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source: branches/HeuristicLab.Problems.GaussianProcessTuning/HeuristicLab.Problems.GaussianProcessTuning.Tests/UnitTest.cs @ 9298

Last change on this file since 9298 was 9099, checked in by gkronber, 12 years ago

#1967: adapted GP tuning branch to work with most recent trunk

File size: 2.8 KB
Line 
1using System;
2using System.Linq;
3using System.Threading;
4using HeuristicLab.Algorithms.DataAnalysis;
5using HeuristicLab.Algorithms.GeneticAlgorithm;
6using HeuristicLab.Problems.DataAnalysis;
7using HeuristicLab.Random;
8using Microsoft.VisualStudio.TestTools.UnitTesting;
9
10namespace HeuristicLab.Problems.GaussianProcessTuning.Tests {
11  [TestClass]
12  public class UnitTest {
13    [TestMethod]
14    public void TestGrammar() {
15      var g = new Grammar();
16      var r = new MersenneTwister();
17      var trees = (from i in Enumerable.Range(0, 1000)
18                   select
19                     HeuristicLab.Encodings.SymbolicExpressionTreeEncoding.ProbabilisticTreeCreator.Create(r, g, 100, 10))
20        .ToArray();
21    }
22
23    [TestMethod]
24    public void TestInterpreter() {
25      var interpreter = new Interpreter();
26      var g = new Grammar();
27      g.Symbols.Single(s => s is MeanMask).Enabled = true;
28      g.Dimension = 1;
29      var r = new MersenneTwister(31415);
30      var problemData = new RegressionProblemData();
31
32      for (int i = 0; i < 1000; i++) {
33        var t = HeuristicLab.Encodings.SymbolicExpressionTreeEncoding.ProbabilisticTreeCreator.Create(r, g, 50, 7);
34        double negLogLikelihood;
35        HeuristicLab.Algorithms.DataAnalysis.IGaussianProcessSolution solution;
36        interpreter.EvaluateGaussianProcessConfiguration(t, problemData, out negLogLikelihood, out solution);
37        Console.WriteLine();
38      }
39    }
40
41    [TestMethod]
42    public void TestGeneticAlgorithm() {
43      var prob = new Problem();
44      prob.DimensionParameter.Value.Value = 1;
45      var ga = new GeneticAlgorithm();
46      ga.Engine = new SequentialEngine.SequentialEngine();
47      ga.PopulationSize.Value = 100;
48      ga.MaximumGenerations.Value = 10;
49      ga.Problem = prob;
50
51      var signal = new AutoResetEvent(false);
52      Exception ex = null;
53
54      ga.ExceptionOccurred += (sender, args) => {
55        ex = args.Value;
56        signal.Set();
57      };
58      ga.Stopped += (sender, args) => {
59        signal.Set();
60      };
61
62      ga.Prepare();
63      ga.Start();
64
65      signal.WaitOne();
66      if (ex != null) throw ex;
67
68    }
69
70    /*
71    [TestMethod]
72    public void TestInterpreterPrediction() {
73      var interpreter = new Interpreter();
74      var g = new Grammar();
75      g.Symbols.Single(s => s is MeanMask).Enabled = true;
76      g.Dimension = 1;
77      var r = new MersenneTwister(31415);
78      var problemData = new RegressionProblemData();
79
80      double[] means;
81      double[] stdDev;
82      for (int i = 0; i < 10; i++) {
83        var t = HeuristicLab.Encodings.SymbolicExpressionTreeEncoding.ProbabilisticTreeCreator.Create(r, g, 50, 7);
84        interpreter.EvaluateGaussianProcessConfiguration(t, problemData, problemData.Dataset, problemData.TestIndices, out means, out stdDev);
85      }
86    }
87     */
88  }
89}
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