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Multi-order biometric score analysis framework and its application to designing and evaluating biometric systems for access and border control

机译:多级生物特征评分分析框架及其在设计和评估访问和边界控制生物特征系统中的应用

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Traditionally, automated access and border control biometric systems are thought of and designed as verification 1-to-1 systems, where a single comparison between a probe and the claimed identity is examined to allow or disallow the entry to a person; and as such they have been evaluated to date - by using the error tradeoff statistics, which counts how many times a person was falsely accepted or rejected. Such a design however may soon become obsolete due to the recent shift towards applying biometrics to free-flow surveillance-like environments and also in the light of recent findings showing that performance of many verification systems can be improved through the use of several 1-to-N scores, instead of relying on a single 1-to-1 score only. As the framework for designing biometric-enabled access and border control systems changes, so has to change the methodology for the evaluation of such systems. This paper addresses this problem by establishing the multi-order biometric score analysis framework. The framework incorporates latest innovations and recommendations related to the comprehensive evaluation of biometric systems, including subject-based analysis, calibrated score analysis, and two new performance metrics: threshold-validated recognition ranking and non-confident decisions due to multiple threshold-validated scores. The framework is implemented in the Comprehensive Biometrics Evaluation Toolkit (C-BET) and has been applied for the evaluation of several biometric modalities, in particular, those that are frequently contemplated for the use in unconstrained access-border control applications, such as face, voice and iris. The results of the iris modality evaluation are presented in this paper.
机译:传统上,自动访问和边界控制生物识别系统被认为并设计为一对一验证系统,其中检查探针和要求保护的身份之间的单个比较,以允许或禁止人员进入。因此,迄今为止,它们已经通过使用错误权衡统计信息进行了评估,该统计信息统计了一个人被错误接受或拒绝的次数。但是,由于最近将生物识别技术应用于类似自由流动监视的环境,并且鉴于最近的发现表明许多验证系统的性能可以通过使用多个1-to来提高,因此这种设计可能很快就会过时。 -N分,而不是仅依赖于单一的1对1得分。随着设计启用生物特征的访问和边界控制系统的框架的变化,必须改变评估此类系统的方法。本文通过建立多阶生物特征评分分析框架来解决此问题。该框架结合了与生物特征识别系统综合评估相关的最新创新和建议,包括基于主题的分析,校准的得分分析以及两个新的性能指标:阈值验证的识别等级和由于多个阈值验证的得分而导致的不确定决策。该框架已在综合生物识别技术评估工具包(C-BET)中实施,并已用于评估多种生物识别模式,尤其是那些在无限制进入边界控制应用(例如人脸,声音和虹膜。本文介绍了虹膜模态评估的结果。

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