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Finger-Vein Image Recognition Combining Modified Hausdorff Distance with Minutiae Feature Matching

机译:改进的Hausdorff距离与细节特征匹配相结合的手指静脉图像识别

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摘要

In this paper, we propose a novel method for finger-vein recognition. We extract the features of the vein patterns for recognition. Then, the minutiae features included bifurcation points and ending points are extracted from these vein patterns. Thesefeature points are used as a geometric representation of the vein patterns shape. Finally, the modified Hausdorff distance algorithm is provided to evaluate the identification ability among all possible relative positions of the vein patterns shape. This algorithm has been widely used for comparing point sets or edge maps since it does not require point correspondence. Experimental results show that these minutiae feature points can be used to perform personal verification tasks as a geometric representation of the vein patterns shape. Furthermore, by this developed method, we can achieve robust image matching under different lighting conditions.
机译:在本文中,我们提出了一种新的手指静脉识别方法。我们提取静脉图案的特征进行识别。然后,包括分叉点的细节特征和终点从这些静脉图案中提取。这些特征点用作静脉图案形状的几何表示。最后,提供了改进的Hausdorff距离算法,以评估静脉图案形状的所有可能相对位置之间的识别能力。由于该算法不需要点对应,因此已被广泛用于比较点集或边缘图。实验结果表明,这些细节特征点可用于执行个人验证任务,作为静脉图案形状的几何表示。此外,通过这种改进的方法,我们可以在不同的照明条件下实现鲁棒的图像匹配。

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