手掌静脉模式识别方法研究

E. Kurbatova, N. Kharina, A. Zemtsov, Stepan Plyaskin
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引用次数: 1

摘要

最近,通过手掌血管进行非接触式身份识别的生物识别系统已经广泛应用。这种相关性是由于与其他方法相比,卫生、更高程度的防伪和精细等因素的结合。静脉模式识别算法可分为两个步骤。第一步,预处理,是检测感兴趣区域(ROI)。第二步是提取静脉床的奇异点(特征提取),并将静脉模式与数据库模板进行匹配(特征匹配),可以采用多种方法进行匹配。本文研究了几种识别输入图像并与数据库模板匹配的参数化方法——关联计算、奇异点(描述符)计算和感知哈希计算。根据以下标准对结果进行对比分析-评估识别质量,评估处理速度,评估数据库大小。与本文中研究的其他参数方法相比,我们已经揭示了哈希方法的显着优势。研究结果将为基于图像分析的身份验证系统的开发人员提供参考。
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Investigating Palm Vein Pattern Recognition Methods
Biometric systems for contactless identification of a person by palm blood vessels have become widespread recently. The relevance is due to a combination of such factors as hygiene, higher degree of protection against counterfeit, and delicacy compared to other methods. Vein pattern recognition algorithm can be divided into two steps. The first step, pre-processing, is to detect the Region-of-Interest (ROI). The second step involves extracting singular points of the vein bed (feature extraction) and matching the vein pattern with the database templates (feature matching) which can be performed using various methods. The paper presents the study of several parametric methods for recognizing and matching the input image with the database templates - correlation calculation, calculation of singular points (descriptors) and calculation of perceptual hashes. The comparative analysis of the results was carried out according to the following criteria - evaluating the recognition quality, evaluating the processing speed, estimating the size of the database. We have revealed a significant advantage of the hash method in comparison with other parametric methods under study within the paper. The results will be of use for developers of authentication systems based on image analysis.
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