结合多证据进行步态识别

Naresh P. Cuntoor, A. Kale, R. Chellappa
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引用次数: 93

摘要

在本文中,我们系统地分析了人体步态的不同组成部分,以达到人体识别的目的。我们研究了动态特征,如手/腿的摆动,上半身的摆动和静态特征,如正面和侧面视图的高度。同时使用概率和非概率技术来匹配特征。根据所组合的步态特征,可以使用各种组合策略。我们讨论了三个简单的规则:与我们的功能集相关的sum、product和MIN规则。使用四种不同的数据集进行的实验表明,融合可以作为一种有效的识别策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Combining multiple evidences for gait recognition
In this paper, we systematically analyze different components of human gait, for the purpose of human identification. We investigate dynamic features such as the swing of the hands/legs, the sway of the upper body and static features like height in both frontal and side views. Both probabilistic and non-probabilistic techniques are used for matching the features. Various combination strategies may be used depending upon the gait features being combined. We discuss three simple rules: the sum, product and MIN rules that are relevant to our feature sets. Experiments using four different data sets demonstrate that fusion can be used as an effective strategy in recognition.
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