Publication | Closed Access
Input feature selection by mutual information based on Parzen window
644
Citations
16
References
2002
Year
Artificial IntelligenceEngineeringMachine LearningFeature ExtractionFeature SelectionIntelligent SystemsClassification MethodData ScienceData MiningPattern RecognitionFeature Selection AlgorithmFeature EngineeringKnowledge DiscoveryParzen WindowComputer ScienceFeature ConstructionData ClassificationMutual InformationPattern Recognition Application
Mutual information is a good indicator of relevance between variables, and have been used as a measure in several feature selection algorithms. However, calculating the mutual information is difficult, and the performance of a feature selection algorithm depends on the accuracy of the mutual information. In this paper, we propose a new method of calculating mutual information between input and class variables based on the Parzen window, and we apply this to a feature selection algorithm for classification problems.
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