Package org.drools.reteoo

Examples of org.drools.reteoo.RightTupleMemory


                                   LeftTupleSets trgLeftTuples) {
            boolean tupleMemory = true;
            boolean tupleMemoryEnabled = true;

            LeftTupleMemory ltm = bm.getLeftTupleMemory();
            RightTupleMemory rtm = bm.getRightTupleMemory();
            ContextEntry[] contextEntry = bm.getContext();
            BetaConstraints constraints = existsNode.getRawConstraints();
            FastIterator it = existsNode.getLeftIterator( ltm );

            for ( RightTuple rightTuple = srcRightTuples.getInsertFirst(); rightTuple != null; ) {
                RightTuple next = rightTuple.getStagedNext();
                rtm.add( rightTuple );
                PropagationContext context = rightTuple.getPropagationContext();

                constraints.updateFromFactHandle( contextEntry,
                                                  wm,
                                                  rightTuple.getFactHandle() );
View Full Code Here


                                  LeftTupleSets srcLeftTuples,
                                  LeftTupleSets trgLeftTuples,
                                  LeftTupleSets stagedLeftTuples) {
            boolean tupleMemory = true;
            LeftTupleMemory ltm = bm.getLeftTupleMemory();
            RightTupleMemory rtm = bm.getRightTupleMemory();
            ContextEntry[] contextEntry = bm.getContext();
            BetaConstraints constraints = existsNode.getRawConstraints();
            FastIterator rightIt = existsNode.getRightIterator( rtm );

            for ( LeftTuple leftTuple = srcLeftTuples.getUpdateFirst(); leftTuple != null; ) {
                LeftTuple next = leftTuple.getStagedNext();
                PropagationContext context = leftTuple.getPropagationContext();
               
                RightTuple firstRightTuple = existsNode.getFirstRightTuple(leftTuple, rtm, context, rightIt);
               
                // If in memory, remove it, because we'll need to add it anyway if it's not blocked, to ensure iteration order
                RightTuple blocker = leftTuple.getBlocker();
                if ( blocker == null ) {
                    ltm.remove( leftTuple );
                } else {
                    // check if we changed bucket
                    if ( rtm.isIndexed()&& !rightIt.isFullIterator()  ) {               
                        // if newRightTuple is null, we assume there was a bucket change and that bucket is empty               
                        if ( firstRightTuple == null || firstRightTuple.getMemory() != blocker.getMemory() ) {
                            // we changed bucket, so blocker no longer blocks
                            blocker.removeBlocked( leftTuple );
                            blocker = null;
View Full Code Here

                                   RightTupleSets srcRightTuples,
                                   LeftTupleSets trgLeftTuples,
                                   LeftTupleSets stagedLeftTuples) {
            boolean tupleMemory = true;
            LeftTupleMemory ltm = bm.getLeftTupleMemory();
            RightTupleMemory rtm = bm.getRightTupleMemory();
            ContextEntry[] contextEntry = bm.getContext();
            BetaConstraints constraints = existsNode.getRawConstraints();
            FastIterator leftIt = existsNode.getLeftIterator( ltm );
            FastIterator rightIt = existsNode.getRightIterator( rtm );

            for ( RightTuple rightTuple = srcRightTuples.getUpdateFirst(); rightTuple != null; ) {
                RightTuple next = rightTuple.getStagedNext();
                PropagationContext context = rightTuple.getPropagationContext();
               
                LeftTuple firstLeftTuple = existsNode.getFirstLeftTuple( rightTuple, ltm, context, leftIt );
               
                LeftTuple firstBlocked = rightTuple.getBlocked();
                // we now have  reference to the first Blocked, so null it in the rightTuple itself, so we can rebuild
                rightTuple.nullBlocked();
               
                // first process non-blocked tuples, as we know only those ones are in the left memory.
                for ( LeftTuple leftTuple = firstLeftTuple; leftTuple != null; ) {
                    // preserve next now, in case we remove this leftTuple
                    LeftTuple temp = (LeftTuple) leftIt.next( leftTuple );
                   
                    if ( leftTuple.getStagedType() == LeftTuple.UPDATE ) {
                        // ignore, as it will get processed via left iteration. Children cannot be processed twice
                        leftTuple = temp;
                        continue;                       
                    }

