[3666] | 1 | #region License Information
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| 2 | /* HeuristicLab
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| 3 | * Copyright (C) 2002-2010 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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[4468] | 22 | using System;
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[4722] | 23 | using HeuristicLab.Common;
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[3666] | 24 | using HeuristicLab.Core;
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| 25 | using HeuristicLab.Data;
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[4068] | 26 | using HeuristicLab.Encodings.SymbolicExpressionTreeEncoding;
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[3666] | 27 | using HeuristicLab.Operators;
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| 28 | using HeuristicLab.Parameters;
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| 29 | using HeuristicLab.Persistence.Default.CompositeSerializers.Storable;
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[4068] | 30 | using HeuristicLab.Problems.DataAnalysis.Evaluators;
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[3666] | 31 | using HeuristicLab.Problems.DataAnalysis.Symbolic;
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| 32 |
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| 33 | namespace HeuristicLab.Problems.DataAnalysis.Regression.Symbolic.Analyzers {
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| 34 | /// <summary>
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| 35 | /// "An operator to calculate the quality values of a symbolic regression solution symbolic expression tree encoding."
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| 36 | /// </summary>
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| 37 | [Item("SymbolicRegressionModelQualityCalculator", "An operator to calculate the quality values of a symbolic regression solution symbolic expression tree encoding.")]
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| 38 | [StorableClass]
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[4468] | 39 | [Obsolete("This class should not be used anymore because of performance reasons and will therefore not be updated.")]
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[3666] | 40 | public sealed class SymbolicRegressionModelQualityCalculator : AlgorithmOperator {
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| 41 | private const string SymbolicExpressionTreeInterpreterParameterName = "SymbolicExpressionTreeInterpreter";
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| 42 | private const string SymbolicExpressionTreeParameterName = "SymbolicExpressionTree";
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| 43 | private const string ProblemDataParameterName = "ProblemData";
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| 44 | private const string ValuesParameterName = "Values";
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| 45 | private const string RSQuaredQualityParameterName = "R-squared";
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| 46 | private const string MeanSquaredErrorQualityParameterName = "Mean Squared Error";
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| 47 | private const string RelativeErrorQualityParameterName = "Relative Error";
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| 48 | private const string SamplesStartParameterName = "SamplesStart";
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| 49 | private const string SamplesEndParameterName = "SamplesEnd";
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| 50 | private const string UpperEstimationLimitParameterName = "UpperEstimationLimit";
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| 51 | private const string LowerEstimationLimitParameterName = "LowerEstimationLimit";
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| 52 |
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| 53 | #region parameter properties
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[3710] | 54 | public ILookupParameter<SymbolicExpressionTree> SymbolicExpressionTreeParameter {
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| 55 | get { return (ILookupParameter<SymbolicExpressionTree>)Parameters[SymbolicExpressionTreeParameterName]; }
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[3683] | 56 | }
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[3681] | 57 | public IValueLookupParameter<ISymbolicExpressionTreeInterpreter> SymbolicExpressionTreeInterpreterParameter {
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| 58 | get { return (IValueLookupParameter<ISymbolicExpressionTreeInterpreter>)Parameters[SymbolicExpressionTreeInterpreterParameterName]; }
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[3666] | 59 | }
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[3681] | 60 | public IValueLookupParameter<DataAnalysisProblemData> ProblemDataParameter {
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| 61 | get { return (IValueLookupParameter<DataAnalysisProblemData>)Parameters[ProblemDataParameterName]; }
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[3666] | 62 | }
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| 63 | public IValueLookupParameter<IntValue> SamplesStartParameter {
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| 64 | get { return (IValueLookupParameter<IntValue>)Parameters[SamplesStartParameterName]; }
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| 65 | }
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| 66 | public IValueLookupParameter<IntValue> SamplesEndParameter {
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| 67 | get { return (IValueLookupParameter<IntValue>)Parameters[SamplesEndParameterName]; }
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| 68 | }
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| 69 | public IValueLookupParameter<DoubleValue> UpperEstimationLimitParameter {
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| 70 | get { return (IValueLookupParameter<DoubleValue>)Parameters[UpperEstimationLimitParameterName]; }
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| 71 | }
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| 72 | public IValueLookupParameter<DoubleValue> LowerEstimationLimitParameter {
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| 73 | get { return (IValueLookupParameter<DoubleValue>)Parameters[LowerEstimationLimitParameterName]; }
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| 74 | }
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[3681] | 75 | public ILookupParameter<DoubleValue> RSquaredQualityParameter {
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| 76 | get { return (ILookupParameter<DoubleValue>)Parameters[RSQuaredQualityParameterName]; }
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[3666] | 77 | }
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[3681] | 78 | public ILookupParameter<DoubleValue> AverageRelativeErrorQualityParameter {
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| 79 | get { return (ILookupParameter<DoubleValue>)Parameters[RelativeErrorQualityParameterName]; }
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[3666] | 80 | }
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[3681] | 81 | public ILookupParameter<DoubleValue> MeanSquaredErrorQualityParameter {
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| 82 | get { return (ILookupParameter<DoubleValue>)Parameters[MeanSquaredErrorQualityParameterName]; }
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[3666] | 83 | }
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| 84 | #endregion
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| 85 |
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[4722] | 86 | [StorableConstructor]
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| 87 | private SymbolicRegressionModelQualityCalculator(bool deserializing) : base(deserializing) { }
