[4012] | 1 | #region License Information
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| 2 | /* HeuristicLab
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[5445] | 3 | * Copyright (C) 2002-2011 Heuristic and Evolutionary Algorithms Laboratory (HEAL)
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[4012] | 4 | *
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| 5 | * This file is part of HeuristicLab.
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| 6 | *
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| 7 | * HeuristicLab is free software: you can redistribute it and/or modify
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| 8 | * it under the terms of the GNU General Public License as published by
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| 9 | * the Free Software Foundation, either version 3 of the License, or
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| 10 | * (at your option) any later version.
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| 11 | *
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| 12 | * HeuristicLab is distributed in the hope that it will be useful,
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| 13 | * but WITHOUT ANY WARRANTY; without even the implied warranty of
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| 14 | * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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| 15 | * GNU General Public License for more details.
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| 16 | *
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| 17 | * You should have received a copy of the GNU General Public License
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| 18 | * along with HeuristicLab. If not, see <http://www.gnu.org/licenses/>.
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| 19 | */
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| 20 | #endregion
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| 21 |
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| 22 | using System;
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[4017] | 23 | using System.Linq;
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[4068] | 24 | using HeuristicLab.Analysis;
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[4012] | 25 | using HeuristicLab.Common;
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| 26 | using HeuristicLab.Core;
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| 27 | using HeuristicLab.Data;
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[5356] | 28 | using HeuristicLab.Operators;
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[4012] | 29 | using HeuristicLab.Optimization;
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[4068] | 30 | using HeuristicLab.Optimization.Operators;
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[4012] | 31 | using HeuristicLab.Parameters;
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| 32 | using HeuristicLab.Persistence.Default.CompositeSerializers.Storable;
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[4068] | 33 | using HeuristicLab.PluginInfrastructure;
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[4017] | 34 | using HeuristicLab.Random;
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[4012] | 35 |
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| 36 | namespace HeuristicLab.Algorithms.NSGA2 {
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| 37 | /// <summary>
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| 38 | /// The Nondominated Sorting Genetic Algorithm II was introduced in Deb et al. 2002. A Fast and Elitist Multiobjective Genetic Algorithm: NSGA-II. IEEE Transactions on Evolutionary Computation, 6(2), pp. 182-197.
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| 39 | /// </summary>
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[4017] | 40 | [Item("NSGA-II", "The Nondominated Sorting Genetic Algorithm II was introduced in Deb et al. 2002. A Fast and Elitist Multiobjective Genetic Algorithm: NSGA-II. IEEE Transactions on Evolutionary Computation, 6(2), pp. 182-197.")]
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[4012] | 41 | [Creatable("Algorithms")]
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| 42 | [StorableClass]
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[5809] | 43 | public class NSGA2 : HeuristicOptimizationEngineAlgorithm, IStorableContent {
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[5366] | 44 | public string Filename { get; set; }
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| 45 |
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[4012] | 46 | #region Problem Properties
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| 47 | public override Type ProblemType {
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[5809] | 48 | get { return typeof(IMultiObjectiveHeuristicOptimizationProblem); }
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[4012] | 49 | }
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[5809] | 50 | public new IMultiObjectiveHeuristicOptimizationProblem Problem {
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| 51 | get { return (IMultiObjectiveHeuristicOptimizationProblem)base.Problem; }
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[4012] | 52 | set { base.Problem = value; }
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| 53 | }
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| 54 | #endregion
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| 55 |
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| 56 | #region Parameter Properties
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[4017] | 57 | private ValueParameter<IntValue> SeedParameter {
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| 58 | get { return (ValueParameter<IntValue>)Parameters["Seed"]; }
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[4012] | 59 | }
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[4017] | 60 | private ValueParameter<BoolValue> SetSeedRandomlyParameter {
