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Feature selection gait-based gender classification under different circumstances

机译:不同情况下基于特征选择步态的性别分类

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This paper proposes a gender classification based on human gait features and investigates the problem of two variations: clothing (wearing coats) and carrying bag condition as addition to the normal gait sequence. The feature vectors in the proposed system are constructed after applying wavelet transform. Three different sets of feature are proposed in this method. First, Spatio-temporal distance that is dealing with the distance of different parts of the human body (like feet, knees, hand, Human Height and shoulder) during one gait cycle. The second and third feature sets are constructed from approximation and non-approximation coefficient of human body respectively. To extract these two sets of feature we divided the human body into two parts, upper and lower body part, based on the golden ratio proportion. In this paper, we have adopted a statistical method for constructing the feature vector from the above sets. The dimension of the constructed feature vector is reduced based on the Fisher score as a feature selection method to optimize their discriminating significance. Finally k-Nearest Neighbor is applied as a classification method. Experimental results demonstrate that our approach is providing more realistic scenario and relatively better performance compared with the existing approaches.
机译:本文提出了一种基于人类步态特征的性别分类方法,并研究了两种变异问题:服装(穿着大衣)和手提袋条件作为正常步态序列的补充。提出的系统中的特征向量是在应用小波变换后构造的。该方法提出了三套不同的特征。首先,时空距离是指一个步态周期中人体不同部位(如脚,膝盖,手,人的高度和肩膀)之间的距离。第二和第三特征集分别由人体的近似系数和非近似系数构成。为了提取这两组特征,我们根据黄金比例将人体分为上下两部分。在本文中,我们采用统计方法从上述集合构造特征向量。基于Fisher分数,将构造的特征向量的维数减小,以此作为特征选择方法以优化其区分性。最后,将k最近邻作为分类方法。实验结果表明,与现有方法相比,我们的方法提供了更现实的场景和相对更好的性能。

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