首页> 外文会议>International Conference on Audio- and Video-Based Biometric Person Authentication(AVBPA 2005); 20050720-22; Hilton Rye Town,NY(US) >A Novel Approach to Combining Client-Dependent and Confidence Information in Multimodal Biometrics
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A Novel Approach to Combining Client-Dependent and Confidence Information in Multimodal Biometrics

机译:多模式生物识别中结合客户依赖和置信度信息的新方法

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The issues of fusion with client-dependent and confidence information have been well studied separately in biometric authentication. In this study, we propose to take advantage of both sources of information in a discriminative framework. Initially, each source of information is processed on a per expert basis (plus on a per client basis for the first information and on a per example basis for the second information). Then, both sources of information are combined using a second-level classifier, across different experts. Although the formulation of such two-step solution is not new, the novelty lies in the way the sources of prior knowledge are incorporated prior to fusion using the second-level classifier. Because these two sources of information are of very different nature, one often needs to devise special algorithms to combine both information sources. Our framework that we call "Prior Knowledge Incorporation" has the advantage of using the standard machine learning algorithms. Based on 10 x 32 = 320 in-tramodal and multimodal fusion experiments carried out on the publicly available XM2VTS score-level fusion benchmark database, it is found that the generalisation performance of combining both information sources improves over using either or none of them, thus achieving a new state-of-the-art performance on this database.
机译:与客户相关和信任信息融合的问题已在生物特征认证中进行了深入研究。在这项研究中,我们建议在区分框架中利用两种信息来源。最初,每个信息源都是在每个专家的基础上进行处理的(第一信息是在每个客户的基础上,第二信息是在每个示例的基础上)。然后,使用跨不同专家的二级分类器将两种信息源进行组合。尽管这种两步解决方案的提法并不是什么新鲜事,但新颖之处在于,在使用第二级分类器进行融合之前,先验知识的来源已被合并。由于这两种信息源具有非常不同的性质,因此通常需要设计一种特殊的算法来组合这两种信息源。我们称为“优先知识整合”的框架具有使用标准机器学习算法的优势。基于在公开可用的XM2VTS得分级融合基准数据库上进行的10 x 32 = 320的模态内和多模态融合实验,发现将两种信息源组合使用时的综合性能比使用其中一个或不使用时有所提高。在此数据库上获得最新的最新性能。

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