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| 61 | get { return (ValueParameter<BoolValue>)Parameters["SetSeedRandomly"]; }
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| 62 | }
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| 63 | private ValueParameter<IntValue> PopulationSizeParameter {
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| 64 | get { return (ValueParameter<IntValue>)Parameters["PopulationSize"]; }
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| 65 | }
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| 66 | private ConstrainedValueParameter<ISelector> SelectorParameter {
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| 67 | get { return (ConstrainedValueParameter<ISelector>)Parameters["Selector"]; }
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| 68 | }
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| 69 | private ValueParameter<PercentValue> CrossoverProbabilityParameter {
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| 70 | get { return (ValueParameter<PercentValue>)Parameters["CrossoverProbability"]; }
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| 71 | }
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| 72 | private ConstrainedValueParameter<ICrossover> CrossoverParameter {
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| 73 | get { return (ConstrainedValueParameter<ICrossover>)Parameters["Crossover"]; }
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| 74 | }
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| 75 | private ValueParameter<PercentValue> MutationProbabilityParameter {
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| 76 | get { return (ValueParameter<PercentValue>)Parameters["MutationProbability"]; }
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| 77 | }
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| 78 | private OptionalConstrainedValueParameter<IManipulator> MutatorParameter {
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| 79 | get { return (OptionalConstrainedValueParameter<IManipulator>)Parameters["Mutator"]; }
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| 80 | }
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| 81 | private ValueParameter<MultiAnalyzer> AnalyzerParameter {
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| 82 | get { return (ValueParameter<MultiAnalyzer>)Parameters["Analyzer"]; }
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| 83 | }
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| 84 | private ValueParameter<IntValue> MaximumGenerationsParameter {
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| 85 | get { return (ValueParameter<IntValue>)Parameters["MaximumGenerations"]; }
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| 86 | }
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[4514] | 87 | private ValueParameter<IntValue> SelectedParentsParameter {
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| 88 | get { return (ValueParameter<IntValue>)Parameters["SelectedParents"]; }
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| 89 | }
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[4012] | 90 | #endregion
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| 91 |
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| 92 | #region Properties
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[4017] | 93 | public IntValue Seed {
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| 94 | get { return SeedParameter.Value; }
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| 95 | set { SeedParameter.Value = value; }
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| 96 | }
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| 97 | public BoolValue SetSeedRandomly {
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| 98 | get { return SetSeedRandomlyParameter.Value; }
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| 99 | set { SetSeedRandomlyParameter.Value = value; }
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| 100 | }
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| 101 | public IntValue PopulationSize {
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| 102 | get { return PopulationSizeParameter.Value; }
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| 103 | set { PopulationSizeParameter.Value = value; }
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| 104 | }
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| 105 | public ISelector Selector {
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| 106 | get { return SelectorParameter.Value; }
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| 107 | set { SelectorParameter.Value = value; }
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| 108 | }
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| 109 | public PercentValue CrossoverProbability {
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| 110 | get { return CrossoverProbabilityParameter.Value; }
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| 111 | set { CrossoverProbabilityParameter.Value = value; }
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| 112 | }
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| 113 | public ICrossover Crossover {
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| 114 | get { return CrossoverParameter.Value; }
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| 115 | set { CrossoverParameter.Value = value; }
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| 116 | }
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| 117 | public PercentValue MutationProbability {
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| 118 | get { return MutationProbabilityParameter.Value; }
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| 119 | set { MutationProbabilityParameter.Value = value; }
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| 120 | }
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| 121 | public IManipulator Mutator {
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| 122 | get { return MutatorParameter.Value; }
