1126          }
  1127        }
  1128  
  1129        /* Check if any parent key columns are being modified. */
  1130        for(p=sqlite3FkReferences(pTab); p; p=p->pNextTo){
  1131          if( fkParentIsModified(pTab, p, aChange, chngRowid) ){
  1132            if( p->aAction[1]!=OE_None ) return 2;
  1133            eRet = 1;
  1134          }
  1135        }
  1136      }
  1137    }
  1138    return eRet;
  1139  }
  1140  
  1141  /*
  1142  ** This function is called when an UPDATE or DELETE operation is being 
  1143  ** compiled on table pTab, which is the parent table of foreign-key pFKey.
  1144  ** If the current operation is an UPDATE, then the pChanges parameter is
  1145  ** passed a pointer to the list of columns being modified. If it is a
  1146  ** DELETE, pChanges is passed a NULL pointer.
  1147  **
  1148  ** It returns a pointer to a Trigger structure containing a trigger
  1149  ** equivalent to the ON UPDATE or ON DELETE action specified by pFKey.
  1150  ** If the action is "NO ACTION" or "RESTRICT", then a NULL pointer is
  1151  ** returned (these actions require no special handling by the triggers
  1152  ** sub-system, code for them is created by fkScanChildren()).
  1153  **
  1154  ** For example, if pFKey is the foreign key and pTab is table "p" in 
  1155  ** the following schema:
  1156  **
  1157  **   CREATE TABLE p(pk PRIMARY KEY);
  1158  **   CREATE TABLE c(ck REFERENCES p ON DELETE CASCADE);
  1159  **
  1160  ** then the returned trigger structure is equivalent to:
  1161  **
  1162  **   CREATE TRIGGER ... DELETE ON p BEGIN
  1163  **     DELETE FROM c WHERE ck = old.pk;
  1164  **   END;
  1165  **
  1166  ** The returned pointer is cached as part of the foreign key object. It
  1167  ** is eventually freed along with the rest of the foreign key object by 
  1168  ** sqlite3FkDelete().
  1169  */
  1170  static Trigger *fkActionTrigger(
  1171    Parse *pParse,                  /* Parse context */
  1172    Table *pTab,                    /* Table being updated or deleted from */
  1173    FKey *pFKey,                    /* Foreign key to get action for */
  1174    ExprList *pChanges              /* Change-list for UPDATE, NULL for DELETE */
  1175  ){
  1176    sqlite3 *db = pParse->db;       /* Database handle */
  1177    int action;                     /* One of OE_None, OE_Cascade etc. */
  1178    Trigger *pTrigger;              /* Trigger definition to return */
  1179    int iAction = (pChanges!=0);    /* 1 for UPDATE, 0 for DELETE */
  1180  
  1181    action = pFKey->aAction[iAction];
  1182    if( action==OE_Restrict && (db->flags & SQLITE_DeferFKs) ){
  1183      return 0;
  1184    }
  1185    pTrigger = pFKey->apTrigger[iAction];
  1186  
  1187    if( action!=OE_None && !pTrigger ){
  1188      char const *zFrom;            /* Name of child table */
  1189      int nFrom;                    /* Length in bytes of zFrom */
  1190      Index *pIdx = 0;              /* Parent key index for this FK */
  1191      int *aiCol = 0;               /* child table cols -> parent key cols */
  1192      TriggerStep *pStep = 0;        /* First (only) step of trigger program */
  1193      Expr *pWhere = 0;             /* WHERE clause of trigger step */
  1194      ExprList *pList = 0;          /* Changes list if ON UPDATE CASCADE */
