谱细部:细部集的固定长度表示

Hai-yun Xu, R. Veldhuis, T. Kevenaar, A. Akkermans, A. Bazen
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引用次数: 54

摘要

细微点,即指纹脊的端点和分叉点,允许对指纹进行非常有区别的分类。然而,微点集是一个无序的集合,微点位置会受到各种变形的影响,如平移、旋转和缩放。在本文中,我们引入了一种新的方法,将一个细节集表示为一个固定长度的特征向量,该特征向量对平移是不变的,并且旋转和缩放成为平移,因此它们可以很容易地补偿。利用谱特征表示,我们可以将指纹识别系统与模板保护方案相结合,而模板保护方案需要固定长度的特征向量。本文还介绍了两种光谱细节匹配算法,并给出了实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spectral minutiae: A fixed-length representation of a minutiae set
Minutiae, which are the endpoints and bifurcations of fingerprint ridges, allow a very discriminative classification of fingerprints. However, a minutiae set is an unordered set and the minutiae locations suffer from various deformations such as translation, rotation and scaling. In this paper, we introduce a novel method to represent a minutiae set as a fixed-length feature vector, which is invariant to translation, and in which rotation and scaling become translations, so that they can be easily compensated for. By applying the spectral minutiae representation, we can combine the fingerprint recognition system with a template protection scheme, which requires a fixed-length feature vector. This paper also presents two spectral minutiae matching algorithms and shows experimental results.
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