1 | #region License Information
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2 | /* HeuristicLab
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3 | * Copyright (C) 2002-2016 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 HEAL.Attic;
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23 | using HeuristicLab.Analysis;
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24 | using HeuristicLab.Common;
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25 | using HeuristicLab.Core;
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26 | using HeuristicLab.Operators;
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27 | using HeuristicLab.Optimization;
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28 | using HeuristicLab.Parameters;
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29 | using HeuristicLab.Problems.DataAnalysis;
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30 |
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31 | namespace HeuristicLab.Algorithms.EGO {
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32 | [Item("ModelQualityAnalyzer", "Collects RealVectors into a modifiablbe dataset")]
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33 | [StorableType("12c5a773-4397-45eb-ad25-0ffc897513f8")]
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34 | public class ModelQualityAnalyzer : SingleSuccessorOperator, IAnalyzer, IResultsOperator {
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35 | public override bool CanChangeName => true;
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36 | public bool EnabledByDefault => false;
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37 |
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38 | public ILookupParameter<IRegressionSolution> ModelParameter => (ILookupParameter<IRegressionSolution>)Parameters["Model"];
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39 | public ILookupParameter<ResultCollection> ResultsParameter => (ILookupParameter<ResultCollection>)Parameters["Results"];
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40 |
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41 | private const string PlotName = "Model Quality Values";
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42 | private const string R2RowName = "Training R²";
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43 | private const string MAERowName = "Training Mean Absolute Error";
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44 | private const string RMSERowName = "Training Root Mean Squared Error";
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45 | private const string ModelResultName = "Model";
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46 |
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47 |
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48 | [StorableConstructor]
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49 | protected ModelQualityAnalyzer(StorableConstructorFlag deserializing) : base(deserializing) { }
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50 | protected ModelQualityAnalyzer(ModelQualityAnalyzer original, Cloner cloner) : base(original, cloner) { }
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51 | public ModelQualityAnalyzer() {
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52 | Parameters.Add(new LookupParameter<IRegressionSolution>("Model", "The model of this iteration"));
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53 | Parameters.Add(new LookupParameter<ResultCollection>("Results", "The collection to store the results in."));
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54 | }
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55 |
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56 | public override IDeepCloneable Clone(Cloner cloner) {
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57 | return new ModelQualityAnalyzer(this, cloner);
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58 | }
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59 |
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60 | public sealed override IOperation Apply() {
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61 | var model = ModelParameter.ActualValue;
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62 | var results = ResultsParameter.ActualValue;
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63 | if (model == null) return base.Apply();
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64 | var plot = CreateDataTableResult(results);
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65 | plot.Rows[R2RowName].Values.Add(model.TrainingRSquared);
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66 | plot.Rows[MAERowName].Values.Add(model.TrainingMeanAbsoluteError);
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67 | plot.Rows[RMSERowName].Values.Add(model.TrainingRootMeanSquaredError);
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68 | if (!results.ContainsKey(ModelResultName)) results.Add(new Result(ModelResultName, model));
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69 | results[ModelResultName].Value = model;
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70 | return base.Apply();
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71 | }
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72 |
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73 | private static DataTable CreateDataTableResult(ResultCollection results) {
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74 | DataTable plot;
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75 | if (!results.ContainsKey(PlotName)) {
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76 | plot = new DataTable("Model-Quality-Measures", "The quality measures of the models on the training data") {
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77 | VisualProperties = {
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78 | XAxisTitle = "Generation",
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79 | }
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80 | };
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81 | results.Add(new Result(PlotName, plot));
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82 | } else plot = (DataTable)results[PlotName].Value;
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83 | if (!plot.Rows.ContainsKey(R2RowName)) plot.Rows.Add(new DataRow(R2RowName, R2RowName, new double[0]));
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84 | if (!plot.Rows.ContainsKey(MAERowName)) plot.Rows.Add(new DataRow(MAERowName, MAERowName, new double[0]));
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85 | if (!plot.Rows.ContainsKey(RMSERowName)) plot.Rows.Add(new DataRow(RMSERowName, RMSERowName, new double[0]));
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86 |
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87 | return plot;
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88 | }
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89 |
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90 | }
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91 | }
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