Static and Dynamic Features Analysis from Human Skeletons for Gait Recognition

Ziqiong Li, Shiqi Yu, Edel B. García Reyes, Caifeng Shan, Yan-Ran Li
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引用次数: 4

Abstract

Gait recognition is an effective way to identify a person due to its non-contact and long-distance acquisition. In addition, the length of human limbs and the motion pattern of human from human skeletons have been proved to be effective features for gait recognition. However, the length of human limbs and motion pattern are calculated through human prior knowledge, more important or detailed information may be missing. Our method proposes to obtain the dynamic information and static information from human skeletons through disentanglement learning. In the experiments, it has been shown that the features extracted by our method are effective.
用于步态识别的人体骨骼静态和动态特征分析
步态识别具有非接触、远距离采集的特点,是一种有效的人脸识别方法。此外,人体骨骼的肢体长度和运动模式也被证明是步态识别的有效特征。然而,人体四肢的长度和运动模式是通过人类的先验知识来计算的,可能会遗漏更重要或更详细的信息。该方法提出通过解缠学习来获取人体骨骼的动态信息和静态信息。实验表明,该方法提取的特征是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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