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Classifier combination methods in pattern recognition

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dc.contributor Ph.D. Program in Industrial Engineering.
dc.contributor.advisor Barbarosoğlu, Gülay.
dc.contributor.advisor Erçil, Aytül.
dc.contributor.author Baykut, Alper.
dc.date.accessioned 2023-03-16T10:35:28Z
dc.date.available 2023-03-16T10:35:28Z
dc.date.issued 2002.
dc.identifier.other IE 2002 B34 PhD
dc.identifier.uri http://digitalarchive.boun.edu.tr/handle/123456789/13588
dc.description.abstract This thesis studies methodologies to combine multiple classifiers to improve classification accuracy. Different classifiers, training methods and combination algorithms are covered throughout this study. The classifiers are extended to produce class probability estimates besides their class assignments to be able to combine them more efficiently. They are integrated in a framework to provide a toolbox for classifier combination. The leave-one-out training method is used and the results are combined using proposed weighted combination algorithms. The weights of the classifiers for the weighted classifier combination are determined based on the performance of the classifiers on the training phase. The classifiers and combination algorithms are evaluated using classical and proposed performance measures. It is found that the integration of the proposed reliability measure, improves the performance of classification. A sensitivity analysis shows that the proposed polynomial weight assignment applied with probability based combination is robust to choose classifiers for the classifier set and indicates a typical one to three per cent consistent improvement compared to a single best classifier of the same set.
dc.format.extent 30cm.
dc.publisher Thesis (Ph.D.)-Bogazici University. Institute for Graduate Studies in Science and Engineering, 2002.
dc.relation Includes appendices.
dc.relation Includes appendices.
dc.subject.lcsh Pattern recognition systems.
dc.subject.lcsh Image processing.
dc.subject.lcsh Neural networks (Computer science)
dc.title Classifier combination methods in pattern recognition
dc.format.pages xi, 107 leaves;


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