Publication | Closed Access
Combination of multiple classifiers using local accuracy estimates
951
Citations
14
References
1997
Year
EngineeringMachine LearningBiometricsLocalizationClassification MethodImage AnalysisData ScienceData MiningPattern RecognitionIndividual ClassifierMultiple Classifier SystemStatisticsBest MixPredictive AnalyticsIntelligent ClassificationComputer ScienceLocal Accuracy EstimatesData ClassificationClassifier SystemUnknown Test Sample
This paper presents a method for combining classifiers that uses estimates of each individual classifier's local accuracy in small regions of feature space surrounding an unknown test sample. An empirical evaluation using five real data sets confirms the validity of our approach compared to some other combination of multiple classifiers algorithms. We also suggest a methodology for determining the best mix of individual classifiers.
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