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The Corrected Normalized Correlation Coefficient: A Novel Way of Matching Score Calculation for LDA-Based Face Verification

机译:校正归一化相关系数:基于LDA的面部验证的匹配分数计算的新方法

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The paper presents a novel way of matching score calculation for LDA-based face verification. Different from the classical matching schemes, where the decision regarding the identity of the user currently presented to the face verification system is made based on the similarity (or distance) between the "live" feature vector and the template of the claimed identity, we propose to employ a measure we named the corrected normalized correlation coefficient, which considers both the similarity with the template of the claimed identity as well as the similarity with all other templates stored in the database. The effectiveness of the proposed measure was assessed on the publicly available XM2VTS database where encouraging results were achieved.
机译:本文提出了一种新的基于LDA的面部验证匹配分数计算的新方法。与经典匹配方案不同,其中关于当前呈现给面部验证系统的用户的身份的决定是基于“Live”特征向量和所要求保护的身份的模板之间的相似性(或距离)进行的,我们提出要使用指令,我们命名为纠正的归一化相关系数,这考虑了与所要求保护的身份的模板的相似性以及与存储在数据库中的所有其他模板的相似性。拟议措施的有效性在公开可用的XM2VTS数据库中评估了令人鼓舞的结果。

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