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Automatic quality evaluation of parade by variance of postures of a platoon on single video camera logs

机译:单次摄像机日志中排姿势的自动评估

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The highly synchronized parade can impress audiences how strong the troops seem to be, whereas it is difficult to train for the good parade because of its complex collective behavior. However, there is no scientific research about the important factor to train and produce a good parade is. One of the bottlenecks to the scientific approach is the difficulty of measurement of the quality of a group as same as other swarm researches. In this paper, we measured the posture data of members in the parade with OpenPose, which is a cutting-edge pose estimation technology of deep learning. By this measurement, we propose a numerical evaluation for the quality of the parade, and it is confirmed by the questionnaire. In conclusion, our evaluation method is applicable for the quantitative evaluation, and it was suggested that the variation level of the arm swing angles was related to the quality of the parade. This paper is based on the paper presented at the proceedings of the 3rd International Symposium on Swarm Behavior and Bio-Inspired Robotics.
机译:高度同步的游行可以留下深刻印象的观众,部队似乎有多强大,而由于其复杂的集体行为,难以为好的游行训练。然而,没有科学研究,有关培训的重要因素,并产生一个好的游行。科学方法的瓶颈之一是测量与其他群体研究一样群体的质量。在本文中,我们测量了游行中的成员的姿势数据,它是深度学习的尖端姿态估计技术。通过此测量,我们提出了对游行质量的数值评估,并由问卷确认。总之,我们的评估方法适用于定量评估,并建议臂摆动角度的变化水平与游行的质量有关。本文以第三届群体行为和生物启发机器人在第三届国际研讨会上提供的论文。

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