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Use of Identification Trial Statistics for the Combination of Biometric Matchers

机译:鉴定试验统计数据用于生物识别匹配器的组合

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摘要

Combination functions typically used in biometric identification systems consider as input parameters only those matching scores which are related to a single person in order to derive a combined score for that person. We discuss how such methods can be extended to utilize the matching scores corresponding to all people. The proposed combination methods account for dependencies between scores output by any single participating matcher. Our experiments demonstrate the advantage of using such combination methods when dealing with a large number of classes, as is the case with biometric person identification systems. The experiments are performed on the National Institute of Standards and Technology BSSR1 dataset and the combination methods considered include the likelihood ratio, neural network, and weighted sum.
机译:通常在生物识别系统中使用的组合功能仅将与单个人相关的那些匹配分数视为输入参数,以便得出该人的组合分数。我们讨论如何扩展此类方法以利用与所有人对应的匹配分数。所提出的组合方法考虑了任何单个参与比赛者输出的得分之间的依赖性。我们的实验证明了在处理大量类别时使用这种组合方法的优势,例如生物特征识别系统。实验是在美国国家标准技术研究院BSSR1数据集上进行的,所考虑的组合方法包括似然比,神经网络和加权和。

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