基于haar样模板的无标记步态特征提取

Imed Bouchrika, A. Boukrouche
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引用次数: 8

摘要

最近许多研究表明,通过走路的方式即步态来识别人是可能的。这项研究主要是由广泛的潜在应用推动的,步态生物识别技术可以在视觉智能监控和法医系统中发挥作用。在本文中,我们提出了一种haar样模板,用于各种摄像机视点下步态特征的时间无标记提取。一种基于无标记模型的方法,其中使用描述人体运动的角模型模板来指导提取过程。步态特征包括小腿的角度测量以及人体的空间位移。为了进一步细化步态特征的区别效力,采用了一种基于同类邻居接近度的新提出的验证准则的特征选择算法。实验结果表明,在矢状面进行校正后,由关节运动得到的步态角测量值的正确分类率达到73.6%。
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Markerless extraction of gait features using Haar-like template for view-invariant biometrics
Many research studies have recently shown the possibility of recognizing people by the way they walk i.e. gait. This research is mainly fuelled by the wide range of potential applications where gait biometrics could be useful as the case of visual smart surveillance and forensic systems. In this research paper, we present a Haar-like template for the temporal markerless extraction of gait features under various camera viewpoints. A markerless model-based method whereby angular model templates describing the human motion are employed to guide the extraction process. Gait features consist of the angular measurements for the lower legs in addition to the spatial displacement of the human body. To further refine gait features based on their discriminatory potency, a feature selection algorithm is applied using a newly proposed validation-criterion based on the proximity of neighbours belonging to the same class. Experimental results revealed that gait angular measurements derived from the joint motions can achieve a correct classification rate of 73.6% after applying a rectification process back into the sagittal plane.
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