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Between-Source Modelling for Likelihood Ratio Computation in Forensic Biometric Recognition

机译:法医生物特征识别中似然比计算的源间建模

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摘要

In this paper, the use of biometric systems in forensic applications is reviewed. Main differences between the aim of commercial biometric systems and forensic reporting are highlighted, showing that commercial biometric systems are not suited to directly report results to a court of law. We propose the use of a Bayesian approach for forensic reporting, in which the forensic scientist has to assess a meaningful value, in the form of a likelihood ratio (LR). This value assist the court in their decision making in a clear way, and can be computed using scores coming from any biometric system, with independence of the biometric discipline. LR computation in biometric systems is reviewed, and statistical assumptions regarding estimations involved in the process are addressed. The paper is focused in handling small sample size effects in such estimations, presenting novel experiments using a fingerprint and a voice biometric system.
机译:在本文中,综述了生物识别系统在法医应用中的使用。强调了商业生物识别系统的目的与法医报告之间的主要区别,表明商业生物识别系统不适合直接向法院报告结果。我们建议使用贝叶斯方法进行法医报告,其中法医必须以似然比(LR)的形式评估有意义的值。该值可以清晰地协助法院做出决策,并且可以使用来自任何生物特征系统的分数来计算,并且不受生物特征学科的影响。审查了生物识别系统中的LR计算,并解决了有关该过程中涉及的估计的统计假设。该论文专注于处理此类估计中的小样本量效应,提出了使用指纹和语音生物识别系统的新颖实验。

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