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Estimating Sample Size Requirements for Reliable Personal Authentication Using User-Specific Samples

机译:使用用户特定的样本估算可靠的个人身份验证的样本大小要求

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摘要

The goal of this paper is to determine bounds for estimating minimum sample size requirement for reliable biometric identification. A new approach for the reliable estimation of the minimum sample size is proposed for arbitrary ensemble of subjects. A bound on number of acquisitions/samples per subject is arrived through an iterative procedure that tests sequences for user-specific sequences. The approach proposed in this paper is supported by information theoretic measures. These results are fundamental to the integration of concepts from statistics, complexity and probabilistic (Borel) measure spaces. We evolve a novel concept of information equivalence in comparing random sequences for its information content. Furthermore, the problem of missing or lost/corrupted matching scores is also investigated. The solution for these missing biometric matching scores is based on completeness of certain typical space and these scores can be estimated using proposed iterative algorithm.
机译:本文的目的是确定边界,以便估计可靠的生物特征识别所需的最小样本量。提出了一种可靠估计最小样本量的新方法,适用于任意主体。通过测试程序针对特定于用户的序列的迭代过程,可以确定每个受试者的采集/样本数量的界限。本文提出的方法得到信息理论方法的支持。这些结果对于整合统计,复杂性和概率(Borel)度量空间中的概念至关重要。在比较随机序列的信息内容时,我们发展了一种信息等效的新概念。此外,还研究了匹配分数丢失或丢失/损坏的问题。这些缺少的生物特征匹配分数的解决方案基于某些典型空间的完整性,可以使用提出的迭代算法来估计这些分数。

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