  1195      Select *pSelect = 0;          /* If RESTRICT, "SELECT RAISE(...)" */
  1196      int i;                        /* Iterator variable */
  1197      Expr *pWhen = 0;              /* WHEN clause for the trigger */
  1198  
  1199      if( sqlite3FkLocateIndex(pParse, pTab, pFKey, &pIdx, &aiCol) ) return 0;
  1200      assert( aiCol || pFKey->nCol==1 );
  1201  
  1202      for(i=0; i<pFKey->nCol; i++){
  1203        Token tOld = { "old", 3 };  /* Literal "old" token */
  1204        Token tNew = { "new", 3 };  /* Literal "new" token */
  1205        Token tFromCol;             /* Name of column in child table */
  1206        Token tToCol;               /* Name of column in parent table */
  1207        int iFromCol;               /* Idx of column in child table */
  1208        Expr *pEq;                  /* tFromCol = OLD.tToCol */
  1209  
  1210        iFromCol = aiCol ? aiCol[i] : pFKey->aCol[0].iFrom;
  1211        assert( iFromCol>=0 );
  1212        assert( pIdx!=0 || (pTab->iPKey>=0 && pTab->iPKey<pTab->nCol) );
  1213        assert( pIdx==0 || pIdx->aiColumn[i]>=0 );
  1214        sqlite3TokenInit(&tToCol,
  1215                     pTab->aCol[pIdx ? pIdx->aiColumn[i] : pTab->iPKey].zName);
  1216        sqlite3TokenInit(&tFromCol, pFKey->pFrom->aCol[iFromCol].zName);
  1217  
  1218        /* Create the expression "OLD.zToCol = zFromCol". It is important
  1219        ** that the "OLD.zToCol" term is on the LHS of the = operator, so
  1220        ** that the affinity and collation sequence associated with the
  1221        ** parent table are used for the comparison. */
  1222        pEq = sqlite3PExpr(pParse, TK_EQ,
  1223            sqlite3PExpr(pParse, TK_DOT, 
  1224              sqlite3ExprAlloc(db, TK_ID, &tOld, 0),
  1225              sqlite3ExprAlloc(db, TK_ID, &tToCol, 0)),
  1226            sqlite3ExprAlloc(db, TK_ID, &tFromCol, 0)
  1227        );
  1228        pWhere = sqlite3ExprAnd(db, pWhere, pEq);
  1229  
  1230        /* For ON UPDATE, construct the next term of the WHEN clause.
  1231        ** The final WHEN clause will be like this:
  1232        **
  1233        **    WHEN NOT(old.col1 IS new.col1 AND ... AND old.colN IS new.colN)
  1234        */
  1235        if( pChanges ){
  1236          pEq = sqlite3PExpr(pParse, TK_IS,
  1237              sqlite3PExpr(pParse, TK_DOT, 
  1238                sqlite3ExprAlloc(db, TK_ID, &tOld, 0),
  1239                sqlite3ExprAlloc(db, TK_ID, &tToCol, 0)),
  1240              sqlite3PExpr(pParse, TK_DOT, 
  1241                sqlite3ExprAlloc(db, TK_ID, &tNew, 0),
  1242                sqlite3ExprAlloc(db, TK_ID, &tToCol, 0))
  1243              );
  1244          pWhen = sqlite3ExprAnd(db, pWhen, pEq);
  1245        }
  1246    
  1247        if( action!=OE_Restrict && (action!=OE_Cascade || pChanges) ){
  1248          Expr *pNew;
  1249          if( action==OE_Cascade ){
  1250            pNew = sqlite3PExpr(pParse, TK_DOT, 
  1251              sqlite3ExprAlloc(db, TK_ID, &tNew, 0),
  1252              sqlite3ExprAlloc(db, TK_ID, &tToCol, 0));
  1253          }else if( action==OE_SetDflt ){
  1254            Expr *pDflt = pFKey->pFrom->aCol[iFromCol].pDflt;
  1255            if( pDflt ){
  1256              pNew = sqlite3ExprDup(db, pDflt, 0);
  1257            }else{
  1258              pNew = sqlite3ExprAlloc(db, TK_NULL, 0, 0);
  1259            }
