Class OrderTreeNode
- java.lang.Object
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- ec.gp.GPNode
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- ec.app.ordertree.func.OrderTreeNode
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- All Implemented Interfaces:
- GPNodeParent, Prototype, Setup, java.io.Serializable, java.lang.Cloneable
- Direct Known Subclasses:
- OrderTreeF0, OrderTreeF1, OrderTreeF2, OrderTreeF3, OrderTreeF4, OrderTreeF5, OrderTreeF6, OrderTreeF7, OrderTreeF8, OrderTreeF9, OrderTreeT0, OrderTreeT1, OrderTreeT2, OrderTreeT3, OrderTreeT4, OrderTreeT5, OrderTreeT6, OrderTreeT7, OrderTreeT8, OrderTreeT9
public abstract class OrderTreeNode extends GPNode
- See Also:
- Serialized Form
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Field Summary
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Fields inherited from class ec.gp.GPNode
argposition, children, CHILDREN_UNKNOWN, constraints, GPNODEPRINTTAB, MAXPRINTBYTES, NODESEARCH_ALL, NODESEARCH_NONTERMINALS, NODESEARCH_TERMINALS, P_NODE, P_NODECONSTRAINTS, parent
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Constructor Summary
Constructors Constructor and Description OrderTreeNode()
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Method Summary
All Methods Instance Methods Abstract Methods Concrete Methods Modifier and Type Method and Description voideval(EvolutionState state, int thread, GPData input, ADFStack stack, GPIndividual individual, Problem problem)Evaluates the node with the given thread, state, individual, problem, and stack.java.lang.StringtoString()Returns a Lisp-like atom for the node which can be read in again by computer.abstract intvalue()-
Methods inherited from class ec.gp.GPNode
atDepth, checkConstraints, clone, cloneReplacing, cloneReplacing, cloneReplacing, cloneReplacingAtomic, cloneReplacingAtomic, cloneReplacingNoSubclone, constraints, contains, defaultBase, depth, errorInfo, expectedChildren, iterator, iterator, iterator, lightClone, makeCTree, makeGraphvizTree, makeLatexTree, makeLispTree, makeLispTree, name, nodeEquals, nodeEquivalentTo, nodeHashCode, nodeInPosition, nodeInPosition, numNodes, numNodes, parentType, pathLength, printNode, printNode, printNode, printNodeForHumans, printNodeForHumans, printRootedTree, printRootedTree, printRootedTree, printRootedTreeForHumans, printRootedTreeForHumans, readNode, readNode, readRootedTree, readRootedTree, replaceWith, resetNode, rootedTreeEquals, rootedTreeHashCode, rootParent, setup, swapCompatibleWith, toStringForError, toStringForHumans, writeNode, writeRootedTree
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Method Detail
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value
public abstract int value()
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toString
public java.lang.String toString()
Description copied from class:GPNodeReturns a Lisp-like atom for the node which can be read in again by computer. If you need to encode an integer or a float or whatever for some reason (perhaps if it's an ERC), you should use the ec.util.Code library.
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eval
public void eval(EvolutionState state, int thread, GPData input, ADFStack stack, GPIndividual individual, Problem problem)
Description copied from class:GPNodeEvaluates the node with the given thread, state, individual, problem, and stack. Your random number generator will be state.random[thread]. The node should, as appropriate, evaluate child nodes with these same items passed to eval(...).About input: input is special; it is how data is passed between parent and child nodes. If children "receive" data from their parent node when it evaluates them, they should receive this data stored in input. If (more likely) the parent "receives" results from its children, it should pass them an input object, which they'll fill out, then it should check this object for the returned value.
A tree is typically evaluated by dropping a GPData into the root. When the root returns, the resultant input should hold the return value.
In general, you should not be creating new GPDatas. If you think about it, in most conditions (excepting ADFs and ADMs) you can use and reuse input for most communications purposes between parents and children.
So, let's say that your GPNode function implements the boolean AND function, and expects its children to return return boolean values (as it does itself). You've implemented your GPData subclass to be, uh, BooleanData, which looks like
public class BooleanData extends GPData { public boolean result; public GPData copyTo(GPData gpd) { ((BooleanData)gpd).result = result; } }...so, you might implement your eval(...) function as follows:
public void eval(final EvolutionState state, final int thread, final GPData input, final ADFStack stack, final GPIndividual individual, final Problem problem { BooleanData dat = (BooleanData)input; boolean x; // evaluate the first child children[0].eval(state,thread,input,stack,individual,problem); // store away its result x = dat.result; // evaluate the second child children[1].eval(state,thread,input,stack,individual,problem); // return (in input) the result of the two ANDed dat.result = dat.result && x; return; }
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