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| 123 | set { MutatorParameter.Value = value; }
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| 124 | }
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| 125 | public MultiAnalyzer Analyzer {
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| 126 | get { return AnalyzerParameter.Value; }
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| 127 | set { AnalyzerParameter.Value = value; }
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| 128 | }
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| 129 | public IntValue MaximumGenerations {
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| 130 | get { return MaximumGenerationsParameter.Value; }
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| 131 | set { MaximumGenerationsParameter.Value = value; }
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| 132 | }
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[4514] | 133 | public IntValue SelectedParents {
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| 134 | get { return SelectedParentsParameter.Value; }
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| 135 | set { SelectedParentsParameter.Value = value; }
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| 136 | }
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[4017] | 137 | private RandomCreator RandomCreator {
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| 138 | get { return (RandomCreator)OperatorGraph.InitialOperator; }
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| 139 | }
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| 140 | private SolutionsCreator SolutionsCreator {
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| 141 | get { return (SolutionsCreator)RandomCreator.Successor; }
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| 142 | }
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[4045] | 143 | private RankAndCrowdingSorter RankAndCrowdingSorter {
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[5356] | 144 | get { return (RankAndCrowdingSorter)((SubScopesCounter)SolutionsCreator.Successor).Successor; }
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[4045] | 145 | }
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[4017] | 146 | private NSGA2MainLoop MainLoop {
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[5366] | 147 | get { return FindMainLoop(RankAndCrowdingSorter.Successor); }
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[4017] | 148 | }
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[4012] | 149 | #endregion
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| 150 |
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[4086] | 151 | [Storable]
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[5143] | 152 | private RankBasedParetoFrontAnalyzer paretoFrontAnalyzer;
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[4086] | 153 |
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[4012] | 154 | [StorableConstructor]
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[4902] | 155 | protected NSGA2(bool deserializing) : base(deserializing) { }
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[5356] | 156 | protected NSGA2(NSGA2 original, Cloner cloner)
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| 157 | : base(original, cloner) {
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[5143] | 158 | paretoFrontAnalyzer = (RankBasedParetoFrontAnalyzer)cloner.Clone(original.paretoFrontAnalyzer);
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[4902] | 159 | AttachEventHandlers();
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| 160 | }
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[4012] | 161 | public NSGA2() {
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[4017] | 162 | Parameters.Add(new ValueParameter<IntValue>("Seed", "The random seed used to initialize the new pseudo random number generator.", new IntValue(0)));
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| 163 | Parameters.Add(new ValueParameter<BoolValue>("SetSeedRandomly", "True if the random seed should be set to a random value, otherwise false.", new BoolValue(true)));
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| 164 | Parameters.Add(new ValueParameter<IntValue>("PopulationSize", "The size of the population of solutions.", new IntValue(100)));
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| 165 | Parameters.Add(new ConstrainedValueParameter<ISelector>("Selector", "The operator used to select solutions for reproduction."));
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[4045] | 166 | Parameters.Add(new ValueParameter<PercentValue>("CrossoverProbability", "The probability that the crossover operator is applied on two parents.", new PercentValue(0.9)));
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[4017] | 167 | Parameters.Add(new ConstrainedValueParameter<ICrossover>("Crossover", "The operator used to cross solutions."));
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| 168 | Parameters.Add(new ValueParameter<PercentValue>("MutationProbability", "The probability that the mutation operator is applied on a solution.", new PercentValue(0.05)));
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| 169 | Parameters.Add(new OptionalConstrainedValueParameter<IManipulator>("Mutator", "The operator used to mutate solutions."));
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| 170 | Parameters.Add(new ValueParameter<MultiAnalyzer>("Analyzer", "The operator used to analyze each generation.", new MultiAnalyzer()));
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| 171 | Parameters.Add(new ValueParameter<IntValue>("MaximumGenerations", "The maximum number of generations which should be processed.", new IntValue(1000)));
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[4514] | 172 | Parameters.Add(new ValueParameter<IntValue>("SelectedParents", "Each two parents form a new child, typically this value should be twice the population size, but because the NSGA-II is maximally elitist it can be any multiple of 2 greater than 0.", new IntValue(200)));