  1260          }else{
  1261            pNew = sqlite3ExprAlloc(db, TK_NULL, 0, 0);
  1262          }
  1263          pList = sqlite3ExprListAppend(pParse, pList, pNew);
  1264          sqlite3ExprListSetName(pParse, pList, &tFromCol, 0);
  1265        }
  1266      }
  1267      sqlite3DbFree(db, aiCol);
  1268  
  1269      zFrom = pFKey->pFrom->zName;
  1270      nFrom = sqlite3Strlen30(zFrom);
  1271  
  1272      if( action==OE_Restrict ){
  1273        Token tFrom;
  1274        Expr *pRaise; 
  1275  
  1276        tFrom.z = zFrom;
  1277        tFrom.n = nFrom;
  1278        pRaise = sqlite3Expr(db, TK_RAISE, "FOREIGN KEY constraint failed");
  1279        if( pRaise ){
  1280          pRaise->affinity = OE_Abort;
  1281        }
  1282        pSelect = sqlite3SelectNew(pParse, 
  1283            sqlite3ExprListAppend(pParse, 0, pRaise),
  1284            sqlite3SrcListAppend(db, 0, &tFrom, 0),
  1285            pWhere,
  1286            0, 0, 0, 0, 0, 0
  1287        );
  1288        pWhere = 0;
  1289      }
  1290  
  1291      /* Disable lookaside memory allocation */
  1292      db->lookaside.bDisable++;
  1293  
  1294      pTrigger = (Trigger *)sqlite3DbMallocZero(db, 
  1295          sizeof(Trigger) +         /* struct Trigger */
  1296          sizeof(TriggerStep) +     /* Single step in trigger program */
  1297          nFrom + 1                 /* Space for pStep->zTarget */
  1298      );
  1299      if( pTrigger ){
  1300        pStep = pTrigger->step_list = (TriggerStep *)&pTrigger[1];
  1301        pStep->zTarget = (char *)&pStep[1];
  1302        memcpy((char *)pStep->zTarget, zFrom, nFrom);
  1303    
  1304        pStep->pWhere = sqlite3ExprDup(db, pWhere, EXPRDUP_REDUCE);
  1305        pStep->pExprList = sqlite3ExprListDup(db, pList, EXPRDUP_REDUCE);
  1306        pStep->pSelect = sqlite3SelectDup(db, pSelect, EXPRDUP_REDUCE);
  1307        if( pWhen ){
  1308          pWhen = sqlite3PExpr(pParse, TK_NOT, pWhen, 0);
  1309          pTrigger->pWhen = sqlite3ExprDup(db, pWhen, EXPRDUP_REDUCE);
  1310        }
  1311      }
  1312  
  1313      /* Re-enable the lookaside buffer, if it was disabled earlier. */
  1314      db->lookaside.bDisable--;
  1315  
  1316      sqlite3ExprDelete(db, pWhere);
  1317      sqlite3ExprDelete(db, pWhen);
  1318      sqlite3ExprListDelete(db, pList);
  1319      sqlite3SelectDelete(db, pSelect);
  1320      if( db->mallocFailed==1 ){
  1321        fkTriggerDelete(db, pTrigger);
  1322        return 0;
  1323      }
  1324      assert( pStep!=0 );
  1325  
  1326      switch( action ){
  1327        case OE_Restrict:
  1328          pStep->op = TK_SELECT; 
  1329          break;
  1330        case OE_Cascade: 
  1331          if( !pChanges ){ 
  1332            pStep->op = TK_DELETE; 
  1333            break; 
  1334          }
  1335        default:
  1336          pStep->op = TK_UPDATE;
  1337      }
  1338      pStep->pTrig = pTrigger;
  1339      pTrigger->pSchema = pTab->pSchema;
  1340      pTrigger->pTabSchema = pTab->pSchema;
  1341      pFKey->apTrigger[iAction] = pTrigger;
  1342      pTrigger->op = (pChanges ? TK_UPDATE : TK_DELETE);
  1343    }
  1344  
  1345    return pTrigger;
  1346  }
  1347  
  1348  /*
  1349  ** This function is called when deleting or updating a row to implement
  1350  ** any required CASCADE, SET NULL or SET DEFAULT actions.