                    // we know that only unblocked LeftTuples are  still in the memory
                    if ( constraints.isAllowedCachedRight( contextEntry,
                                                           leftTuple ) ) {
                        leftTuple.setBlocker( rightTuple );
                        rightTuple.addBlocked( leftTuple );

                        // this is now blocked so remove from memory
                        ltm.remove( leftTuple );

                        // subclasses like ForallNotNode might override this propagation
                        trgLeftTuples.addInsert( sink.createLeftTuple( leftTuple,
                                                                       sink,
                                                                       tupleMemory ) );
                    }

                    leftTuple = temp;
                }

                if ( firstBlocked != null ) {
                    boolean useComparisonIndex = rtm.getIndexType().isComparison();

                    // now process existing blocks, we only process existing and not new from above loop
                    RightTuple rootBlocker = useComparisonIndex ? null : (RightTuple) rightIt.next(rightTuple);
                 
                    RightTupleList list = rightTuple.getMemory();
                   
                    // we must do this after we have the next in memory
                    // We add to the end to give an opportunity to re-match if in same bucket
                    rtm.removeAdd( rightTuple );

                    if ( !useComparisonIndex && rootBlocker == null && list == rightTuple.getMemory() ) {
                        // we are at the end of the list, but still in same bucket, so set to self, to give self a chance to rematch
                        rootBlocker = rightTuple;
                   
                   
                    // iterate all the existing previous blocked LeftTuples
                    for ( LeftTuple leftTuple = (LeftTuple) firstBlocked; leftTuple != null; ) {
                        LeftTuple temp = leftTuple.getBlockedNext();

                        leftTuple.clearBlocker(); // must null these as we are re-adding them to the list
                       
                        if ( leftTuple.getStagedType() == LeftTuple.UPDATE ) {
                            // ignore, as it will get processed via left iteration. Children cannot be processed twice
                            // but need to add it back into list first
                            leftTuple.setBlocker( rightTuple );
                            rightTuple.addBlocked( leftTuple );
                           
                            leftTuple = temp;
                            continue;                       
                        }

                        constraints.updateFromTuple( contextEntry,
                                                     wm,
                                                     leftTuple );

                        if (useComparisonIndex) {
                            rootBlocker = existsNode.getFirstRightTuple( leftTuple, rtm, context, rightIt );
                        }

                        // we know that older tuples have been checked so continue next
                        for ( RightTuple newBlocker = rootBlocker; newBlocker != null; newBlocker = (RightTuple) rightIt.next( newBlocker ) ) {
                            if ( constraints.isAllowedCachedLeft( contextEntry,
                                                                  newBlocker.getFactHandle() ) ) {
                                leftTuple.setBlocker( newBlocker );
                                newBlocker.addBlocked( leftTuple );

                                break;
                            }
                        }

                        if ( leftTuple.getBlocker() == null ) {
                            // was previous blocked and not in memory, so add
                            ltm.add( leftTuple );

                            LeftTuple childLeftTuple = leftTuple.getFirstChild();
                            if ( childLeftTuple != null ) {
                                childLeftTuple = deleteLeftChild( childLeftTuple, trgLeftTuples, stagedLeftTuples );
                            }
                        }

                        leftTuple = temp;
                    }
                } else {
                    // we had to do this at the end, rather than beginning as this 'if' block needs the next memory tuple
                    rtm.removeAdd( rightTuple );        
                }
               
                rightTuple.clearStaged();
                rightTuple = next;
            }
View Full Code Here

                                   InternalWorkingMemory wm,
                                   RightTupleSets srcRightTuples,
                                   LeftTupleSets trgLeftTuples,
                                   LeftTupleSets stagedLeftTuples) {
            boolean tupleMemory = true;
            RightTupleMemory rtm = bm.getRightTupleMemory();
            LeftTupleMemory ltm = bm.getLeftTupleMemory();
            ContextEntry[] contextEntry = bm.getContext();
            BetaConstraints constraints = existsNode.getRawConstraints();
            FastIterator it = existsNode.getRightIterator( rtm );           

            for ( RightTuple rightTuple = srcRightTuples.getDeleteFirst(); rightTuple != null; ) {
                RightTuple next = rightTuple.getStagedNext();

                boolean useComparisonIndex = rtm.getIndexType().isComparison();
                RightTuple rootBlocker = useComparisonIndex ? null : (RightTuple) it.next(rightTuple);

                if rightTuple.getMemory() != null ) {
                    // it may have been staged and never actually added
                    rtm.remove( rightTuple );
                }
                                      
                if ( rightTuple.getBlocked() != null ) {

                    PropagationContext context = rightTuple.getPropagationContext();

                    for ( LeftTuple leftTuple = rightTuple.getBlocked(); leftTuple != null; ) {
                        LeftTuple temp = leftTuple.getBlockedNext();
   
