Dependence characteristics of face recognition algorithms

A. Rukhin, P. Grother, P. Phillips, Stefan Leigh, A. Heckert, E. Newton
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引用次数: 3

Abstract

Nonparametric statistics for quantifying dependence between the output rankings of face recognition algorithms are described Analysis of the archived results of a large face recognition study shows that even the better algorithms exhibit significantly different behaviors. It is found that there is significant dependence in the rankings given by two algorithms to similar and dissimilar faces but that other samples are ranked independently. A class of functions known as copulas is used; it is shown that the correlations arise from a mixture of two copulas.
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人脸识别算法的依赖特性
对一项大型人脸识别研究的存档结果的分析表明,即使是较好的算法也表现出显著不同的行为。研究发现,两种算法对相似和不相似的人脸给出的排名有显著的依赖性,而其他样本的排名是独立的。使用了一类称为copulas的函数;结果表明,这种相关性是由两种联结的混合产生的。
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