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Finger Vein Segmentation from Infrared Images Using Spectral Clustering: An Approach for User Indentification

机译:使用光谱聚类从红外图像的手指静脉分割:用户识别方法

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Among biometric systems for user identification, finger vein patterns captured in the infrared spectrum have shown to be relevant for identifying users; and, in this way to provide a high level and low-cost security system. Unfortunately, the extraction of these vascular patterns is affected by many factors such as the capture device, light variations, force exerted on the finger, tissues, and bones with different morphology, finger position, etc. Therefore in this paper, we propose Spectral Clustering for the vein pattern extraction task from infrared images. To do so, the Spectral Clustering memory requirements for a large number of samples are attacked considering small disjoint partitions of the image and comparing resulting clusters in order to joint them avoiding the need for further expensive post-processing steps. Results are presented in terms of user classification error rates, showing that a good performance can be obtained by means of the proposed method.
机译:在用于用户识别的生物识别系统中,红外光谱中捕获的手指静脉图案已显示与识别用户相关;并且,通过这种方式提供高水平和低成本的安全系统。遗憾的是,这些血管模式的提取受许多因素的影响,例如捕获装置,光变化,在手指,组织和具有不同形态,手指位置等的骨骼上施加的力。因此,我们提出了光谱聚类对于红外图像的静脉模式提取任务。为此,考虑到图像的小不相交的分区并比较所得到的集群,攻击大量样本的光谱聚类存储器要求攻击,以便将它们避免需要进一步昂贵的后处理步骤的群体。结果以用户分类误差率提出,表明可以通过所提出的方法获得良好的性能。

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