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Table Tennis ball kinematic parameters estimation from non-intrusive single-view videos

机译:表网球运动学参数估计非侵入式单视图视频

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The context of this research is the use of computer vision to assess the quality of sport gestures in non-intrusive conditions, i.e. without any body-worn sensors. This paper addresses the estimation of Table Tennis ball kinematic parameters from single-view videos. These parameters are important for analyzing effects given on the ball by the players, a key factor in the Table Tennis game. We introduce 3D ball trajectories extraction and analysis with very few acquisition constraints. To obtain ball to camera distance, the estimation of the apparent ball size is performed with a 2D CNN trained on a generated dataset. By formulating the problem of trajectory estimation as the solution of an Ordinary Differential Equation (ODE) with initial conditions, we can extract the ball kinematic parameters such as tangential and rotation speeds. Validation experiments are presented on both a synthetic dataset and on real video sequences.
机译:本研究的背景是使用计算机愿景来评估非侵入式条件中的运动手势的质量,即没有任何身体磨损的传感器。 本文从单视图中介绍了乒乓球运动学参数的估计。 这些参数对于分析球员在球上给出的效果是重要的,这是乒乓球比赛中的关键因素。 我们引入了3D球轨迹提取和分析,收购限制很少。 为了获得相机距离,表观球尺寸的估计是用在生成的数据集上培训的2D CNN执行的。 通过将轨迹估计的问题作为初始条件的普通微分方程(ODE)的解决方案,我们可以提取诸如切向和旋转速度的球运动学参数。 验证实验在合成数据集和实际视频序列上呈现。

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