EFFICIENT KERNELIZED PROTOTYPE BASED CLASSIFICATION

Author:

SCHLEIF F.-M.1,VILLMANN THOMAS2,HAMMER BARBARA3,SCHNEIDER PETRA4

Affiliation:

1. Department of Techn., Univ. of Bielefeld, Universitätsstrasse 21-23, 33615 Bielefeld, Germany

2. Faculty of Math./Natural and CS, University of Appl. Sc. Mittweida, Technikumplatz 17, 09648 Mittweida, Germany

3. Department of Techn., University of Bielefeld, Universitätsstrasse 21-23, 33615 Bielefeld, Germany

4. University of Birmingham, School of Clinical & Experimental Medicine, Birmingham B15 2TT, United Kingdom

Abstract

Prototype based classifiers are effective algorithms in modeling classification problems and have been applied in multiple domains. While many supervised learning algorithms have been successfully extended to kernels to improve the discrimination power by means of the kernel concept, prototype based classifiers are typically still used with Euclidean distance measures. Kernelized variants of prototype based classifiers are currently too complex to be applied for larger data sets. Here we propose an extension of Kernelized Generalized Learning Vector Quantization (KGLVQ) employing a sparsity and approximation technique to reduce the learning complexity. We provide generalization error bounds and experimental results on real world data, showing that the extended approach is comparable to SVM on different public data.

Publisher

World Scientific Pub Co Pte Lt

Subject

Computer Networks and Communications,General Medicine

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