                        leftTuple.clearBlocker();
   
                        if ( leftTuple.getStagedType() == LeftTuple.UPDATE ) {
                            // ignore, as it will get processed via left iteration. Children cannot be processed twice
                            leftTuple = temp;
                            continue;                       
                        }
                       
                        constraints.updateFromTuple( contextEntry,
                                                      wm,
                                                      leftTuple );

                        if (useComparisonIndex) {
                            rootBlocker = rtm.getFirst( leftTuple, (InternalFactHandle) context.getFactHandle(), it );
                        }

                        // we know that older tuples have been checked so continue previously
                        for ( RightTuple newBlocker = rootBlocker; newBlocker != null; newBlocker = (RightTuple) it.next(newBlocker ) ) {
                            if ( constraints.isAllowedCachedLeft( contextEntry,
View Full Code Here

                                  LeftTupleSets trgLeftTuples) {
            boolean tupleMemory = true;
            boolean tupleMemoryEnabled = true;

            LeftTupleMemory ltm = bm.getLeftTupleMemory();
            RightTupleMemory rtm = bm.getRightTupleMemory();
            ContextEntry[] contextEntry = bm.getContext();
            BetaConstraints constraints = notNode.getRawConstraints();
            FastIterator it = notNode.getRightIterator( rtm );

            for ( LeftTuple leftTuple = srcLeftTuples.getInsertFirst(); leftTuple != null; ) {
View Full Code Here

                                   LeftTupleSets trgLeftTuples) {
            boolean tupleMemory = true;
            boolean tupleMemoryEnabled = true;

            LeftTupleMemory ltm = bm.getLeftTupleMemory();
            RightTupleMemory rtm = bm.getRightTupleMemory();
            ContextEntry[] contextEntry = bm.getContext();
            BetaConstraints constraints = notNode.getRawConstraints();
            FastIterator it = notNode.getLeftIterator( ltm );

            LeftTupleSets stagedLeftTuples = null;
            if ( !bm.getSegmentMemory().isEmpty() ) {
                stagedLeftTuples = bm.getSegmentMemory().getFirst().getStagedLeftTuples();
            }

            unlinkNotNodeOnRightInsert( notNode,
                                        bm,
                                        wm );
           
            for ( RightTuple rightTuple = srcRightTuples.getInsertFirst(); rightTuple != null; ) {
                RightTuple next = rightTuple.getStagedNext();
                rtm.add( rightTuple );
                PropagationContext context = rightTuple.getPropagationContext();

                constraints.updateFromFactHandle( contextEntry,
                                                  wm,
                                                  rightTuple.getFactHandle() );
View Full Code Here

                                  LeftTupleSets stagedLeftTuples) {
            boolean tupleMemory = true;
            boolean tupleMemoryEnabled = true;

            LeftTupleMemory ltm = bm.getLeftTupleMemory();
            RightTupleMemory rtm = bm.getRightTupleMemory();
            ContextEntry[] contextEntry = bm.getContext();
            BetaConstraints constraints = notNode.getRawConstraints();
            FastIterator rightIt = notNode.getRightIterator( rtm );

            for ( LeftTuple leftTuple = srcLeftTuples.getUpdateFirst(); leftTuple != null; ) {
                LeftTuple next = leftTuple.getStagedNext();
                PropagationContext context = leftTuple.getPropagationContext();
                RightTuple firstRightTuple = notNode.getFirstRightTuple( leftTuple, rtm, context, rightIt );

