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A novel method for fusion operators evaluating at score-level fusion in biometrie authentication

机译:融合运营商在BioMetrie认证中评分级别融合评估的新方法

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Biometrics is emerging as the most foolproof method of automated personal identification. And fusing the scores of several biométrie systems is a very promising approach to improve the overall system's accuracy. Fusion operators, which contain sum rule, product rule, max rule and min rule, are considered to be one of the most useful schemes at score-level fusion, while the optimal fusion operator is chosen experimentally in real-world classification tasks. In this paper, a novel method is presented for optimal fusion operator selection. We estimate the PDF (probability density function) of each representation. Assuming that the representations used are conditionally statistically independent, then the PDFs of the fusion operators can be calculated. As a result, the distance between the class of genuine and impostor based on PDF can be used to evaluate the capabilities of fusion operators. It provides a theoretical support to evaluate the performances of fusion operators, and enables adaptive selection without experimentation. Its effectiveness when applied to bimodal biométrie authentication is confirmed by the results of 21 experiments.
机译:生物识别是作为自动个人识别最具万无一失的方法。并融合了几种BioMétrie系统的成绩是一种提高整体系统准确性的非常有希望的方法。包含SUM规则,产品规则,MAX规则和MIN规则的融合运营商被认为是得分级别融合中最有用的方案之一,而最佳融合操作员则在实验中以实模式在现实世界分类任务中选择。本文提出了一种新的方法,用于最佳融合操作员选择。我们估计每个表示的PDF(概率密度函数)。假设所使用的表示是有条件地统计上独立的,则可以计算融合运算符的PDF。结果,基于PDF的正版和冒号等类之间的距离可用于评估融合运算符的能力。它提供了一种理论上的支持,可以评估融合运营商的性能,并在没有实验的情况下启用自适应选择。通过21个实验的结果证实了当应用于双峰BioMétrie认证时的有效性。

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