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Assessing Increasing Load Cycling Induced Muscle Fatigue Based on Multiscale Entropy Analysis of Surface Electromyography Signals

机译:基于表面肌电信号多尺度熵分析的负荷循环诱发的肌肉疲劳评估

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This paper presents a multiscale entropy (MSE) based complexity analysis of surface electromyography (sEMG) signals recorded from quadriceps for assessing muscle fatigue induced by increasing load cycling. Ten male undergraduate students were recruited to perform cycle ergo meter experiment with 5 step increasing load from 50 Watts to 200 Watts. The last 5 seconds sEMG signals for each load were acquired for MSE analysis. The MSE values over scale 1 to 40 and the mean value for all scales were computed to obtain MSE curves and multiscale complexity Cτ, respectively. Results show that MSE curves and Cτ decline with load increment that is consistent with the progress of muscle fatigue. The ideal scale range to separate MSE curves between neigh boring loads is from 10 to 30. It was demonstrated that Cτ index outperform traditional sample entropy in its ability to capture the complex temporal fluctuations in fatigue-free state so that it is well suited for assessing muscle fatigue induced by varied-loading dynamic tasks.
机译:本文介绍了一种基于多尺度熵(MSE)的四头肌记录的表面肌电图(sEMG)信号的复杂度分析,用于评估由于负荷循环增加而引起的肌肉疲劳。招募了10名男大学生进行5步增加负载(从50瓦增加到200瓦)的循环人体工学计实验。采集每个负载的最后5秒sEMG信号,以进行MSE分析。计算规模1到40的MSE值和所有规模的平均值,分别获得MSE曲线和多尺度复杂度Cτ。结果表明,MSE曲线和Cτ随负荷增加而下降,这与肌肉疲劳的进展一致。分离相邻钻孔负载之间的MSE曲线的理想比例范围是10到30。事实证明,Cτ指数在无疲劳状态下捕获复杂的时间波动的能力优于传统的样本熵,因此非常适合评估负荷变化的动态任务引起的肌肉疲劳。

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