  1351  */
  1352  void sqlite3FkActions(
  1353    Parse *pParse,                  /* Parse context */
  1354    Table *pTab,                    /* Table being updated or deleted from */
  1355    ExprList *pChanges,             /* Change-list for UPDATE, NULL for DELETE */
  1356    int regOld,                     /* Address of array containing old row */
  1357    int *aChange,                   /* Array indicating UPDATEd columns (or 0) */
  1358    int bChngRowid                  /* True if rowid is UPDATEd */
  1359  ){
  1360    /* If foreign-key support is enabled, iterate through all FKs that 
  1361    ** refer to table pTab. If there is an action associated with the FK 
  1362    ** for this operation (either update or delete), invoke the associated 
  1363    ** trigger sub-program.  */
  1364    if( pParse->db->flags&SQLITE_ForeignKeys ){
  1365      FKey *pFKey;                  /* Iterator variable */
  1366      for(pFKey = sqlite3FkReferences(pTab); pFKey; pFKey=pFKey->pNextTo){
  1367        if( aChange==0 || fkParentIsModified(pTab, pFKey, aChange, bChngRowid) ){
  1368          Trigger *pAct = fkActionTrigger(pParse, pTab, pFKey, pChanges);
  1369          if( pAct ){
  1370            sqlite3CodeRowTriggerDirect(pParse, pAct, pTab, regOld, OE_Abort, 0);
  1371          }
  1372        }
  1373      }
  1374    }
  1375  }
  1376  
  1377  #endif /* ifndef SQLITE_OMIT_TRIGGER */
  1378  
  1379  /*
  1380  ** Free all memory associated with foreign key definitions attached to
  1381  ** table pTab. Remove the deleted foreign keys from the Schema.fkeyHash
  1382  ** hash table.
  1383  */
  1384  void sqlite3FkDelete(sqlite3 *db, Table *pTab){
  1385    FKey *pFKey;                    /* Iterator variable */
  1386    FKey *pNext;                    /* Copy of pFKey->pNextFrom */
  1387  
  1388    assert( db==0 || IsVirtual(pTab)
  1389           || sqlite3SchemaMutexHeld(db, 0, pTab->pSchema) );
  1390    for(pFKey=pTab->pFKey; pFKey; pFKey=pNext){
  1391  
  1392      /* Remove the FK from the fkeyHash hash table. */
  1393      if( !db || db->pnBytesFreed==0 ){
  1394        if( pFKey->pPrevTo ){
  1395          pFKey->pPrevTo->pNextTo = pFKey->pNextTo;
  1396        }else{
  1397          void *p = (void *)pFKey->pNextTo;
  1398          const char *z = (p ? pFKey->pNextTo->zTo : pFKey->zTo);
  1399          sqlite3HashInsert(&pTab->pSchema->fkeyHash, z, p);
  1400        }
  1401        if( pFKey->pNextTo ){
  1402          pFKey->pNextTo->pPrevTo = pFKey->pPrevTo;
  1403        }
  1404      }
  1405  
  1406      /* EV: R-30323-21917 Each foreign key constraint in SQLite is
  1407      ** classified as either immediate or deferred.
  1408      */
  1409      assert( pFKey->isDeferred==0 || pFKey->isDeferred==1 );
  1410  
  1411      /* Delete any triggers created to implement actions for this FK. */
  1412  #ifndef SQLITE_OMIT_TRIGGER
  1413      fkTriggerDelete(db, pFKey->apTrigger[0]);
  1414      fkTriggerDelete(db, pFKey->apTrigger[1]);
  1415  #endif
  1416  
  1417      pNext = pFKey->pNextFrom;
  1418      sqlite3DbFree(db, pFKey);
  1419    }
  1420  }
  1421  #endif /* ifndef SQLITE_OMIT_FOREIGN_KEY */