Module io.jenetics.ext
Package io.jenetics.ext.moea
Class NSGA2Selector<G extends Gene<?,G>,C extends Comparable<? super C>>
java.lang.Object
io.jenetics.ext.moea.NSGA2Selector<G,C>
- All Implemented Interfaces:
Selector<G,C>
public class NSGA2Selector<G extends Gene<?,G>,C extends Comparable<? super C>>
extends Object
implements Selector<G,C>
This selector selects the first
count elements of the population,
which has been sorted by the Crowded-Comparison Operator, as
described in
A Fast and Elitist Multiobjective Genetic Algorithm: NSGA-II
Reference: K. Deb, A. Pratap, S. Agarwal, and T. Meyarivan. 2002. A fast and elitist multiobjective genetic algorithm: NSGA-II. Trans. Evol. Comp 6, 2 (April 2002), 182-197. DOI= 10.1109/4235.996017
- Since:
- 4.1
- Version:
- 4.1
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Constructor Summary
ConstructorsConstructorDescriptionNSGA2Selector(Comparator<? super C> dominance, ElementComparator<? super C> comparator, ElementDistance<? super C> distance, ToIntFunction<? super C> dimension) Creates a newNSGA2Selectorwith the functions needed for handling the multi-objective result typeC. -
Method Summary
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Constructor Details
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NSGA2Selector
public NSGA2Selector(Comparator<? super C> dominance, ElementComparator<? super C> comparator, ElementDistance<? super C> distance, ToIntFunction<? super C> dimension) Creates a newNSGA2Selectorwith the functions needed for handling the multi-objective result typeC. For theVecclasses, a selector is created like in the following example:new NSGA2Selector<>( Vec<T>::dominance, Vec<T>::compare, Vec<T>::distance, Vec<T>::length );- Parameters:
dominance- the pareto dominance comparatorcomparator- the vector element comparatordistance- the vector element distancedimension- the dimensionality of vector typeC- See Also:
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Method Details
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select
Description copied from interface:SelectorSelect phenotypes from the Population.- Specified by:
selectin interfaceSelector<G extends Gene<?,G>, C extends Comparable<? super C>> - Parameters:
population- The population to select from.count- The number of phenotypes to select.opt- Determines whether the individuals with higher fitness values or lower fitness values must be selected. This parameter determines whether the GA maximizes or minimizes the fitness function.- Returns:
- The selected phenotypes (a new Population).
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ofVec
Return a new selector for the given result typeV. This method is a shortcut fornew NSGA2Selector<>( Vec<T>::dominance, Vec<T>::compare, Vec<T>::distance, Vec<T>::length );- Type Parameters:
G- the gene typeT- the array type, e.g.double[]V- the multi object result type vector- Returns:
- a new selector for the given result type
V
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