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[4017] | 173 |
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| 174 | RandomCreator randomCreator = new RandomCreator();
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| 175 | SolutionsCreator solutionsCreator = new SolutionsCreator();
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[5356] | 176 | SubScopesCounter subScopesCounter = new SubScopesCounter();
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[4045] | 177 | RankAndCrowdingSorter rankAndCrowdingSorter = new RankAndCrowdingSorter();
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[5356] | 178 | ResultsCollector resultsCollector = new ResultsCollector();
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[4017] | 179 | NSGA2MainLoop mainLoop = new NSGA2MainLoop();
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[5356] | 180 |
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[4017] | 181 | OperatorGraph.InitialOperator = randomCreator;
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| 182 |
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| 183 | randomCreator.RandomParameter.ActualName = "Random";
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| 184 | randomCreator.SeedParameter.ActualName = SeedParameter.Name;
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| 185 | randomCreator.SeedParameter.Value = null;
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| 186 | randomCreator.SetSeedRandomlyParameter.ActualName = SetSeedRandomlyParameter.Name;
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| 187 | randomCreator.SetSeedRandomlyParameter.Value = null;
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| 188 | randomCreator.Successor = solutionsCreator;
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| 189 |
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| 190 | solutionsCreator.NumberOfSolutionsParameter.ActualName = PopulationSizeParameter.Name;
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[5356] | 191 | solutionsCreator.Successor = subScopesCounter;
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[4017] | 192 |
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[5356] | 193 | subScopesCounter.Name = "Initialize EvaluatedSolutions";
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| 194 | subScopesCounter.ValueParameter.ActualName = "EvaluatedSolutions";
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| 195 | subScopesCounter.Successor = rankAndCrowdingSorter;
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| 196 |
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[4045] | 197 | rankAndCrowdingSorter.CrowdingDistanceParameter.ActualName = "CrowdingDistance";
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| 198 | rankAndCrowdingSorter.RankParameter.ActualName = "Rank";
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[5356] | 199 | rankAndCrowdingSorter.Successor = resultsCollector;
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[4045] | 200 |
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[5356] | 201 | resultsCollector.CollectedValues.Add(new LookupParameter<IntValue>("Evaluated Solutions", null, "EvaluatedSolutions"));
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| 202 | resultsCollector.ResultsParameter.ActualName = "Results";
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| 203 | resultsCollector.Successor = mainLoop;
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| 204 |
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[4045] | 205 | mainLoop.PopulationSizeParameter.ActualName = PopulationSizeParameter.Name;
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[4017] | 206 | mainLoop.SelectorParameter.ActualName = SelectorParameter.Name;
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| 207 | mainLoop.CrossoverParameter.ActualName = CrossoverParameter.Name;
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| 208 | mainLoop.CrossoverProbabilityParameter.ActualName = CrossoverProbabilityParameter.Name;
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| 209 | mainLoop.MaximumGenerationsParameter.ActualName = MaximumGenerationsParameter.Name;
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| 210 | mainLoop.MutatorParameter.ActualName = MutatorParameter.Name;
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| 211 | mainLoop.MutationProbabilityParameter.ActualName = MutationProbabilityParameter.Name;
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| 212 | mainLoop.RandomParameter.ActualName = RandomCreator.RandomParameter.ActualName;
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| 213 | mainLoop.AnalyzerParameter.ActualName = AnalyzerParameter.Name;
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| 214 | mainLoop.ResultsParameter.ActualName = "Results";
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[5356] | 215 | mainLoop.EvaluatedSolutionsParameter.ActualName = "EvaluatedSolutions";
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[4017] | 216 |
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[4045] | 217 | foreach (ISelector selector in ApplicationManager.Manager.GetInstances<ISelector>().Where(x => !(x is ISingleObjectiveSelector)).OrderBy(x => x.Name))
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[4017] | 218 | SelectorParameter.ValidValues.Add(selector);
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[4045] | 219 | ISelector tournamentSelector = SelectorParameter.ValidValues.FirstOrDefault(x => x.GetType().Name.Equals("CrowdedTournamentSelector"));
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| 220 | if (tournamentSelector != null) SelectorParameter.Value = tournamentSelector;
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[4017] | 221 |
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[4045] | 222 | ParameterizeSelectors();
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| 223 |
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[5143] | 224 | paretoFrontAnalyzer = new RankBasedParetoFrontAnalyzer();
