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Person identification using multiple cues

机译:使用多个线索进行人员识别

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摘要

This paper presents a person identification system based on acoustic and visual features. The system is organized as a set of non-homogeneous classifiers whose outputs are integrated after a normalization step. In particular, two classifiers based on acoustic features and three based on visual ones provide data for an integration module whose performance is evaluated. A novel technique for the integration of multiple classifiers at an hybrid rank/measurement level is introduced using HyperBF networks. Two different methods for the rejection of an unknown person are introduced. The performance of the integrated system is shown to be superior to that of the acoustic and visual subsystems. The resulting identification system can be used to log personal access and, with minor modifications, as an identity verification system.
机译:本文提出了一种基于声学和视觉特征的人员识别系统。该系统被组织为一组非均匀分类器,其归一化步骤后对其输出进行积分。特别是,两个基于声学特征的分类器和三个基于视觉特征的分类器为集成模块的性能评估提供了数据。使用HyperBF网络介绍了一种在混合等级/测量级别集成多个分类器的新技术。介绍了两种不同的拒绝陌生人的方法。集成系统的性能显示出优于声学和视觉子系统。生成的标识系统可用于记录个人访问权限,并进行较小的修改即可用作身份验证系统。

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