Targeted biometric impersonation

John D. Bustard, J. Carter, M. Nixon
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引用次数: 6

Abstract

When applying biometric algorithms to forensic verification, false acceptance and false rejection can mean a failure to identify a criminal, or worse, lead to the prosecution of individuals for crimes they did not commit. It is therefore critical that biometric evaluations be performed as accurately as possible to determine their legitimacy as a forensic tool. This paper argues that, for forensic verification scenarios, traditional performance measures are insufficiently accurate. This inaccuracy occurs because existing verification evaluations implicitly assume that an imposter claiming a false identity would claim a random identity rather than consciously selecting a target to impersonate. In addition to describing this new vulnerability, the paper describes a novel Targeted FAR metric that combines the traditional False Acceptance Rate (FAR) measure with a term that indicates how performance degrades with the number of potential targets. The paper includes an evaluation of the effects of targeted impersonation on an existing academic face verification system. This evaluation reveals that even with a relatively small number of targets false acceptance rates can increase significantly, making the analysed biometric systems unreliable.
目标生物识别模拟
在将生物识别算法应用于法医验证时,错误接受和错误拒绝可能意味着无法识别罪犯,或者更糟的是,导致个人因他们没有犯下的罪行而受到起诉。因此,至关重要的是,必须尽可能准确地进行生物识别评估,以确定其作为法医工具的合法性。本文认为,对于取证验证场景,传统的性能度量不够准确。这种不准确的发生是因为现有的验证评估隐含地假设,声称虚假身份的冒名顶替者将声称一个随机的身份,而不是有意识地选择一个目标来冒充。除了描述这个新的漏洞之外,本文还描述了一种新的Targeted FAR度量,该度量将传统的错误接受率(FAR)度量与指示性能如何随着潜在目标的数量而下降的术语相结合。本文包括对现有学术人脸验证系统的目标模拟效果的评估。这一评估表明,即使目标数量相对较少,错误的接受率也会显著增加,使分析的生物识别系统不可靠。
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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