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| 88 | private SymbolicRegressionModelQualityCalculator(SymbolicRegressionModelQualityCalculator original, Cloner cloner) : base(original, cloner) { }
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[3666] | 89 | public SymbolicRegressionModelQualityCalculator()
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| 90 | : base() {
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[3710] | 91 | Parameters.Add(new LookupParameter<SymbolicExpressionTree>(SymbolicExpressionTreeParameterName, "The symbolic expression tree to analyze."));
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[3681] | 92 | Parameters.Add(new ValueLookupParameter<ISymbolicExpressionTreeInterpreter>(SymbolicExpressionTreeInterpreterParameterName, "The interpreter that should be used to calculate the output values of the symbolic expression tree."));
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| 93 | Parameters.Add(new ValueLookupParameter<DataAnalysisProblemData>(ProblemDataParameterName, "The problem data containing the input varaibles for the symbolic regression problem."));
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[3666] | 94 | Parameters.Add(new ValueLookupParameter<IntValue>(SamplesStartParameterName, "The first index of the data set partition on which the model quality values should be calculated."));
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| 95 | Parameters.Add(new ValueLookupParameter<IntValue>(SamplesEndParameterName, "The first index of the data set partition on which the model quality values should be calculated."));
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| 96 | Parameters.Add(new ValueLookupParameter<DoubleValue>(UpperEstimationLimitParameterName, "The upper limit that should be used as cut off value for the output values of symbolic expression trees."));
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| 97 | Parameters.Add(new ValueLookupParameter<DoubleValue>(LowerEstimationLimitParameterName, "The lower limit that should be used as cut off value for the output values of symbolic expression trees."));
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| 98 | Parameters.Add(new ValueParameter<DoubleMatrix>(ValuesParameterName, "The matrix of original target values and estimated values of the model."));
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| 99 | Parameters.Add(new ValueLookupParameter<DoubleValue>(MeanSquaredErrorQualityParameterName, "The mean squared error value of the output of the model."));
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| 100 | Parameters.Add(new ValueLookupParameter<DoubleValue>(RSQuaredQualityParameterName, "The R² correlation coefficient of the output of the model and the original target values."));
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| 101 | Parameters.Add(new ValueLookupParameter<DoubleValue>(RelativeErrorQualityParameterName, "The average relative percentage error of the output of the model."));
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[4068] | 102 |
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[3666] | 103 | #region operator initialization
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| 104 | SimpleSymbolicRegressionEvaluator simpleEvaluator = new SimpleSymbolicRegressionEvaluator();
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| 105 | SimpleRSquaredEvaluator simpleR2Evalator = new SimpleRSquaredEvaluator();
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| 106 | SimpleMeanAbsolutePercentageErrorEvaluator simpleRelErrorEvaluator = new SimpleMeanAbsolutePercentageErrorEvaluator();
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| 107 | SimpleMSEEvaluator simpleMseEvaluator = new SimpleMSEEvaluator();
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[3681] | 108 | Assigner clearValues = new Assigner();
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[3666] | 109 | #endregion
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| 110 |
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| 111 | #region parameter wiring
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| 112 | simpleEvaluator.SymbolicExpressionTreeParameter.ActualName = SymbolicExpressionTreeParameter.Name;
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| 113 | simpleEvaluator.RegressionProblemDataParameter.ActualName = ProblemDataParameter.Name;
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| 114 | simpleEvaluator.SamplesStartParameter.ActualName = SamplesStartParameter.Name;
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| 115 | simpleEvaluator.SamplesEndParameter.ActualName = SamplesEndParameter.Name;
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| 116 | simpleEvaluator.LowerEstimationLimitParameter.ActualName = LowerEstimationLimitParameter.Name;
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| 117 | simpleEvaluator.UpperEstimationLimitParameter.ActualName = UpperEstimationLimitParameter.Name;
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| 118 | simpleEvaluator.SymbolicExpressionTreeInterpreterParameter.ActualName = SymbolicExpressionTreeInterpreterParameter.Name;
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| 119 | simpleEvaluator.ValuesParameter.ActualName = ValuesParameterName;
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| 120 |
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| 121 | simpleR2Evalator.ValuesParameter.ActualName = ValuesParameterName;
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| 122 | simpleR2Evalator.RSquaredParameter.ActualName = RSquaredQualityParameter.Name;
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[3683] | 123 |
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[3666] | 124 | simpleMseEvaluator.ValuesParameter.ActualName = ValuesParameterName;
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| 125 | simpleMseEvaluator.MeanSquaredErrorParameter.ActualName = MeanSquaredErrorQualityParameter.Name;
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[3683] | 126 |
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[3666] | 127 | simpleRelErrorEvaluator.ValuesParameter.ActualName = ValuesParameterName;
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| 128 | simpleRelErrorEvaluator.AverageRelativeErrorParameter.ActualName = AverageRelativeErrorQualityParameter.Name;
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[3681] | 129 |
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| 130 | clearValues.LeftSideParameter.ActualName = ValuesParameterName;
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| 131 | clearValues.RightSideParameter.Value = new DoubleMatrix();
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[3666] | 132 | #endregion
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| 133 |
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| 134 | #region operator graph
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| 135 | OperatorGraph.InitialOperator = simpleEvaluator;
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| 136 | simpleEvaluator.Successor = simpleR2Evalator;
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| 137 | simpleR2Evalator.Successor = simpleRelErrorEvaluator;
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| 138 | simpleRelErrorEvaluator.Successor = simpleMseEvaluator;
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[3681] | 139 | simpleMseEvaluator.Successor = clearValues;
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| 140 | clearValues.Successor = null;
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[3666] | 141 | #endregion
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| 142 |
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| 143 | }
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[4722] | 144 | public override IDeepCloneable Clone(Cloner cloner) {
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| 145 | return new SymbolicRegressionModelQualityCalculator(this, cloner);
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| 146 | }
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[3666] | 147 | }
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| 148 | }
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