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A new effective part selection approach for part-based gait recognition

机译:一种新的基于零件的步态识别的有效零件选择方法

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In part-based human gait recognition, choosing the appropriate body parts is the most challenging problem. The various cofactors such as carrying conditions (backpack or side bag or hand bag), cloths (long coat or jacket or gown) affect various body parts. Here, we proposed a method for detecting the various cofactors in early stage. We have taken some pixel points which are marked as a boundary for each cofactor. The weight of these points is calculated and used to detect the particular cofactors in early stage. We divide the human body into seven body parts based on anatomical studies of gait. Discarding the body parts where the cofactor is present, the remaining parts are used in classification. We have achieved better result compared with other classical methods.
机译:在基于部位的人的步态识别中,选择合适的身体部位是最具挑战性的问题。各种辅助因素,例如携带条件(背包,侧袋或手提袋),衣服(长外套,夹克或长袍)会影响身体的各个部位。在这里,我们提出了一种用于早期检测各种辅因子的方法。我们采用了一些像素点,这些像素点被标记为每个辅助因子的边界。计算这些点的权重,并在早期用于检测特定的辅因子。根据步态的解剖学研究,我们将人体分为七个身体部分。丢弃存在辅因子的身体部位,其余部位用于分类。与其他经典方法相比,我们取得了更好的结果。

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