New Concept for Discriminator Design: From Classifier to Discriminator

Jian Yang, Jing-yu Yang, Zhong Jin
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引用次数: 1

Abstract

This paper introduces a new concept of designing a discriminant analysis method (discriminator), which starts from a local mean based nearest neighbor (LM-NN) classifier and uses its decision rule to direct the design of a discriminator. The derived discriminator, called local mean based nearest neighbor discriminator (LM-NND), matches the LM-NN classifier optimally in theory. The proposed LM-NND method is evaluated using the CENPARMI handwritten numeral database, the ETH80 object category database and the PolyU Palmprint database. The experimental results demonstrate the effectiveness of LM-NND and the LM-NN classifier based pattern recognition system.
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鉴别器设计的新概念:从分类器到鉴别器
本文介绍了一种设计判别分析方法(discriminator)的新概念,该方法从基于局部均值的最近邻(LM-NN)分类器入手,利用其决策规则指导判别器的设计。该判别器被称为基于局部均值的最近邻判别器(LM-NND),在理论上与LM-NN分类器最匹配。采用CENPARMI手写体数字数据库、ETH80对象分类数据库和理大掌纹数据库对LM-NND方法进行了评价。实验结果验证了LM-NND和基于LM-NN分类器的模式识别系统的有效性。
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