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首页> 外文期刊>Journal of Mechanical Science and Technology >Prediction of biceps muscle fatigue and force using electromyography signal analysis for repeated isokinetic dumbbell curl exercise
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Prediction of biceps muscle fatigue and force using electromyography signal analysis for repeated isokinetic dumbbell curl exercise

机译:使用肌电信号分析预测二头肌肌肉疲劳和力量,反复进行等速哑铃弯举运动

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摘要

In this study, a new way to predict the muscle fatigue and force from Electromyography (EMG) signal for repeated isokinetic exercise is demonstrated. The relationship between cumulative biceps fatigue and EMG signal during repetitive dumbbell curl tasks with constant velocity was investigated with respect to Maximum voluntary contraction (MVC) levels (20 %, 35 %, 50 % and 75 % MVC). The mean integrated EMG and mean frequency per cycle were obtained from the time domain and frequency domain, respectively. The mean IEMG value and mean frequency values were co-plotted in the global EMG index map. Finally, we developed a new algorithm to predict muscle fatigue and force based on a global EMG index map employing mean IEMG and MNF values. The proposed algorithm based on a global EMG index map can be used to simultaneously predict muscle fatigue and force from real-time EMG signals with arbitrary MVC levels.
机译:在这项研究中,展示了一种通过反复进行等速运动的肌电图(EMG)信号预测肌肉疲劳和力量的新方法。针对最大自主收缩(MVC)水平(20%,35%,50%和75%MVC),研究了恒定速度重复哑铃弯曲任务期间累积的二头肌疲劳与EMG信号之间的关系。分别从时域和频域获得平均积分EMG和每个周期的平均频率。 IEMG平均值和频率平均值均在全局EMG索引图中绘制。最后,我们基于平均EMG和MNF值的全球EMG指数图,开发了一种预测肌肉疲劳和力量的新算法。所提出的基于全局EMG指数图的算法可用于同时从具有任意MVC水平的实时EMG信号中预测肌肉疲劳和力量。

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