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source: trunk/sources/HeuristicLab.Problems.Instances.DataAnalysis/3.3/Regression/Vladislavleva/RationalPolynomialTwoDimensional.cs @ 10355

Last change on this file since 10355 was 9456, checked in by swagner, 12 years ago

Updated copyright year and added some missing license headers (#1889)

File size: 3.5 KB
RevLine 
[7849]1#region License Information
2/* HeuristicLab
[9456]3 * Copyright (C) 2002-2013 Heuristic and Evolutionary Algorithms Laboratory (HEAL)
[7849]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;
25
26namespace HeuristicLab.Problems.Instances.DataAnalysis {
27  public class RationalPolynomialTwoDimensional : ArtificialRegressionDataDescriptor {
28
[8240]29    public override string Name { get { return "Vladislavleva-8 F8(X1, X2) = ((X1 - 3)^4 + (X2 - 3)³ - (X2 -3)) / ((X2 - 2)^4 + 10)"; } }
[7849]30    public override string Description {
31      get {
32        return "Paper: Order of Nonlinearity as a Complexity Measure for Models Generated by Symbolic Regression via Pareto Genetic Programming " + Environment.NewLine
33        + "Authors: Ekaterina J. Vladislavleva, Member, IEEE, Guido F. Smits, Member, IEEE, and Dick den Hertog" + Environment.NewLine
[8240]34        + "Function: F8(X1, X2) = ((X1 - 3)^4 + (X2 - 3)³ - (X2 -3)) / ((X2 - 2)^4 + 10)" + Environment.NewLine
[7849]35        + "Training Data: 50 points X1, X2 = Rand(0.05, 6.05)" + Environment.NewLine
[8999]36        + "Test Data: 34*34 points X1, X2 = (-0.25:0.2:6.35)" + Environment.NewLine
[8241]37        + "Function Set: +, -, *, /, square, x^eps, x + eps, x * eps";
[7849]38      }
39    }
40    protected override string TargetVariable { get { return "Y"; } }
[8825]41    protected override string[] VariableNames { get { return new string[] { "X1", "X2", "Y" }; } }
[7849]42    protected override string[] AllowedInputVariables { get { return new string[] { "X1", "X2" }; } }
43    protected override int TrainingPartitionStart { get { return 0; } }
44    protected override int TrainingPartitionEnd { get { return 50; } }
[8999]45    protected override int TestPartitionStart { get { return 50; } }
46    protected override int TestPartitionEnd { get { return 50 + (34 * 34); } }
[7849]47
48    protected override List<List<double>> GenerateValues() {
49      List<List<double>> data = new List<List<double>>();
50
51      List<double> oneVariableTestData = ValueGenerator.GenerateSteps(-0.25, 6.35, 0.2).ToList();
[8999]52
[7849]53      List<List<double>> testData = new List<List<double>>() { oneVariableTestData, oneVariableTestData };
[8999]54      var combinations = ValueGenerator.GenerateAllCombinationsOfValuesInLists(testData).ToList<IEnumerable<double>>();
[7849]55
56      for (int i = 0; i < AllowedInputVariables.Count(); i++) {
[8999]57        data.Add(ValueGenerator.GenerateUniformDistributedValues(50, 0.05, 6.05).ToList());
[7849]58        data[i].AddRange(combinations[i]);
59      }
60
61      double x1, x2;
62      List<double> results = new List<double>();
63      for (int i = 0; i < data[0].Count; i++) {
64        x1 = data[0][i];
65        x2 = data[1][i];
66        results.Add((Math.Pow(x1 - 3, 4) + Math.Pow(x2 - 3, 3) - x2 + 3) / (Math.Pow(x2 - 2, 4) + 10));
67      }
68      data.Add(results);
69
70      return data;
71    }
72  }
73}
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