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Movement Complexity and Neuromechanical Factors Affect the Entropic Half-Life of Myoelectric Signals

机译:运动复杂度和神经力学因素影响肌电信号的熵半衰期

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摘要

Appropriate neuromuscular functioning is essential for survival and features underpinning motor control are present in myoelectric signals recorded from skeletal muscles. One approach to quantify control processes related to function is to assess signal variability using measures such as Sample Entropy. Here we developed a theoretical framework to simulate the effect of variability in burst duration, activation duty cycle, and intensity on the Entropic Half-Life (EnHL) in myoelectric signals. EnHLs were predicted to be <40 ms, and to vary with fluctuations in myoelectric signal amplitude and activation duty cycle. Comparison with myoelectic data from rats walking and running at a range of speeds and inclines confirmed the range of EnHLs, however, the direction of EnHL change in response to altered locomotor demand was not correctly predicted. The discrepancy reflected different associations between the ratio of the standard deviation and mean signal intensity (Ist:It¯) and duty factor in simulated and physiological data, likely reflecting additional information in the signals from the physiological data (e.g., quiescent phase content; variation in action potential shapes). EnHL could have significant value as a novel marker of neuromuscular responses to alterations in perceived locomotor task complexity and intensity.
机译:适当的神经肌肉功能对生存至关重要,骨骼肌记录的肌电信号中存在支持运动控制的功能。量化与功能相关的控制过程的一种方法是使用诸如“样本熵”之类的措施评估信号的可变性。在这里,我们开发了一个理论框架来模拟突发持续时间,激活占空比和强度的变化对肌电信号中熵半衰期(EnHL)的影响。预计EnHLs <40 ms,并随肌电信号幅度和激活占空比的波动而变化。与以一定速度和倾斜范围行走和奔跑的大鼠的肌电数据进行比较,证实了EnHL的范围,但是,不能正确预测EnHL响应运动需求变化的方向。差异反映了标准偏差比与平均信号强度之间的不同关联( I s t I t )和模拟和生理数据中的占空系数,可能反映了来自生理数据的信号(例如,静态相位含量;动作电位形状的变化)。 EnHL作为对感知的运动任务复杂性和强度发生变化的神经肌肉反应的新标志物,具有重要的价值。

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