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FINGER VEIN RECOGNITION BY COMBINING GLOBAL AND LOCAL FEATURES BASED ON SVM

机译:基于SVM的全局和局部特征相结合的指纹识别

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Recently, biometrics such as fingerprints, faces and irises recognition have been widely used in many applications including door access control, personal authentication for computers, internet banking, automatic teller machines and border-crossing controls. Finger vein recognition uses the unique patterns of finger veins to identify individuals at a high level of accuracy. This paper proposes new algorithms for finger vein recognition. This research presents the following three advantages and contributions compared to previous works. First, we extracted local information of the finger veins based on a LBP (Local Binary Pattern) without segmenting accurate finger vein regions. Second, the global information of the finger veins based on Wavelet transform was extracted. Third, two score values by the LBP and Wavelet transform were combined by the SVM (Support Vector Machine). As experimental results, the EER (Equal Error Rate) was 0.011% and the total processing time was 98.2 ms.
机译:近来,诸如指纹,面部和虹膜识别之类的生物识别技术已被广泛用于许多应用中,包括门禁控制,计算机的个人身份验证,互联网银行,自动柜员机和过境控制。手指静脉识别使用手指静脉的独特模式来高度准确地识别个人。本文提出了一种新的手指静脉识别算法。与以前的工作相比,本研究提出了以下三个优点和贡献。首先,我们在不分割准确的指静脉区域的情况下,基于LBP(局部二进制模式)提取了指静脉的局部信息。其次,提取基于小波变换的指静脉全局信息。第三,通过LVM和小波变换将两个得分值通过SVM(支持向量机)进行组合。作为实验结果,EER(均等错误率)为0.011%,总处理时间为98.2 ms。

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