1 | #region License Information
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2 | /* HeuristicLab
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3 | * Copyright (C) 2002-2011 Heuristic and Evolutionary Algorithms Laboratory (HEAL)
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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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23 | using System.Linq;
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24 | using HeuristicLab.Common;
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25 | using HeuristicLab.Core;
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26 | using HeuristicLab.Data;
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27 | using HeuristicLab.Optimization;
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28 | using HeuristicLab.Parameters;
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29 | using HeuristicLab.Persistence.Default.CompositeSerializers.Storable;
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30 | using HeuristicLab.Problems.DataAnalysis.Regression.Symbolic.Analyzers;
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31 | using HeuristicLab.PluginInfrastructure;
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32 |
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33 | namespace HeuristicLab.Problems.DataAnalysis.Regression.Symbolic {
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34 | [Item("Symbolic Regression Problem (single objective)", "Represents a single objective symbolic regression problem.")]
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35 | [StorableClass]
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36 | [NonDiscoverableType]
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37 | public sealed class SymbolicRegressionProblem : SymbolicRegressionProblemBase, ISingleObjectiveDataAnalysisProblem {
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38 |
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39 | #region Parameter Properties
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40 | public ValueParameter<BoolValue> MaximizationParameter {
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41 | get { return (ValueParameter<BoolValue>)Parameters["Maximization"]; }
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42 | }
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43 | IParameter ISingleObjectiveHeuristicOptimizationProblem.MaximizationParameter {
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44 | get { return MaximizationParameter; }
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45 | }
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46 | public new ValueParameter<ISymbolicRegressionEvaluator> EvaluatorParameter {
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47 | get { return (ValueParameter<ISymbolicRegressionEvaluator>)Parameters["Evaluator"]; }
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48 | }
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49 | IParameter IHeuristicOptimizationProblem.EvaluatorParameter {
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50 | get { return EvaluatorParameter; }
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51 | }
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52 | public OptionalValueParameter<DoubleValue> BestKnownQualityParameter {
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53 | get { return (OptionalValueParameter<DoubleValue>)Parameters["BestKnownQuality"]; }
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54 | }
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55 | IParameter ISingleObjectiveHeuristicOptimizationProblem.BestKnownQualityParameter {
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56 | get { return BestKnownQualityParameter; }
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57 | }
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58 | #endregion
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59 |
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60 | #region Properties
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61 | public new ISymbolicRegressionEvaluator Evaluator {
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62 | get { return EvaluatorParameter.Value; }
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63 | set { EvaluatorParameter.Value = value; }
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64 | }
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65 | ISingleObjectiveEvaluator ISingleObjectiveHeuristicOptimizationProblem.Evaluator {
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66 | get { return EvaluatorParameter.Value; }
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67 | }
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68 | IEvaluator IHeuristicOptimizationProblem.Evaluator {
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69 | get { return EvaluatorParameter.Value; }
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70 | }
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71 | public DoubleValue BestKnownQuality {
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72 | get { return BestKnownQualityParameter.Value; }
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73 | }
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74 | #endregion
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75 |
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76 | [StorableConstructor]
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77 | private SymbolicRegressionProblem(bool deserializing) : base(deserializing) { }
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78 | private SymbolicRegressionProblem(SymbolicRegressionProblem original, Cloner cloner)
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79 | : base(original, cloner) {
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80 | RegisterParameterEvents();
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81 | RegisterParameterValueEvents();
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82 | }
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83 |
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84 | public SymbolicRegressionProblem()
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85 | : base() {
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86 | var evaluator = new SymbolicRegressionPearsonsRSquaredEvaluator();
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87 | Parameters.Add(new ValueParameter<BoolValue>("Maximization", "Set to false as the error of the regression model should be minimized.", (BoolValue)new BoolValue(true)));
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88 | Parameters.Add(new ValueParameter<ISymbolicRegressionEvaluator>("Evaluator", "The operator which should be used to evaluate symbolic regression solutions.", evaluator));
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89 | Parameters.Add(new OptionalValueParameter<DoubleValue>("BestKnownQuality", "The minimal error value that reached by symbolic regression solutions for the problem."));
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90 |
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91 | InitializeOperators();
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92 | ParameterizeEvaluator();
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93 |
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94 | RegisterParameterEvents();
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95 | RegisterParameterValueEvents();
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96 | }
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97 |
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98 | public override IDeepCloneable Clone(Cloner cloner) {
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99 | return new SymbolicRegressionProblem(this, cloner);
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100 | }
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101 |
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102 | private void RegisterParameterValueEvents() {
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103 | EvaluatorParameter.ValueChanged += new EventHandler(EvaluatorParameter_ValueChanged);
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104 | }
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105 |
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106 | private void RegisterParameterEvents() { }
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107 |
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108 | #region event handling
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109 | protected override void OnDataAnalysisProblemChanged(EventArgs e) {
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110 | base.OnDataAnalysisProblemChanged(e);
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111 | BestKnownQualityParameter.Value = null;
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112 | // paritions could be changed
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113 | ParameterizeEvaluator();
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114 | ParameterizeAnalyzers();
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115 | }
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116 |
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117 | protected override void OnSolutionParameterNameChanged(EventArgs e) {
