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Robust gait-based gender classification using depth cameras

机译:使用深度相机进行稳健的基于步态的性别分类

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This article presents a new approach for gait-based gender recognition using depth cameras, that can run in real time. The main contribution of this study is a new fast feature extraction strategy that uses the 3D point cloud obtained from the frames in a gait cycle. For each frame, these points are aligned according to their centroid and grouped. After that, they are projected into their PCA plane, obtaining a representation of the cycle particularly robust against view changes. Then, final discriminative features are computed by first making a histogram of the projected points and then using linear discriminant analysis. To test the method we have used the DGait database, which is currently the only publicly available database for gait analysis that includes depth information. We have performed experiments on manually labeled cycles and over whole video sequences, and the results show that our method improves the accuracy significantly, compared with state-of-the-art systems which do not use depth information. Furthermore, our approach is insensitive to illumination changes, given that it discards the RGB information. That makes the method especially suitable for real applications, as illustrated in the last part of the experiments section.
机译:本文介绍了一种使用深度相机进行基于步态的性别识别的新方法,该方法可以实时运行。这项研究的主要贡献是一种新的快速特征提取策略,该策略使用步态周期中从帧中获得的3D点云。对于每一帧,这些点均根据其质心对齐并分组。之后,将它们投影到其PCA平面中,以获得对视图变化特别强大的循环表示。然后,首先通过对投影点进行直方图计算,然后使用线性判别分析来计算最终的判别特征。为了测试该方法,我们使用了DGait数据库,该数据库是目前唯一可用于步态分析的公开数据库,其中包括深度信息。我们已经对手动标记的周期和整个视频序列进行了实验,结果表明,与不使用深度信息的最新系统相比,我们的方法显着提高了准确性。此外,考虑到它丢弃了RGB信息,我们的方法对光照变化不敏感。如实验部分的最后部分所示,这使得该方法特别适合于实际应用。

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