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Continuous Distribution Approximation and Thresholds Optimization in Serial Multi-Modal Biometric Systems

机译:串行多模态生物识别系统中的连续分布近似和阈值优化

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Multi-modal biometric verification systems use information from several biometric modalities to verify an identity of a person. The false acceptance rate (FAR) and false rejection rate (FRR) are metrics generally used to measure the performance of such systems. In this paper, we first approximate the score distributions of both genuine users and impostors by continuous distributions. Then we incorporate the exact expressions of the distributions in the formulas for the expected values of both FAR and FRR for each matcher. In order to determine the upper and lower acceptance thresholds in the sequential multi-modal biometric matching, we further minimize the expected values of FAR and FRR for the entire processing chain. We propose a non-linear bi-objective programming problem whose objective functions are the two error probabilities. We analyze the efficient set of the bi-objective problem, and derive an efficient solution as a best compromise between the error probabilities. Replacing the least squares approximation of the score distributions by a continuous distribution approximation, this approach modifies the method presented in Stanojevic' et al. (doi: 10.1109/ICCCC.2016.7496752). The results of our experiments showed a good performance of the sequential multiple biometric matching system based on continuous distribution approximation and optimized thresholds.
机译:多模式生物特征验证系统使用来自几种生物特征模式的信息来验证一个人的身份。错误接受率(FAR)和错误拒绝率(FRR)是通常用于衡量此类系统性能的指标。在本文中,我们首先通过连续分布来估算真实用户和冒名顶替者的得分分布。然后,我们在公式中并入了每个匹配器的FAR和FRR期望值的分布的精确表达式。为了确定顺序多模式生物特征匹配中的接受阈值上限和下限,我们进一步最小化了整个处理链的FAR和FRR的期望值。我们提出了一个非线性双目标规划问题,其目标函数是两个误差概率。我们分析了双目标问题的有效集,并得出了一个有效的解决方案,作为误差概率之间的最佳折衷。用连续分布近似代替分数分布的最小二乘近似,这种方法修改了Stanojevic等人的方法。 (doi:10.1109 / ICCCC.2016.7496752)。我们的实验结果表明,基于连续分布近似和优化阈值的顺序多重生物特征匹配系统具有良好的性能。

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