基于Gabor滤波和SVM的视网膜特征个体身份验证

Q3 Computer Science
Mohamed A. El-Sayed, M. Hassaballah, Mohammed A. Abdel-Latif
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引用次数: 16

摘要

个人认证的可靠性是一项要求很高的服务,在许多领域都在增长,不仅在军营或警察服务中,而且在社区和民用应用中,如金融交易中。在本文中,我们提出了一种基于提取一组视网膜特征点的人体验证方法。每组特征点代表视网膜血管树中的地标。描述了基于Gabor滤波器和支持向量机的模式提取和匹配。通过在STARE、DRIVE和VARIA三种常用数据库上的实验结果验证了该方法的有效性。我们注意到,所提出的视网膜验证方法对先前数据库的识别率分别为92.6%,100%和98.2%。此外,对于身份验证任务,该方法从这些数据库中获得了中等精度的视网膜血管图像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Identity Verification of Individuals Based on Retinal Features Using Gabor Filters and SVM
Authentication reliability of individuals is a demanding service and growing in many areas, not only in the military barracks or police services but also in applications of community and civilian, such as financial transactions. In this paper, we propose a human verification method depends on extraction a set of retinal features points. Each set of feature points is representing landmarks in the tree of retinal vessel. Extraction and matching of the pattern based on Gabor filters and SVM are described. The validity of the proposed method is verified with experimental results obtained on three different commonly available databases, namely STARE, DRIVE and VARIA. We note that the proposed retinal verification method gives 92.6%, 100% and 98.2% recognition rates for the previous databases, respectively. Furthermore, for the authentication task, the proposed method gives a moderate accuracy of retinal vessel images from these databases.
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CiteScore
3.20
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