Research on Athlete Posture Monitoring and Correction Technology Based on Wireless Sensing and Computer Vision Algorithms

Haiying Guo, Xiaoming Liu, Hui Liu
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Abstract

In sports training and competition, the traditional methods of athlete posture monitoring often rely on complex equipment and expensive technology, which is difficult to be widely used. This study aims to explore a posture monitoring and correction technology based on wireless sensing and computer vision algorithms to provide a low-cost, efficient and easy-to-use solution. In this study, wireless sensors are used to collect real-time data of athletes during training and competition, and computer vision algorithms are combined to analyze athletes' posture. The wireless sensors include an inertial measurement unit (IMU) that captures the athlete's movement trajectory and changes in Angle. Using computer vision technology, the video images of athletes are obtained by cameras, and the posture recognition and dynamic analysis are carried out. Data fusion method combines sensor data with visual data to improve the accuracy and reliability of posture monitoring. The experimental results show that the posture monitoring system based on wireless sensing and computer vision algorithm can accurately identify and evaluate the athlete's posture. The system can feedback athletes' postural deviation in real time, provide effective correction suggestions, and significantly improve athletes' postural performance.

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基于无线传感和计算机视觉算法的运动员姿势监测与矫正技术研究
在体育训练和比赛中,传统的运动员姿势监测方法往往依赖于复杂的设备和昂贵的技术,难以得到广泛应用。本研究旨在探索一种基于无线传感和计算机视觉算法的姿势监测和矫正技术,以提供一种低成本、高效率和易于使用的解决方案。本研究利用无线传感器收集运动员在训练和比赛期间的实时数据,并结合计算机视觉算法分析运动员的姿势。无线传感器包括一个惯性测量单元(IMU),用于捕捉运动员的运动轨迹和角度变化。利用计算机视觉技术,通过摄像头获取运动员的视频图像,并进行姿势识别和动态分析。数据融合方法将传感器数据与视觉数据相结合,提高了姿势监测的准确性和可靠性。实验结果表明,基于无线传感和计算机视觉算法的姿势监测系统能够准确识别和评估运动员的姿势。该系统能实时反馈运动员的姿势偏差,提供有效的纠正建议,显著提高运动员的姿势表现。
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