A Practical Study of Basketball Teaching Reform in Colleges and Universities Based on Big Data

Chengjian Sheng, Chenxin Lian, Haolin Pang
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Abstract

Abstract In this paper, the human body posture estimation algorithm is used to locate the key points of the human body in the RGB screen, and two human body multi-objective algorithms are used to predict the posture trajectory, and they can overcome the influence of the errors contained in the information recorded by the sensors to a certain extent. Secondly, the spatio-temporal graph convolutional neural network is used to identify human behavior and extract behavioral action features, and through the analysis of the action features, we understand the basketball skill level of the students and put forward the reform strategy of college basketball teaching. Sixty students from the basketball minor class at University Q’s College of Physical Education were selected as research subjects for teaching practice. The results show that the average scores of the students in spot-up shooting, half-court folding dribbling and marching one-handed over-the-shoulder shooting after the reform are higher than those before the reform by 1.80, 1.08, and 1.85, which indicates that the reform of basketball teaching based on big data can improve the students’ interest in learning and their training scores, and enhance the students’ basketball skill level.
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基于大数据的高校篮球教学改革实践研究
摘要本文采用人体姿态估计算法在RGB屏幕中定位人体关键点,并采用两种人体多目标算法预测姿态轨迹,在一定程度上克服了传感器记录信息中所含误差的影响。其次,利用时空图卷积神经网络对人体行为进行识别,提取行为动作特征,通过对动作特征的分析,了解学生篮球技术水平,提出高校篮球教学改革策略。选取Q大学体育学院篮球辅修班60名学生作为研究对象进行教学实践。结果表明,改革后的学生定点投篮、半场折叠运球、单手过肩投篮的平均分比改革前提高了1.80分、1.08分、1.85分,说明基于大数据的篮球教学改革能够提高学生的学习兴趣和训练成绩,提高学生的篮球技术水平。
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来源期刊
Applied Mathematics and Nonlinear Sciences
Applied Mathematics and Nonlinear Sciences Engineering-Engineering (miscellaneous)
CiteScore
2.90
自引率
25.80%
发文量
203
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