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Improved Finger-Vein Pattern Method Using Wavelet-based for Real-Time Personal Identification System

机译:改进的基于小波的手指静脉图案实时个人识别系统

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摘要

In the field of biometric recognition, convenience and security of the system are highly demanded. A large database usually leads to long response time and high computational complexity. This work, a new method, is presented to extract the vein patterns from near-infrared images, which are enhanced through the directional wavelet transform and the eight-directional neighborhood methods to further reduce the required computational cost as well as to preserve key information from low-resolution images. In addition, the region of interest of the finger-vein is also robustly located with the physiological properties of a human finger. As a result, a database composed of 340 images was employed to generate the required training and testing of vein geometrical features, that the proposed system can yield real-time requirement by achieving 0% false accept rate, 0.25% false reject rate, and recognition rate up to 100%. Meanwhile, the response time is 300 mu s, and thus the proposed algorithm is a very effective candidate for a personal identification system. (C) 2018 Society for Imaging Science and Technology.
机译:在生物识别领域,对系统的便利性和安全性有很高的要求。大型数据库通常会导致响应时间长和计算复杂性高。这项工作是一种从近红外图像中提取静脉图案的新方法,通过方向小波变换和八向邻域方法对其进行了增强,以进一步减少所需的计算成本并保留关键信息。低分辨率图像。另外,手指静脉的感兴趣区域还具有人手指的生理特性。结果,使用由340张图像组成的数据库来生成所需的静脉几何特征训练和测试,该系统可以通过实现0%错误接受率,0.25%错误拒绝率和识别率来产生实时需求。率高达100%。同时,响应时间为300μs,因此该算法对于个人识别系统非常有效。 (C)2018年影像科学与技术学会。

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