                // If in memory, remove it, because we'll need to add it anyway if it's not blocked, to ensure iteration order
                RightTuple blocker = leftTuple.getBlocker();
                if ( blocker == null ) {
                    ltm.remove( leftTuple );
                } else {
                    // check if we changed bucket
                    if ( rtm.isIndexed() && !rightIt.isFullIterator() ) {
                        // if newRightTuple is null, we assume there was a bucket change and that bucket is empty               
                        if ( firstRightTuple == null || firstRightTuple.getMemory() != blocker.getMemory() ) {
                            blocker.removeBlocked( leftTuple );
                            blocker = null;
                        }
View Full Code Here

                                   LeftTupleSets stagedLeftTuples) {
            boolean tupleMemory = true;
            boolean tupleMemoryEnabled = true;

            LeftTupleMemory ltm = bm.getLeftTupleMemory();
            RightTupleMemory rtm = bm.getRightTupleMemory();
            ContextEntry[] contextEntry = bm.getContext();
            BetaConstraints constraints = notNode.getRawConstraints();

            FastIterator leftIt = notNode.getLeftIterator( ltm );
            FastIterator rightIt = notNode.getRightIterator( rtm );

            for ( RightTuple rightTuple = srcRightTuples.getUpdateFirst(); rightTuple != null; ) {
                RightTuple next = rightTuple.getStagedNext();
                if ( ltm == null || (ltm.size() == 0 && rightTuple.getBlocked() == null) ) {
                    // do nothing here, as we know there are no left tuples

                    //normally do this at the end, but as we are exiting early, make sure the buckets are still correct.
                    rtm.removeAdd( rightTuple );
                    rightTuple.clearStaged();
                    rightTuple = next;                   
                    continue;
                }

                PropagationContext context = rightTuple.getPropagationContext();

                constraints.updateFromFactHandle( contextEntry,
                                                  wm,
                                                  rightTuple.getFactHandle() );

                LeftTuple firstLeftTuple = notNode.getFirstLeftTuple( rightTuple, ltm, context, leftIt );

                LeftTuple firstBlocked = rightTuple.getBlocked();
                // we now have  reference to the first Blocked, so null it in the rightTuple itself, so we can rebuild
                rightTuple.nullBlocked();

                // first process non-blocked tuples, as we know only those ones are in the left memory.
                for ( LeftTuple leftTuple = firstLeftTuple; leftTuple != null; ) {
                    // preserve next now, in case we remove this leftTuple
                    LeftTuple temp = (LeftTuple) leftIt.next( leftTuple );
                   
                    if ( leftTuple.getStagedType() == LeftTuple.UPDATE ) {
                        // ignore, as it will get processed via left iteration. Children cannot be processed twice
                        leftTuple = temp;
                        continue;                       
                    }

                    // we know that only unblocked LeftTuples are  still in the memory
                    if ( constraints.isAllowedCachedRight( contextEntry,
                                                           leftTuple ) ) {
                        leftTuple.setBlocker( rightTuple );
                        rightTuple.addBlocked( leftTuple );

                        // this is now blocked so remove from memory
                        ltm.remove( leftTuple );

                        if ( leftTuple.getFirstChild() != null ) {
                            deleteRightChild( leftTuple.getFirstChild(), trgLeftTuples, stagedLeftTuples );
                        }
                    }

                    leftTuple = temp;
                }

                if ( firstBlocked != null ) {
                    // now process existing blocks, we only process existing and not new from above loop
                    boolean useComparisonIndex = rtm.getIndexType().isComparison();
                    RightTuple rootBlocker = useComparisonIndex ? null : (RightTuple) rightIt.next( rightTuple );

                    RightTupleList list = rightTuple.getMemory();

                    // we must do this after we have the next in memory
                    // We add to the end to give an opportunity to re-match if in same bucket
                    rtm.removeAdd( rightTuple );

                    if ( !useComparisonIndex && rootBlocker == null && list == rightTuple.getMemory() ) {
                        // we are at the end of the list, so set to self, to give self a chance to rematch
                        rootBlocker = rightTuple;
                    }

                    // iterate all the existing previous blocked LeftTuples
                    for ( LeftTuple leftTuple = firstBlocked; leftTuple != null; ) {
                        LeftTuple temp = leftTuple.getBlockedNext();

                        leftTuple.clearBlocker();
                       
                        if ( leftTuple.getStagedType() == LeftTuple.UPDATE ) {
                            // ignore, as it will get processed via left iteration. Children cannot be processed twice
                            // but need to add it back into list first
                            leftTuple.setBlocker( rightTuple );
                            rightTuple.addBlocked( leftTuple );
                           
