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source: branches/GP.Grammar.Editor/HeuristicLab.Problems.DataAnalysis.Views/3.4/Regression/RegressionSolutionErrorCharacteristicsCurveView.cs @ 6934

Last change on this file since 6934 was 6784, checked in by mkommend, 13 years ago

#1479: Integrated trunk changes.

File size: 9.0 KB
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[4417]1#region License Information
2/* HeuristicLab
[5445]3 * Copyright (C) 2002-2011 Heuristic and Evolutionary Algorithms Laboratory (HEAL)
[4417]4 *
5 * This file is part of HeuristicLab.
6 *
7 * HeuristicLab is free software: you can redistribute it and/or modify
8 * it under the terms of the GNU General Public License as published by
9 * the Free Software Foundation, either version 3 of the License, or
10 * (at your option) any later version.
11 *
12 * HeuristicLab is distributed in the hope that it will be useful,
13 * but WITHOUT ANY WARRANTY; without even the implied warranty of
14 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
15 * GNU General Public License for more details.
16 *
17 * You should have received a copy of the GNU General Public License
18 * along with HeuristicLab. If not, see <http://www.gnu.org/licenses/>.
19 */
20#endregion
21
22using System;
23using System.Collections.Generic;
24using System.Linq;
25using System.Windows.Forms;
26using System.Windows.Forms.DataVisualization.Charting;
27using HeuristicLab.MainForm;
28using HeuristicLab.MainForm.WindowsForms;
[5829]29namespace HeuristicLab.Problems.DataAnalysis.Views {
[6642]30  [View("Error Characteristics Curve")]
31  [Content(typeof(IRegressionSolution))]
32  public partial class RegressionSolutionErrorCharacteristicsCurveView : DataAnalysisSolutionEvaluationView {
33    protected const string TrainingSamples = "Training";
34    protected const string TestSamples = "Test";
35    protected const string AllSamples = "All Samples";
[4417]36
[6642]37    public RegressionSolutionErrorCharacteristicsCurveView()
38      : base() {
[4417]39      InitializeComponent();
40
41      cmbSamples.Items.Add(TrainingSamples);
42      cmbSamples.Items.Add(TestSamples);
[6642]43      cmbSamples.Items.Add(AllSamples);
44
[4417]45      cmbSamples.SelectedIndex = 0;
46
[4651]47      chart.CustomizeAllChartAreas();
[6642]48      chart.ChartAreas[0].AxisX.Title = "Absolute Error";
[4417]49      chart.ChartAreas[0].AxisX.Minimum = 0.0;
50      chart.ChartAreas[0].AxisX.Maximum = 1.0;
[6642]51      chart.ChartAreas[0].AxisX.IntervalAutoMode = IntervalAutoMode.VariableCount;
52      chart.ChartAreas[0].CursorX.Interval = 0.01;
53
54      chart.ChartAreas[0].AxisY.Title = "Number of Samples";
[4417]55      chart.ChartAreas[0].AxisY.Minimum = 0.0;
56      chart.ChartAreas[0].AxisY.Maximum = 1.0;
57      chart.ChartAreas[0].AxisY.MajorGrid.Interval = 0.2;
[6642]58      chart.ChartAreas[0].CursorY.Interval = 0.01;
[4417]59    }
60
[6642]61    public new IRegressionSolution Content {
62      get { return (IRegressionSolution)base.Content; }
[4417]63      set { base.Content = value; }
64    }
[6642]65    public IRegressionProblemData ProblemData {
66      get {
67        if (Content == null) return null;
68        return Content.ProblemData;
69      }
70    }
[4417]71
72    protected override void RegisterContentEvents() {
73      base.RegisterContentEvents();
[5664]74      Content.ModelChanged += new EventHandler(Content_ModelChanged);
[4417]75      Content.ProblemDataChanged += new EventHandler(Content_ProblemDataChanged);
76    }
77    protected override void DeregisterContentEvents() {
78      base.DeregisterContentEvents();
[5664]79      Content.ModelChanged -= new EventHandler(Content_ModelChanged);
[4417]80      Content.ProblemDataChanged -= new EventHandler(Content_ProblemDataChanged);
81    }
82
[6642]83    protected virtual void Content_ModelChanged(object sender, EventArgs e) {
84      if (InvokeRequired) Invoke((Action<object, EventArgs>)Content_ModelChanged, sender, e);
85      else UpdateChart();
[4417]86    }
[6642]87    protected virtual void Content_ProblemDataChanged(object sender, EventArgs e) {
88      if (InvokeRequired) Invoke((Action<object, EventArgs>)Content_ProblemDataChanged, sender, e);
89      else {
90        UpdateChart();
91      }
[4417]92    }
93    protected override void OnContentChanged() {
94      base.OnContentChanged();
[6642]95      UpdateChart();
[4417]96    }
97
[6642]98    protected virtual void UpdateChart() {
99      chart.Series.Clear();
100      chart.Annotations.Clear();
101      if (Content == null) return;
[4417]102
[6642]103      var originalValues = GetOriginalValues();
104      var meanModelEstimatedValues = GetMeanModelEstimatedValues(originalValues);
105      var meanModelResiduals = GetResiduals(originalValues, meanModelEstimatedValues);
[4417]106
[6642]107      meanModelResiduals.Sort();
108      chart.ChartAreas[0].AxisX.Maximum = Math.Ceiling(meanModelResiduals.Last());
109      chart.ChartAreas[0].CursorX.Interval = meanModelResiduals.First() / 100;
[4417]110
[6642]111      Series meanModelSeries = new Series("Mean Model");
112      meanModelSeries.ChartType = SeriesChartType.FastLine;
113      UpdateSeries(meanModelResiduals, meanModelSeries);
