Spectral Representations of Fingerprint Minutiae Subsets

Hai-yun Xu, R. Veldhuis
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引用次数: 9

Abstract

The investigation of the privacy protection of biometric templates gains more and more attention. The spectral minutiae representation is 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. These characteristics enable the combination of fingerprint recognition systems with template protection schemes that require as an input a fixed-length feature vector. However, the limited overlap of a fingerprint pair can reduce the performance of the spectral minutiae representation algorithm. Therefore, in this paper, we introduce the spectral representations of fingerprint minutiae subsets to cope with the limited overlap problem. In the experiment, we improve the recognition performance from 0.32% to 0.12% in equal error rate after applying the spectral representations of minutiae subsets algorithm.
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指纹细节子集的谱表示
生物识别模板的隐私保护问题越来越受到人们的关注。谱细节表示是一种新颖的方法,它将细节集表示为固定长度的特征向量,该特征向量对平移是不变的,其中旋转和缩放成为平移,因此可以很容易地补偿它们。这些特征使指纹识别系统与模板保护方案相结合,需要作为输入固定长度的特征向量。然而,指纹对的有限重叠会降低频谱细节表示算法的性能。因此,本文引入指纹细节子集的谱表示来解决有限重叠问题。在实验中,我们在相同错误率的情况下,应用细节子集谱表示算法将识别性能从0.32%提高到0.12%。
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