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CNN and bi-LSTM based 3D golf swing analysis by frontal swing sequence images

机译:基于CNN和BI-LSTM的3D高尔夫挥杆分析通过额头摆动序列图像

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In this paper, the method to overcome the limitations of the existing three-dimensional golf swing analysis system by using deep learning technology, and analyze the three-dimensional quantitative information through sequence images acquired with a single camera is studied. In this paper, CNN was used to extract the appropriate features from the image of the golf frontal swing sequence, and a regression model based on Bi-LSTM was used to predict the correct information in each sequence. This classifies the major swing section, and analyzes the quantitative status of the twisting angles of the upper body, head, shoulder and pelvis for body-sway, head-up and X-factor analysis. For the experiment, in this paper, a total of 520 times swing data were obtained using no. 1 wood club and no. 7 iron club from five subjects. In the major swing section classification experiment, each swing section was classified with an average accuracy of about 95.44%. Quantitative analysis results from each analysis model showed that the upper body motion prediction RMSE averaged 4.23 degrees, the head motion prediction RMSE averaged 5.18 degrees, and the shoulder and pelvis twisting angle prediction RMSE averaged 3.86 degrees. As a result, it was confirmed that a three-dimensional quantitative analysis based on sequence images is possible.
机译:在本文中,该方法通过使用深学习技术克服现有的三维高尔夫挥杆分析系统的限制,和通过分析与单个照相机进行了研究获取序列图像中的三维的定量信息。在本文中,CNN被用来从高尔夫球挥杆额叶序列的图像中提取相应的功能,并使用基于双LSTM回归模型来预测每个序列中正确的信息。此进行分类的主要摆动部分,并分析上身,头部,肩部的扭转角和骨盆为身体摇摆,平视和X-因子分析的定量状态。对于该实验,在本文中,一共有520次摆动不使用获得的数据。 1个木杆和没有。从五个科7号铁杆俱乐部。在主要摆动部分分类实验,每一次摆动部分进行分级的约95.44%的平均准确度。从每个分析模型定量分析结果表明,该上半身运动预测RMSE平均4.23度时,头部运动预测RMSE平均5.18度,而肩部和骨盆加捻角度预测RMSE平均3.86度。其结果是,可以确认,基于序列的图像的三维定量分析是可能的。

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