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A classifier for Bangla handwritten numeral recognition
Authors:Ying Wen  Lianghua He
Affiliation:a Department of Computer Science and Technology, East China Normal University, Shanghai 200062, China
b Pediatric Brain Imaging Laboratory, Columbia University, New York, NY 10032, USA
c Key Laboratory of Embedded System and Service Computing, Ministry of Education, Tongji University, Shanghai 200092, China
Abstract:
This paper presents a novel pattern classification approach - a kernel and Bayesian discriminant based classifier which utilizes the distribution characteristics of the samples in each class. A kernel combined with Bayesian discriminant in the subspace spanned by the eigenvectors which are associated with the smaller eigenvalues in each class is adopted as the classification criterion. To solve the problem of the matrix inverse, the smaller eigenvalues are substituted by a small threshold which is decided by minimizing the training error in a given database. Application of the proposed classifier to the issue of handwritten numeral recognition demonstrates that it is promising in practical applications.
Keywords:Bayesian discriminant   Kernel   Numeral recognition
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