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| 225 | paretoFrontAnalyzer.RankParameter.ActualName = "Rank";
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| 226 | paretoFrontAnalyzer.RankParameter.Depth = 1;
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| 227 | paretoFrontAnalyzer.ResultsParameter.ActualName = "Results";
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[4086] | 228 | ParameterizeAnalyzers();
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| 229 | UpdateAnalyzers();
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| 230 |
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[4017] | 231 | AttachEventHandlers();
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[4012] | 232 | }
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| 233 |
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| 234 | public override IDeepCloneable Clone(Cloner cloner) {
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[5356] | 235 | return new NSGA2(this, cloner);
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[4012] | 236 | }
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[4017] | 237 |
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| 238 | #region Events
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| 239 | protected override void OnProblemChanged() {
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[4045] | 240 | ParameterizeStochasticOperator(Problem.SolutionCreator);
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| 241 | ParameterizeStochasticOperator(Problem.Evaluator);
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| 242 | foreach (IOperator op in Problem.Operators) ParameterizeStochasticOperator(op);
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| 243 | ParameterizeSolutionsCreator();
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[4067] | 244 | ParameterizeRankAndCrowdingSorter();
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[4045] | 245 | ParameterizeMainLoop();
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| 246 | ParameterizeSelectors();
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| 247 | ParameterizeAnalyzers();
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| 248 | ParameterizeIterationBasedOperators();
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| 249 | UpdateCrossovers();
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| 250 | UpdateMutators();
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| 251 | UpdateAnalyzers();
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| 252 | Problem.Evaluator.QualitiesParameter.ActualNameChanged += new EventHandler(Evaluator_QualitiesParameter_ActualNameChanged);
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[4017] | 253 | base.OnProblemChanged();
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| 254 | }
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| 255 | protected override void Problem_SolutionCreatorChanged(object sender, EventArgs e) {
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[4045] | 256 | ParameterizeStochasticOperator(Problem.SolutionCreator);
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| 257 | ParameterizeSolutionsCreator();
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[4017] | 258 | base.Problem_SolutionCreatorChanged(sender, e);
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| 259 | }
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| 260 | protected override void Problem_EvaluatorChanged(object sender, EventArgs e) {
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[4045] | 261 | ParameterizeStochasticOperator(Problem.Evaluator);
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| 262 | ParameterizeSolutionsCreator();
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[4067] | 263 | ParameterizeRankAndCrowdingSorter();
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[4045] | 264 | ParameterizeMainLoop();
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| 265 | ParameterizeSelectors();
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| 266 | ParameterizeAnalyzers();
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[4017] | 267 | Problem.Evaluator.QualitiesParameter.ActualNameChanged += new EventHandler(Evaluator_QualitiesParameter_ActualNameChanged);
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| 268 | base.Problem_EvaluatorChanged(sender, e);
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| 269 | }
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| 270 | protected override void Problem_OperatorsChanged(object sender, EventArgs e) {
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[4045] | 271 | foreach (IOperator op in Problem.Operators) ParameterizeStochasticOperator(op);
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| 272 | ParameterizeIterationBasedOperators();
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| 273 | UpdateCrossovers();
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| 274 | UpdateMutators();
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| 275 | UpdateAnalyzers();
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[4017] | 276 | base.Problem_OperatorsChanged(sender, e);
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| 277 | }
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| 278 | protected override void Problem_Reset(object sender, EventArgs e) {
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| 279 | base.Problem_Reset(sender, e);
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| 280 | }
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| 281 | private void PopulationSizeParameter_ValueChanged(object sender, EventArgs e) {
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| 282 | PopulationSize.ValueChanged += new EventHandler(PopulationSize_ValueChanged);
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[4045] | 283 | ParameterizeSelectors();
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[4017] | 284 | }
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| 285 | private void PopulationSize_ValueChanged(object sender, EventArgs e) {