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118 | base.OnSolutionParameterNameChanged(e);
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119 | ParameterizeEvaluator();
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120 | ParameterizeAnalyzers();
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121 | }
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122 |
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123 | protected override void OnEvaluatorChanged(EventArgs e) {
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124 | base.OnEvaluatorChanged(e);
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125 | ParameterizeEvaluator();
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126 | ParameterizeAnalyzers();
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127 | ParameterizeProblem();
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128 | RaiseEvaluatorChanged(e);
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129 | }
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130 | #endregion
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131 |
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132 | #region event handlers
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133 | private void EvaluatorParameter_ValueChanged(object sender, EventArgs e) {
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134 | OnEvaluatorChanged(e);
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135 | }
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136 | #endregion
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137 |
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138 | #region Helpers
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139 | [StorableHook(HookType.AfterDeserialization)]
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140 | private void AfterDeserializationHook() {
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141 | // BackwardsCompatibility3.3
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142 | #region Backwards compatible code (remove with 3.4)
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143 | if (Operators == null || Operators.Count() == 0) InitializeOperators();
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144 | #endregion
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145 | RegisterParameterEvents();
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146 | RegisterParameterValueEvents();
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147 | }
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148 |
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149 | private void InitializeOperators() {
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150 | AddOperator(new FixedValidationBestScaledSymbolicRegressionSolutionAnalyzer());
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151 | AddOperator(new SymbolicRegressionOverfittingAnalyzer());
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152 | AddOperator(new TrainingBestScaledSymbolicRegressionSolutionAnalyzer());
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153 | ParameterizeAnalyzers();
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154 | }
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155 |
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156 | private void ParameterizeEvaluator() {
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157 | Evaluator.SymbolicExpressionTreeParameter.ActualName = SolutionCreator.SymbolicExpressionTreeParameter.ActualName;
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158 | Evaluator.RegressionProblemDataParameter.ActualName = DataAnalysisProblemDataParameter.Name;
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159 | Evaluator.SamplesStartParameter.Value = TrainingSamplesStart;
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160 | Evaluator.SamplesEndParameter.Value = TrainingSamplesEnd;
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161 | }
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162 |
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163 | private void ParameterizeAnalyzers() {
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164 | foreach (var analyzer in Analyzers) {
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165 | analyzer.SymbolicExpressionTreeParameter.ActualName = SolutionCreator.SymbolicExpressionTreeParameter.ActualName;
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166 | var validationSolutionAnalyzer = analyzer as SymbolicRegressionValidationAnalyzer;
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167 | if (validationSolutionAnalyzer != null) {
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168 | validationSolutionAnalyzer.ProblemDataParameter.ActualName = DataAnalysisProblemDataParameter.Name;
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169 | validationSolutionAnalyzer.UpperEstimationLimitParameter.ActualName = UpperEstimationLimitParameter.Name;
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170 | validationSolutionAnalyzer.LowerEstimationLimitParameter.ActualName = LowerEstimationLimitParameter.Name;
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171 | validationSolutionAnalyzer.SymbolicExpressionTreeInterpreterParameter.ActualName = SymbolicExpressionTreeInterpreterParameter.Name;
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172 | validationSolutionAnalyzer.SymbolicExpressionTreeParameter.ActualName = SolutionCreator.SymbolicExpressionTreeParameter.ActualName;
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173 | validationSolutionAnalyzer.ValidationSamplesStartParameter.Value = ValidationSamplesStart;
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174 | validationSolutionAnalyzer.ValidationSamplesEndParameter.Value = ValidationSamplesEnd;
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175 | }
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176 |
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177 | var fixedBestValidationSolutionAnalyzer = analyzer as FixedValidationBestScaledSymbolicRegressionSolutionAnalyzer;
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178 | if (fixedBestValidationSolutionAnalyzer != null) {
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179 | fixedBestValidationSolutionAnalyzer.BestKnownQualityParameter.ActualName = BestKnownQualityParameter.Name;
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180 | }
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181 |
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182 | var bestValidationSolutionAnalyzer = analyzer as ValidationBestScaledSymbolicRegressionSolutionAnalyzer;
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183 | if (bestValidationSolutionAnalyzer != null) {
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184 | bestValidationSolutionAnalyzer.ProblemDataParameter.ActualName = DataAnalysisProblemDataParameter.Name;
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185 | bestValidationSolutionAnalyzer.UpperEstimationLimitParameter.ActualName = UpperEstimationLimitParameter.Name;
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186 | bestValidationSolutionAnalyzer.LowerEstimationLimitParameter.ActualName = LowerEstimationLimitParameter.Name;
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187 | bestValidationSolutionAnalyzer.SymbolicExpressionTreeInterpreterParameter.ActualName = SymbolicExpressionTreeInterpreterParameter.Name;
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188 | bestValidationSolutionAnalyzer.SymbolicExpressionTreeParameter.ActualName = SolutionCreator.SymbolicExpressionTreeParameter.ActualName;
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189 | bestValidationSolutionAnalyzer.ValidationSamplesStartParameter.Value = ValidationSamplesStart;
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190 | bestValidationSolutionAnalyzer.ValidationSamplesEndParameter.Value = ValidationSamplesEnd;
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191 | bestValidationSolutionAnalyzer.BestKnownQualityParameter.ActualName = BestKnownQualityParameter.Name;
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192 | bestValidationSolutionAnalyzer.QualityParameter.ActualName = Evaluator.QualityParameter.ActualName;
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193 | }
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194 | }
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195 | }
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196 |
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197 | private void ParameterizeProblem() {
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198 | if (MaximizationParameter.Value != null) {
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199 | MaximizationParameter.Value.Value = Evaluator.Maximization;
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200 | } else {
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201 | MaximizationParameter.Value = new BoolValue(Evaluator.Maximization);
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202 | }
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203 | }
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204 | #endregion
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205 | }
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206 | }
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