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Intensity Variation Normalization for Finger Vein Recognition Using Guided Filter Based Singe Scale Retinex

机译:基于引导滤波器的Singe Scale Retinex对手指静脉识别的强度变化归一化

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摘要

Finger vein recognition has been considered one of the most promising biometrics for personal authentication. However, the capacities and percentages of finger tissues (e.g., bone, muscle, ligament, water, fat, etc.) vary person by person. This usually causes poor quality of finger vein images, therefore degrading the performance of finger vein recognition systems (FVRSs). In this paper, the intrinsic factors of finger tissue causing poor quality of finger vein images are analyzed, and an intensity variation (IV) normalization method using guided filter based single scale retinex (GFSSR) is proposed for finger vein image enhancement. The experimental results on two public datasets demonstrate the effectiveness of the proposed method in enhancing the image quality and finger vein recognition accuracy.
机译:手指静脉识别已被认为是用于个人认证的最有前途的生物识别技术之一。但是,手指组织(例如,骨骼,肌肉,韧带,水,脂肪等)的容量和百分比因人而异。这通常会导致指静脉图像质量较差,因此会降低指静脉识别系统(FVRS)的性能。本文分析了导致手指静脉图像质量较差的手指组织的内在因素,并提出了一种基于引导滤波器的基于单尺度增强(GFSSR)的强度变化(IV)归一化方法来增强手指静脉图像。在两个公共数据集上的实验结果证明了该方法在提高图像质量和手指静脉识别准确性方面的有效性。

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