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Fuzzy based analysis method of high-density surface electromyography maps for physical training assessment

机译:运动训练评估的高密度表面肌电图的模糊分析方法

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摘要

As sport becomes more competitive, the importance of physical training assessment increases. This paper proposes a new method based on fuzzy analysis techniques for comparing images of muscle activity attained by employing high-density surface electromyography (sEMG). Along with other evaluation techniques, the proposed method could be useful to monitor the evolution of sportsmen's physical training. High-density sEMG maps were generated from sEMG signals acquired from the vastus medialis muscle of the right leg of healthy subjects. The fuzzy logic assessment method has two input variables: the muscle activation area and the mean intensity of muscle activity. Results are displayed on a graphical interface and the method was implemented as a modular, distributed application. The obtained results highlight important differences among sEMG images without pointing out the underlying physiological mechanisms. Future investigations regarding the applicability of the proposed method for long training cycles could provide crucial information about the changes in muscle activity that occur with physical exercise.
机译:随着运动的竞争越来越激烈,体育锻炼评估的重要性也越来越高。本文提出了一种基于模糊分析技术的新方法,用于比较采用高密度表面肌电图(sEMG)获得的肌肉活动图像。与其他评估技术一起,所提出的方法可能对监测运动员体育锻炼的发展很有用。高密度sEMG图是从健康受试者右腿的腓肠内侧肌获得的sEMG信号生成的。模糊逻辑评估方法有两个输入变量:肌肉激活区域和肌肉活动的平均强度。结果显示在图形界面上,并且该方法已实现为模块化的分布式应用程序。获得的结果突出了sEMG图像之间的重要差异,而没有指出潜在的生理机制。有关提议的方法在较长训练周期中的适用性的未来研究可提供有关体育锻炼中肌肉活动变化的重要信息。

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