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[4045] | 286 | ParameterizeSelectors();
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[4017] | 287 | }
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| 288 | private void Evaluator_QualitiesParameter_ActualNameChanged(object sender, EventArgs e) {
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[4067] | 289 | ParameterizeRankAndCrowdingSorter();
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[4045] | 290 | ParameterizeMainLoop();
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| 291 | ParameterizeSelectors();
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| 292 | ParameterizeAnalyzers();
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[4017] | 293 | }
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[4514] | 294 | private void SelectedParentsParameter_ValueChanged(object sender, EventArgs e) {
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| 295 | SelectedParents.ValueChanged += new EventHandler(SelectedParents_ValueChanged);
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| 296 | SelectedParents_ValueChanged(null, EventArgs.Empty);
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| 297 | }
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| 298 | private void SelectedParents_ValueChanged(object sender, EventArgs e) {
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| 299 | if (SelectedParents.Value < 2) SelectedParents.Value = 2;
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| 300 | else if (SelectedParents.Value % 2 != 0) {
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| 301 | SelectedParents.Value = SelectedParents.Value + 1;
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| 302 | }
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| 303 | }
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[4017] | 304 | #endregion
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| 305 |
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| 306 | #region Helpers
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| 307 | [StorableHook(HookType.AfterDeserialization)]
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| 308 | private void AttachEventHandlers() {
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| 309 | PopulationSizeParameter.ValueChanged += new EventHandler(PopulationSizeParameter_ValueChanged);
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| 310 | PopulationSize.ValueChanged += new EventHandler(PopulationSize_ValueChanged);
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[4514] | 311 | SelectedParentsParameter.ValueChanged += new EventHandler(SelectedParentsParameter_ValueChanged);
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| 312 | SelectedParents.ValueChanged += new EventHandler(SelectedParents_ValueChanged);
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[4017] | 313 | if (Problem != null) {
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| 314 | Problem.Evaluator.QualitiesParameter.ActualNameChanged += new EventHandler(Evaluator_QualitiesParameter_ActualNameChanged);
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| 315 | }
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| 316 | }
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[4045] | 317 | private void ParameterizeSolutionsCreator() {
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| 318 | SolutionsCreator.EvaluatorParameter.ActualName = Problem.EvaluatorParameter.Name;
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| 319 | SolutionsCreator.SolutionCreatorParameter.ActualName = Problem.SolutionCreatorParameter.Name;
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| 320 | }
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[4067] | 321 | private void ParameterizeRankAndCrowdingSorter() {
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| 322 | RankAndCrowdingSorter.MaximizationParameter.ActualName = Problem.MaximizationParameter.Name;
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| 323 | RankAndCrowdingSorter.QualitiesParameter.ActualName = Problem.Evaluator.QualitiesParameter.ActualName;
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| 324 | }
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[4045] | 325 | private void ParameterizeMainLoop() {
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| 326 | MainLoop.EvaluatorParameter.ActualName = Problem.EvaluatorParameter.Name;
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| 327 | MainLoop.MaximizationParameter.ActualName = Problem.MaximizationParameter.Name;
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| 328 | MainLoop.QualitiesParameter.ActualName = Problem.Evaluator.QualitiesParameter.ActualName;
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| 329 | }
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| 330 | private void ParameterizeStochasticOperator(IOperator op) {
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| 331 | if (op is IStochasticOperator)
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| 332 | ((IStochasticOperator)op).RandomParameter.ActualName = RandomCreator.RandomParameter.ActualName;
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| 333 | }
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| 334 | private void ParameterizeSelectors() {
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| 335 | foreach (ISelector selector in SelectorParameter.ValidValues) {
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| 336 | selector.CopySelected = new BoolValue(true);
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[4514] | 337 | selector.NumberOfSelectedSubScopesParameter.ActualName = SelectedParentsParameter.Name;
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[4045] | 338 | ParameterizeStochasticOperator(selector);
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| 339 | }
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| 340 | if (Problem != null) {
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| 341 | foreach (IMultiObjectiveSelector selector in SelectorParameter.ValidValues.OfType<IMultiObjectiveSelector>()) {
