Evaluation of Biometric Authentication Systems through Visualisation of Partitioned and Bundled Power-Graphs

R. Giot
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Abstract

Biometric authentication systems verify the identity of individuals based on what they are. As they are error prone, they can reject genuine individuals or accept impostors. Researchers of the field quantify the quality of their algorithm by benchmarking it on several databases. However, although the standard evaluation metrics state the performance of their system, they are unable to explain the reasons of their errors. This paper presents a novel way to visualize the evaluation results of a biometric authentication system which helps to find which individuals or samples are sources of errors. This knowledge could help to fix the algorithms. A biometric database of scores is modeled as a partitioned power-graph with nodes representing biometric samples and power-nodes representing individuals. A novel recursive edge bundling method is also applied to reduce clutter. This proposal has been successfully applied on several biometric databases and has proved its efficiency.
基于分割和捆绑幂图可视化的生物识别认证系统评估
生物识别认证系统根据个人的身份来验证他们的身份。由于他们容易出错,他们可以拒绝真实的个人或接受骗子。该领域的研究人员通过在几个数据库上对其进行基准测试来量化其算法的质量。然而,尽管标准的评估度量说明了系统的性能,但它们无法解释其错误的原因。本文提出了一种新颖的方法来可视化生物识别认证系统的评估结果,这有助于发现哪些个体或样本是错误的来源。这些知识可以帮助修正算法。将分数生物特征数据库建模为一个划分的功率图,其中节点代表生物特征样本,功率节点代表个体。采用一种新的递归边缘捆绑方法来减少杂波。该方法已成功应用于多个生物特征数据库,并证明了其有效性。
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