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Sensitivity and stability analysis of sEMG indices in evaluating muscle fatigue of Rectus Femoris caused by all-out cycling exercise

机译:全面循环运动造成肌肉疲劳肌疲劳中SEMG指标的敏感性及稳定性分析

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Objective: This experiment was designed to explore the optimum surface Electromyography (sEMG) indices in evaluating muscle fatigue of Rectus Femoris (RF) caused by all-out cycling exercise. Methods: eight professional cyclists participated in this study. Each subject performed 60-second all-out cycling exercise for one time and the sEMG of RF was recorded during the process. The braking torque imposed on cycling motion was 8% of each subject's weight. Combined with time-domain, flourier transform, wavelet packet transformation and nonlinear analysis method, RMS, MPF, MNF and nonlinear Lempel-Ziv complexity C(n) were calculated. Sensitivity and stability of each index in evaluating muscle fatigue of RF caused by all-out cycling exercise was compared and analyzed. Results: MPF?MNF and C(n) all decreased during muscle fatigue, having significant negative correlations with cycling exercise endurance time and significant positive correlations with pedaling rate and power output. MNF was found to have the highest fatigue sensitivity while RMS had the lowest fatigue sensitivity. The sensitivity of MPF and C(n) had no significant difference. As refer to stability, C(n) was the optimum index and MNF the second, followed by MPF and RMS. Conclusions: During all-out cycling exercise process, RF did vigorous dynamic contraction, making sEMG collected from the surface of RF nonlinear and non-stationary. The index of MNF based on wavelet packet transformation and the index of Lempel-Ziv complexity C(n) based on nonlinear analysis demonstrated high utility, suggesting the potential application of these methods as fatigue indices in evaluating muscle fatigue caused by all-out cycling exercise.
机译:目的:该实验旨在探讨最佳的表面肌电图(SEMG)指数,用于评估全息循环运动引起的直肠股份(RF)的肌肉疲劳。方法:八人参加了这项研究。每个受试者一次进行60秒的全外循环运动一次,并且在该过程期间记录了RF的SEMG。在循环运动上施加的制动扭矩是每个受试者的重量的8%。结合时域,泛温变换,小波包变换和非线性分析方法,RMS,MPF,MNF和非线性LEMPEL-ZIV复杂度C(N)。比较和分析了各种指标在评估RF肌肉疲劳方面的敏感性和稳定性。结果:MPF?MNF和C(N)在肌肉疲劳期间均降低,具有显着的负相关性与循环锻炼耐久性时间和与踩踏速率和功率输出的显着正相关性。发现MNF具有最高的疲劳敏感性,而RMS具有最低的疲劳敏感性。 MPF和C(N)的敏感性没有显着差异。如图,稳定性,C(n)是最佳指标和MNF第二,其次是MPF和RMS。结论:在全外循环运动过程中,RF剧烈的动态收缩,从RF非线性和非静止的表面采集SEMG。 MNF的基于小波包变换和的Lempel-Ziv复杂C(N)的基于非线性分析的索引的索引显示出很高的实用性,这表明在所造成的所有出自行车运动评估肌肉疲劳的这些方法作为疲劳指数的潜在应用。

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