生物识别系统的进化与评价

D. Gorodnichy
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引用次数: 37

摘要

生物识别系统在过去几年中发生了重大变化:从单样本完全控制的验证匹配器到广泛的多样本多模式全自动人员识别系统,可在各种不受约束的环境和行为中工作。然而,生物识别系统评估的方法几乎保持不变,仍然主要限于报告虚假匹配率和非匹配率以及基于此的权衡曲线。这种方法对于调查最先进系统的性能可能不再是充分和适当的。本文通过建立生物识别系统的分类法并提出一种基线方法来解决这一差距,该方法可应用于大多数当代生物识别系统,以获得对其性能的全面描述。在此过程中,引入了一种新的多阶性能分析概念,并给出了大规模虹膜生物识别系统检测的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evolution and evaluation of biometric systems
Biometric systems have evolved significantly over the past years: from single-sample fully-controlled verification matchers to a wide range of multi-sample multi-modal fully-automated person recognition systems working in a diverse range of unconstrained environments and behaviors. The methodology for biometric system evaluation however has remained practically unchanged, still being largely limited to reporting false match and non-match rates only and the tradeoff curves based thereon. Such methodology may no longer be sufficient and appropriate for investigating the performance of state-of-the-art systems. This paper addresses this gap by establishing taxonomy of biometric systems and proposing a baseline methodology that can be applied to the majority of contemporary biometric systems to obtain an all-inclusive description of their performance. In doing that, a novel concept of multi-order performance analysis is introduced and the results obtained from a large-scale iris biometric system examination are presented.
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