                            leftTuple = temp;
                            continue;                       
                        }                       

                        constraints.updateFromTuple( contextEntry,
                                                     wm,
                                                     leftTuple );

                        if ( useComparisonIndex ) {
                            rootBlocker = notNode.getFirstRightTuple( leftTuple, rtm, context, rightIt );
                        }

                        // we know that older tuples have been checked so continue next
                        for ( RightTuple newBlocker = rootBlocker; newBlocker != null; newBlocker = (RightTuple) rightIt.next( newBlocker ) ) {
                            if ( constraints.isAllowedCachedLeft( contextEntry,
                                                                  newBlocker.getFactHandle() ) ) {
                                leftTuple.setBlocker( newBlocker );
                                newBlocker.addBlocked( leftTuple );

                                break;
                            }
                        }

                        if ( leftTuple.getBlocker() == null ) {
                            // was previous blocked and not in memory, so add
                            ltm.add( leftTuple );

                            // subclasses like ForallNotNode might override this propagation
                            trgLeftTuples.addInsert( sink.createLeftTuple( leftTuple,
                                                                           sink,
                                                                           tupleMemory ) );
                        }

                        leftTuple = temp;
                    }
                } else {
                    // we had to do this at the end, rather than beginning as this 'if' block needs the next memory tuple
                    rtm.removeAdd( rightTuple );
                }
                rightTuple.clearStaged();
                rightTuple = next;
            }
View Full Code Here

                                   LeftTupleSets trgLeftTuples) {
            boolean tupleMemory = true;
            boolean tupleMemoryEnabled = true;

            LeftTupleMemory ltm = bm.getLeftTupleMemory();
            RightTupleMemory rtm = bm.getRightTupleMemory();
            ContextEntry[] contextEntry = bm.getContext();
            BetaConstraints constraints = notNode.getRawConstraints();
            FastIterator it = notNode.getRightIterator( rtm );

            for ( RightTuple rightTuple = srcRightTuples.getDeleteFirst(); rightTuple != null; ) {
                RightTuple next = rightTuple.getStagedNext();

                // assign now, so we can remove from memory before doing any possible propagations
                boolean useComparisonIndex = rtm.getIndexType().isComparison();
                RightTuple rootBlocker = useComparisonIndex ? null : (RightTuple) it.next(rightTuple);

                if rightTuple.getMemory() != null ) {
                    // it may have been staged and never actually added
                    rtm.remove( rightTuple );
                }

                if ( rightTuple.getBlocked() != null ) {
                    PropagationContext context = rightTuple.getPropagationContext();
   
                    for ( LeftTuple leftTuple = rightTuple.getBlocked(); leftTuple != null; ) {
                        LeftTuple temp = leftTuple.getBlockedNext();
   
                        leftTuple.clearBlocker();
                       
                        if ( leftTuple.getStagedType() == LeftTuple.UPDATE ) {
                            // ignore, as it will get processed via left iteration. Children cannot be processed twice
                            leftTuple = temp;
                            continue;                       
                        }                       
   
                        constraints.updateFromTuple( contextEntry,
                                                     wm,
                                                     leftTuple );

                        if (useComparisonIndex) {
                            rootBlocker = rtm.getFirst( leftTuple, (InternalFactHandle) context.getFactHandle(), it );
                        }

                        // we know that older tuples have been checked so continue next
                        for ( RightTuple newBlocker = rootBlocker; newBlocker != null; newBlocker = (RightTuple) it.next( newBlocker ) ) {
                            if ( constraints.isAllowedCachedLeft( contextEntry,
View Full Code Here

            boolean tupleMemoryEnabled = true;

            Accumulate accumulate = accNode.getAccumulate();           
            BetaMemory bm = am.getBetaMemory();
            LeftTupleMemory ltm = bm.getLeftTupleMemory();
            RightTupleMemory rtm = bm.getRightTupleMemory();
            ContextEntry[] contextEntry = bm.getContext();
            BetaConstraints constraints = accNode.getRawConstraints();
            FastIterator it = accNode.getRightIterator( rtm );

            for ( LeftTuple leftTuple = srcLeftTuples.getInsertFirst(); leftTuple != null; ) {
View Full Code Here

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