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The trajectory prediction and analysis of spinning ball for a table tennis robot application

机译:乒乓球机器人应用纺丝轨道预测及分析

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The identification and trajectory prediction of spinning ball has been a problem for years. In order to improve the accuracy of trajectory prediction we take following measures: firstly the kinematics model of the flight spinning ball is analysed; then based on the Unscented Kalman Filter (UKF), the motion equation and observation equation of the ball's movement trajectory is constructed; finally the BP pattern recognition classifier is used to recognize the pattern according to the predicted flight trajectory. Large number of Matlab simulations and experimental results show that, in comparing with that of EKF, UKF can save 99% of the computing time and also get more accurate prediction. BP classifier outperforms other similar classifiers, and is more suitable for the trajectory recognition of spinning ball movement.
机译:多年来,旋转球的识别和轨迹预测是一个问题。为了提高轨迹预测的准确性,我们采取以下措施:首先分析了飞行纺车的运动学模型;然后基于Unscented Kalman滤波器(UKF),构造了球运动轨迹的运动方程和观察方程;最后,BP模式识别分类器用于根据预测的飞行轨迹识别模式。大量MATLAB模拟和实验结果表明,与EKF相比,UKF可以节省99%的计算时间并获得更准确的预测。 BP分类器优于其他类似的分类器,更适合于旋转球运动的轨迹识别。

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