Facial recognition of identical twins

Matthew Pruitt, Jason M. Grant, Jeffrey R. Paone, P. Flynn, R. Bruegge
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引用次数: 26

Abstract

Biometric identification systems must be able to distinguish between individuals even in situations where the bio metric signature may be similar, such as in the case of identical twins. This paper presents experiments done in facial recognition using data from a set of images of twins. This work establishes the current state of facial recognition in regards to twins and the accuracy of current state-of-the art programs in distinguishing between identical twins using three commercial face matchers, Cognitec 8.3.2.0, VeriLook 4.0, and PittPatt 4.2.1 and a baseline matcher employing Local Region PCA. Overall, it was observed that Cognitec had the best performance. All matchers, how ever, saw degradation in performance compared to an experiment where the ability to distinguish unrelated persons was assessed. In particular, lighting and expression seemed to have affected performance the most.
同卵双胞胎的面部识别
生物识别系统必须能够区分个体,即使在生物特征签名可能相似的情况下,例如在同卵双胞胎的情况下。本文介绍了使用一组双胞胎图像数据进行面部识别的实验。这项工作建立了双胞胎面部识别的当前状态,以及当前最先进的程序在区分同卵双胞胎方面的准确性,使用三种商业面部匹配器,Cognitec 8.3.2.0, VeriLook 4.0和PittPatt 4.2.1,以及使用Local Region PCA的基线匹配器。总的来说,我们观察到Cognitec的表现最好。然而,与一项评估区分不相关人员能力的实验相比,所有匹配者的表现都有所下降。特别是,灯光和表情似乎对表现影响最大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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