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source: trunk/sources/HeuristicLab.StructureIdentification/Evaluation/MeanSquaredErrorEvaluator.cs @ 479

Last change on this file since 479 was 479, checked in by gkronber, 16 years ago

implemented #242 (All GP evaluators should support the 'UseEstimatedTargetValues' switch for autoregressive modelling).
Also used the chance to remove a lot of the code duplication and thus improve the readability of all GP evaluators.

File size: 2.1 KB
Line 
1#region License Information
2/* HeuristicLab
3 * Copyright (C) 2002-2008 Heuristic and Evolutionary Algorithms Laboratory (HEAL)
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.Text;
26using HeuristicLab.Core;
27using HeuristicLab.Data;
28using HeuristicLab.Operators;
29using HeuristicLab.Functions;
30using HeuristicLab.DataAnalysis;
31
32namespace HeuristicLab.StructureIdentification {
33  public class MeanSquaredErrorEvaluator : GPEvaluatorBase {
34    public override string Description {
35      get {
36        return @"Evaluates 'FunctionTree' for all samples of 'DataSet' and calculates the mean-squared-error
37for the estimated values vs. the real values of 'TargetVariable'.";
38      }
39    }
40
41    public MeanSquaredErrorEvaluator()
42      : base() {
43    }
44
45    public override double Evaluate(int start, int end) {
46      double errorsSquaredSum = 0;
47      for(int sample = start; sample < end; sample++) {
48        double original = GetOriginalValue(sample);
49        double estimated = GetEstimatedValue(sample);
50        if(!double.IsNaN(original) && !double.IsInfinity(original)) {
51          double error = estimated - original;
52          errorsSquaredSum += error * error;
53        }
54      }
55
56      errorsSquaredSum /= (end - start);
57      if(double.IsNaN(errorsSquaredSum) || double.IsInfinity(errorsSquaredSum)) {
58        errorsSquaredSum = double.MaxValue;
59      }
60      return errorsSquaredSum;
61    }
62  }
63}
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