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| 342 | selector.MaximizationParameter.ActualName = Problem.MaximizationParameter.Name;
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| 343 | selector.QualitiesParameter.ActualName = Problem.Evaluator.QualitiesParameter.ActualName;
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| 344 | }
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| 345 | }
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| 346 | }
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| 347 | private void ParameterizeAnalyzers() {
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[4086] | 348 | if (Problem != null) {
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[5143] | 349 | paretoFrontAnalyzer.QualitiesParameter.ActualName = Problem.Evaluator.QualitiesParameter.ActualName;
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| 350 | paretoFrontAnalyzer.QualitiesParameter.Depth = 1;
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[4086] | 351 | }
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[4045] | 352 | }
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| 353 | private void ParameterizeIterationBasedOperators() {
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| 354 | if (Problem != null) {
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| 355 | foreach (IIterationBasedOperator op in Problem.Operators.OfType<IIterationBasedOperator>()) {
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| 356 | op.IterationsParameter.ActualName = "Generations";
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| 357 | op.MaximumIterationsParameter.ActualName = "MaximumGenerations";
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| 358 | }
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| 359 | }
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| 360 | }
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| 361 | private void UpdateCrossovers() {
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| 362 | ICrossover oldCrossover = CrossoverParameter.Value;
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| 363 | CrossoverParameter.ValidValues.Clear();
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| 364 | foreach (ICrossover crossover in Problem.Operators.OfType<ICrossover>().OrderBy(x => x.Name))
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| 365 | CrossoverParameter.ValidValues.Add(crossover);
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| 366 | if (oldCrossover != null) {
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| 367 | ICrossover crossover = CrossoverParameter.ValidValues.FirstOrDefault(x => x.GetType() == oldCrossover.GetType());
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| 368 | if (crossover != null) CrossoverParameter.Value = crossover;
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| 369 | }
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| 370 | }
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| 371 | private void UpdateMutators() {
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| 372 | IManipulator oldMutator = MutatorParameter.Value;
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| 373 | MutatorParameter.ValidValues.Clear();
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| 374 | foreach (IManipulator mutator in Problem.Operators.OfType<IManipulator>().OrderBy(x => x.Name))
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| 375 | MutatorParameter.ValidValues.Add(mutator);
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| 376 | if (oldMutator != null) {
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| 377 | IManipulator mutator = MutatorParameter.ValidValues.FirstOrDefault(x => x.GetType() == oldMutator.GetType());
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| 378 | if (mutator != null) MutatorParameter.Value = mutator;
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| 379 | }
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| 380 | }
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| 381 | private void UpdateAnalyzers() {
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| 382 | Analyzer.Operators.Clear();
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| 383 | if (Problem != null) {
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| 384 | foreach (IAnalyzer analyzer in Problem.Operators.OfType<IAnalyzer>()) {
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| 385 | foreach (IScopeTreeLookupParameter param in analyzer.Parameters.OfType<IScopeTreeLookupParameter>())
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| 386 | param.Depth = 1;
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| 387 | Analyzer.Operators.Add(analyzer);
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| 388 | }
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| 389 | }
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[5143] | 390 | Analyzer.Operators.Add(paretoFrontAnalyzer);
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[4045] | 391 | }
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[5366] | 392 | private NSGA2MainLoop FindMainLoop(IOperator start) {
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| 393 | IOperator mainLoop = start;
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| 394 | while (mainLoop != null && !(mainLoop is NSGA2MainLoop))
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| 395 | mainLoop = ((SingleSuccessorOperator)mainLoop).Successor;
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| 396 | if (mainLoop == null) return null;
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| 397 | else return (NSGA2MainLoop)mainLoop;
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| 398 | }
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[4017] | 399 | #endregion
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[4012] | 400 | }
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| 401 | }
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