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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Estimation of M-wave scale factor during sustained contractions at high stimulation rate
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Estimation of M-wave scale factor during sustained contractions at high stimulation rate

机译:高刺激率持续收缩期间的M波比例因子估计

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摘要

In this paper, we propose a time-domain index to assess M-wave widening during high-frequency stimulation, as an objective parameter for quantifying muscle fatigue. At high stimulation frequencies, signal truncation, due to the delivery of the electrical stimulus before the M-wave generated by the previous stimulus extinguishes, biases the spectral frequency variables usually computed to estimate M-wave widening. Thus, we propose an estimator of the scale factor between two truncated M-waves. The estimator is derived from the Scale Transforms of the two signals, with an efficient implementation that avoids limits of resolution. The method was tested on both simulated and experimental signals. The simulations showed that the proposed technique is significantly less affected by signal truncation than previous approaches. The experimental recordings were collected from 11 subjects at stimulation frequencies of 20, 40, and 60 Hz. The scale factor estimation assessed M-wave widening in the three conditions, differentiating between the different rates of change of signal widening. The method proved to be significantly superior to M-wave spectral analysis. The technique can be applied to investigate myoelectric manifestations of muscle fatigue at stimulation rates that could not be analyzed in the past and, thus, opens new perspectives in the evaluation of electrical stimulation for training and rehabilitation protocols.
机译:在本文中,我们提出了一个时域指数来评估高频刺激期间的M波展宽,作为量化肌肉疲劳的客观参数。在高刺激频率下,由于在由先前刺激产生的M波熄灭之前传递了电刺激,信号截断使通常计算出的频谱频率变量产生偏差,以估计M波加宽。因此,我们提出了两个截断的M波之间的比例因子的估计器。估计器是从两个信号的比例变换中得出的,其有效实现避免了分辨率的限制。该方法已在模拟信号和实验信号上进行了测试。仿真表明,所提出的技术比以前的方法受信号截断的影响要小得多。实验记录是从11位受试者以20、40和60 Hz的刺激频率收集的。比例因子估计评估了三种条件下的M波展宽,从而区分了信号展宽的不同变化率。实践证明,该方法明显优于M波谱分析。该技术可用于研究过去无法分析的刺激速率下的肌肉疲劳的肌电表现,从而为评估训练和康复方案的电刺激打开了新的视野。

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