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A Real Time Artificial Intelligent System for Tennis Swing Classification

机译:用于网球摆动分类的实时人工智能系统

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In recent times, The “Stay at Home” order has made it a challenge for physical education, especially sports. Tennis players require routine training, but both players and coaches need a new way to continue training while maintaining social distance. This paper proposes a real time machine learning system that enables individual tennis players to have real and independent tennis training without social contact. Our system uses a SensorTile development hardware and embedded workbench software to collect real time sensor data utilizing accelerometers, gyroscopes, and magnetometers. This data can be utilized to detect the motion and orientation of the tennis racket, with this SensorTile system mounted on it. We used several machine learning methods to perform real time tennis swing classification with a variety of tennis players, producing very accurate classification results. Therefore, using this proposed machine learning system, players now have an effective training machine that can tell them if their swings are accurate, eliminating the possibility for human error.
机译:最近,“留在家里”的订单使其成为体育教育,特别是运动的挑战。网球运动员需要常规培训,但球员和教练都需要一种新的方式来继续培训,同时保持社会距离。本文提出了一个实时机器学习系统,使单个网球运动员能够拥有真实和独立的网球培训,而不会社交接触。我们的系统使用过敏开发硬件和嵌入式工作台软件来利用加速度计,陀螺仪和磁力计来收集实时传感器数据。该数据可用于检测网球拍的运动和方向,使用该筛选系统安装在其中。我们使用了多种机器学习方法,以实时网球摆动分类与各种网球运动员,生产非常准确的分类结果。因此,使用这一提出的机器学习系统,玩家现在具有有效的培训机器,可以告诉他们,如果它们的摇摆是准确的,可以消除人为错误的可能性。

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