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Gait-based person re-identification under covariate factors

机译:协变量下基于步态的人的重新识别

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摘要

Gait is recognized as an effective behavioral biometric trait. Gait pattern information can be captured and perceived from a distance thanks to its noninvasive and less intrusive nature. Therefore, gait could be well suited for person re-identification. However, semantic information like clothing and carrying bags has a remarkable influence on its accuracy. Unlike the existing solutions, this paper proposed a new method for gait-based person re-identification relying on dynamic selection of human parts. This method consists in computing a new person descriptor from relevant selected human parts. The selection of the most informative parts was achieved depending on the presence of semantic information. Our experiments were performed on the CASIA-B database revealing promising results and showing the effectiveness of the proposed method.
机译:步态被认为是有效的行为生物特征。步态模式信息具有非侵入性和低侵入性,因此可以从远处捕获和感知。因此,步态非常适合于人的重新识别。但是,诸如衣服和手提袋之类的语义信息对其准确性有重大影响。与现有解决方案不同,本文提出了一种基于动态选择人体部位的基于步态的人员重识别新方法。该方法包括从相关的选定人体部分计算一个新的人物描述符。根据语义信息的存在来选择最有用的部分。我们的实验是在CASIA-B数据库上进行的,揭示了令人鼓舞的结果并显示了所提出方法的有效性。

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