利用步态的动态和静态特征进行个体识别

Y. Pratheepan, J. Condell, G. Prasad
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引用次数: 26

摘要

近年来,步态识别在生物识别领域受到越来越多的研究人员的关注,因为步态识别可以通过低分辨率的捕获装置进行远距离捕获。人类的步态特性会受到各种环境的影响,比如不同的衣服和携带的物体。大多数文献表明,这些衣服和携带物体(即协变量因素)给步态识别带来了困难。在本文中,我们提出了一种新的方法来生成剪影图像序列的动态和静态特征模板,称为动态静态剪影模板(DSSTs)来克服这个问题。DSST是从步态能量图像(GEIs)中计算出来的。DSSTs捕获步态的动态和静态特征。实验结果表明,该方法克服了因服装和物品携带不同而产生的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Use of Dynamic and Static Characteristics of Gait for Individual Identification
Recently, gait recognition for individual identification has received much increased attention from biometrics researchers as gait can be captured at a distance by using low-resolution capturing device. Human gait properties can be affected by various contexts such as different clothing and carrying objects. Most of the literature shows that these clothing and carrying objects (i.e. covariate factors) give difficulties for gait recognition. In this paper, we propose a novel method that generates dynamic and static feature templates of the sequences of silhouette images called Dynamic Static Silhouette Templates (DSSTs) to overcome this issue. Here the DSST is calculated from Gait Energy Images (GEIs). DSSTs capture the dynamic and static characteristics of gait. The experimental results show that our method overcomes the issues arising from differing clothing and the carrying of objects.
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