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A new model for fingerprint classification by ridge distribution sequences

机译:脊分布序列指纹分类的新模型

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摘要

In this paper, a new method is introduced which is a combination of structural and syntactic approaches for fingerprint classification. The goal of the proposed ridge distribution (R-D) model is to present the idea of the possibility for classifying a fingerprint into the complete seven classes in the Henry's classification. From our observation, there exist only 10 basic ridge patterns which construct fingerprints. Fingerprint classes can be interpreted as a combination of these 10 ridge patterns with different ridge distribution sequences. In this paper, the classification task is performed depending on the global distribution of the 10 basic ridge patterns by analyzing the ridge shapes and the sequence of ridges distribution. The regular expression for each class is formulated and a NFA model is constructed accordingly. An explicit rejection criterion is also defined in this paper. For the seven-class fingerprint classification problem, our method can achieve the classification accuracy of 93.4% with 5.1% rejection rate. For the five-class problem, the accuracy rate of 94.8% is achieved. Experimental results reveal the feasibility and validity of the proposed approach in fingerprint classification. (C) 2002 Pattern Recognition Society. Published by Elsevier Science Ltd. All rights reserved. [References: 23]
机译:本文介绍了一种新方法,该方法是结构和句法相结合的指纹分类方法。提出的脊线分布(R-D)模型的目的是提出在亨利分类法中将指纹分为完整的七个类别的可能性的想法。根据我们的观察,仅存在10个构成指纹的基本脊纹。指纹类别可以解释为这10个脊样式与不同脊分布顺序的组合。在本文中,通过分析脊形状和脊分布顺序,根据10个基本脊样式的全局分布执行分类任务。制定每个类别的正则表达式,并相应地构建NFA模型。本文还定义了一个明确的拒绝标准。对于七类指纹分类问题,我们的方法可以达到93.4%的分类准确率和5.1%的拒绝率。对于五类问题,准确率达到94.8%。实验结果证明了该方法在指纹分类中的可行性和有效性。 (C)2002模式识别学会。由Elsevier Science Ltd.出版。保留所有权利。 [参考:23]

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