Imagery based Parametric Classification of Correct and Incorrect Motion for Push-up Counter Using OpenPose

Ho-Jun Park, Jang-Woon Baek, Jong-Hwan Kim
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引用次数: 8

Abstract

This paper presents a real-time approach to count push-ups using 2D video imagery. The proposed method uses OpenPose in each frame to extract multiple joints and links of a human body. Then, it analyzes key motion features linked to counting the push-ups. Taking in consideration the push-up rules of the Republic of Korea Army, five criteria are defined and used parametrically to discriminate both correct and incorrect push-ups. A total of 147,840 samples have been collected from 220 push-up videos each in two different viewpoints: half of the videos for modeling the proposed method and the other half for testing its performance. Finally, the results shows 90.00%, 87.82%, 97.86%, and 92.57% for accuracy, precision, recall, and F-measure, respectively, demonstrating its reliability in military physical tests.
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基于图像的OpenPose俯卧撑计数器正确与错误动作参数分类
本文提出了一种利用二维视频图像实时计数俯卧撑的方法。该方法在每帧中使用OpenPose提取人体的多个关节和链路。然后,分析与计算俯卧撑相关的关键动作特征。考虑到大韩民国军队的俯卧撑规则,定义了五个标准,并使用参数化区分正确和不正确的俯卧撑。总共从220个俯卧撑视频中收集了147840个样本,每个视频都有两个不同的视角:一半的视频用于建模所提出的方法,另一半用于测试其性能。结果表明,该方法的准确率为90.00%,精密度为87.82%,召回率为97.86%,F-measure为92.57%,证明了该方法在军事体能测试中的可靠性。
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