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Enrolled Template Specific Decisions and Combinations in Verification Systems

机译:注册模板特定的决策和验证系统中的组合

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The matching scores in biometric systems are usually calculated using one enrolled (gallery) template and one test (probe, user) template. In this paper we investigate the dependencies existing between scores related to the same enrolled biometric template or to the same user biometric template. We discuss linear score dependency models which are handled by the Z- or T-normalization, and sample statistics based models. We show that different models might better account for score dependence in different matches. The dependency models might also be different for enrollee or for user specific score sets. Finally, we investigate the application of two such models, Z-normalization and second best score model, to construct enrollee specific verification system decision and combination algorithms. The experiments are performed on NIST BSSR1 biometric score dataset.
机译:生物识别系统中的匹配分数通常使用一个注册(GALDAY)模板和一个测试(探测,用户)模板来计算。在本文中,我们研究了与相同的注册的生物识别模板或同一用户生物识别模板相关的分数之间存在的依赖关系。我们讨论由Z或T归一化处理的线性分数依赖性模型,以及基于样本统计的模型。我们表明不同的模型可能更好地占不同匹配中的分数依赖。依赖模型对于登记或用于用户特定的分数集也可能不同。最后,我们调查了两个这样的模型,Z归一化和第二个最佳分数模型的应用,构建登记特定验证系统决策和组合算法。实验是在NIST BSSR1生物识别分数数据集上进行的。

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