Analysis on the Steps of Physical Education Teaching Based on Deep Learning

Ai-hu Dong
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引用次数: 1

Abstract

The rapid progress of the internet of things and artificial intelligence has brought new opportunities for the construction and development of intelligent sports. This paper designs an analysis and evaluation system of physical education teaching steps based on deep learning technology. The intelligent wearable devices are used to conduct real-time dynamic monitoring of students' exercise steps and heart rate in class so as to build a sports teaching activity data set. The authors analyze the time step sequence based on transformer deep model to realize the estimation of motion effect. In addition, they propose a hierarchical fusion model based on transformer, which makes full use of the steps and heart rate information to predict the abnormal situation in physical education. The experimental results show the effectiveness of the system.
基于深度学习的体育教学步骤分析
物联网和人工智能的快速发展,为智能体育的建设和发展带来了新的机遇。本文设计了一个基于深度学习技术的体育教学步骤分析与评价系统。利用智能可穿戴设备实时动态监测学生在课堂上的运动步数和心率,构建体育教学活动数据集。基于变压器深度模型对时间步长序列进行分析,实现对运动效果的估计。此外,他们还提出了一种基于变压器的分层融合模型,充分利用步数和心率信息来预测体育教学中的异常情况。实验结果表明了该系统的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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