Advanced Multi-Perspective Enrolment in Finger Vein Recognition

B. Prommegger, A. Uhl
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引用次数: 3

Abstract

Finger vein recognition deals with the recognition of subjects based on their venous pattern within the fingers. It has been shown that its recognition accuracy heavily depends on a good alignment of the acquired samples. There are several approaches that try to reduce the impact of finger misplacement. However, none of these approaches is able to prevent all possible types of finger misplacements. As finger vein scanners are evolving towards contact-less acquisition, alignment problems, especially due to longitudinal finger rotation, are becoming even more important. Along with rotation detection and correction, capturing the vein pattern from multiple perspectives, as e.g. in multiple-perspective enrolment (MPE, [1]), is a way to tackle the problem of longitudinal finger rotation. Involving multiple cameras increases cost and complexity of the capturing devices, and therefore their number should be kept to a minimum. Perspective multiplication for MPE (PM-MPE, [2]) successfully reduces the number of cameras needed during enrolment while keeping the recognition rates at a high level. So far, (PM-)MPE has only been applied using Maximum curvature features (MC, [3]). This work analyses further approaches to improve the their recognition rates and investigates the applicability of (PM-)MPE to recognition schemes using features other than MC.
手指静脉识别的高级多视角登记
手指静脉识别是基于对象手指内静脉模式的识别。研究表明,其识别精度在很大程度上取决于所采集样本的良好对齐。有几种方法可以减少手指错位的影响。然而,这些方法都不能防止所有可能类型的手指错位。随着手指静脉扫描仪向非接触采集方向发展,对准问题,特别是由于手指纵向旋转,变得更加重要。随着旋转检测和校正,从多个角度捕获静脉模式,例如在多视角注册(MPE,[1]),是解决手指纵向旋转问题的一种方法。使用多个相机会增加成本和捕获设备的复杂性,因此它们的数量应该保持在最低限度。MPE的视角乘法(PM-MPE,[2])成功地减少了注册过程中所需的摄像机数量,同时保持了较高的识别率。到目前为止,(PM-)MPE仅使用最大曲率特征(MC,[3])进行应用。本文分析了进一步提高其识别率的方法,并研究了(PM-)MPE在使用除MC以外的特征的识别方案中的适用性。
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