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Investigating the Use of Autoencoders for Gait-based Person Recognition

机译:研究使用自动编码器进行基于步态的人识别

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In recent years, gait has been growing as a biometric for person recognition at a distance. However, factors such as view angles and carrying conditions often make this task challenging. This paper proposes a solution to this problem by modelling gait sequences using Gait Energy Images and then using sparse autoencoders to extract their features for recognition under different view angles. Experiments were carried out on the challenging CASIA B dataset, resulting in outstanding accuracy rates.
机译:近年来,步态已经成为一种可以远距离识别人的生物特征的方法。但是,诸如视角和携带条件之类的因素常常使这项任务具有挑战性。通过使用步态能量图像对步态序列进行建模,然后使用稀疏自动编码器提取其特征以在不同视角下进行识别,本文提出了一种解决此问题的方法。在具有挑战性的CASIA B数据集上进行了实验,从而获得了极高的准确率。

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