114      meanModelSeries.ToolTip = "Area over Curve: " + CalculateAreaOverCurve(meanModelSeries);
115      chart.Series.Add(meanModelSeries);
[4417]116
[6642]117      AddRegressionSolution(Content);
118    }
[4417]119
[6642]120    protected void AddRegressionSolution(IRegressionSolution solution) {
121      if (chart.Series.Any(s => s.Name == solution.Name)) return;
[4417]122
[6642]123      Series solutionSeries = new Series(solution.Name);
124      solutionSeries.Tag = solution;
125      solutionSeries.ChartType = SeriesChartType.FastLine;
126      var estimatedValues = GetResiduals(GetOriginalValues(), GetEstimatedValues(solution));
127      UpdateSeries(estimatedValues, solutionSeries);
128      solutionSeries.ToolTip = "Area over Curve: " + CalculateAreaOverCurve(solutionSeries);
129      chart.Series.Add(solutionSeries);
130    }
[5417]131
[6642]132    protected void UpdateSeries(List<double> residuals, Series series) {
133      series.Points.Clear();
134      residuals.Sort();
[4417]135
[6642]136      series.Points.AddXY(0, 0);
137      for (int i = 0; i < residuals.Count; i++) {
138        var point = new DataPoint();
139        if (residuals[i] > chart.ChartAreas[0].AxisX.Maximum) {
140          point.XValue = chart.ChartAreas[0].AxisX.Maximum;
[6784]141          point.YValues[0] = ((double)i) / residuals.Count;
[6642]142          point.ToolTip = "Error: " + point.XValue + "\n" + "Samples: " + point.YValues[0];
143          series.Points.Add(point);
144          break;
145        }
[4417]146
[6642]147        point.XValue = residuals[i];
[6784]148        point.YValues[0] = ((double)i+1) / residuals.Count;
[6642]149        point.ToolTip = "Error: " + point.XValue + "\n" + "Samples: " + point.YValues[0];
150        series.Points.Add(point);
151      }
[4417]152
[6642]153      if (series.Points.Last().XValue < chart.ChartAreas[0].AxisX.Maximum) {
154        var point = new DataPoint();
155        point.XValue = chart.ChartAreas[0].AxisX.Maximum;
156        point.YValues[0] = 1;
157        point.ToolTip = "Error: " + point.XValue + "\n" + "Samples: " + point.YValues[0];
158        series.Points.Add(point);
159      }
160    }
[4417]161
[6642]162    protected IEnumerable<double> GetOriginalValues() {
163      IEnumerable<double> originalValues;
164      switch (cmbSamples.SelectedItem.ToString()) {
165        case TrainingSamples:
[6784]166          originalValues = ProblemData.Dataset.GetDoubleValues(ProblemData.TargetVariable, ProblemData.TrainingIndizes);
[6642]167          break;
168        case TestSamples:
[6784]169          originalValues = ProblemData.Dataset.GetDoubleValues(ProblemData.TargetVariable, ProblemData.TestIndizes);
[6642]170          break;
171        case AllSamples:
[6784]172          originalValues = ProblemData.Dataset.GetDoubleValues(ProblemData.TargetVariable);
[6642]173          break;
174        default:
175          throw new NotSupportedException();
176      }
177      return originalValues;
178    }
[4417]179
[6642]180    protected IEnumerable<double> GetEstimatedValues(IRegressionSolution solution) {
181      IEnumerable<double> estimatedValues;
182      switch (cmbSamples.SelectedItem.ToString()) {
183        case TrainingSamples:
184          estimatedValues = solution.EstimatedTrainingValues;
185          break;
186        case TestSamples:
187          estimatedValues = solution.EstimatedTestValues;
188          break;
189        case AllSamples:
190          estimatedValues = solution.EstimatedValues;
191          break;
192        default:
193          throw new NotSupportedException();
[4417]194      }
[6642]195      return estimatedValues;
[4417]196    }
197
[6642]198    protected IEnumerable<double> GetMeanModelEstimatedValues(IEnumerable<double> originalValues) {
[6784]199      double averageTrainingTarget = ProblemData.Dataset.GetDoubleValues(ProblemData.TargetVariable, ProblemData.TrainingIndizes).Average();
[6642]200      return Enumerable.Repeat(averageTrainingTarget, originalValues.Count());
201    }
[4417]202
[6642]203    protected virtual List<double> GetResiduals(IEnumerable<double> originalValues, IEnumerable<double> estimatedValues) {
204      return originalValues.Zip(estimatedValues, (x, y) => Math.Abs(x - y)).ToList();
[4417]205    }
206
[6642]207    private double CalculateAreaOverCurve(Series series) {
[4417]208      if (series.Points.Count < 1) throw new ArgumentException("Could not calculate area under curve if less than 1 data points were given.");
209
210      double auc = 0.0;
211      for (int i = 1; i < series.Points.Count; i++) {
212        double width = series.Points[i].XValue - series.Points[i - 1].XValue;
[6642]213        double y1 = 1 - series.Points[i - 1].YValues[0];
214        double y2 = 1 - series.Points[i].YValues[0];
[4417]215
216        auc += (y1 + y2) * width / 2;
217      }
218
219      return auc;
220    }
221
[6642]222    protected void cmbSamples_SelectedIndexChanged(object sender, EventArgs e) {
223      if (InvokeRequired) Invoke((Action<object, EventArgs>)cmbSamples_SelectedIndexChanged, sender, e);
224      else UpdateChart();
[4417]225    }
226  }
227}
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