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Effects of input frequency content and signal-to-noise ratio on the parametric estimation of surface EMG-torque dynamics

机译:输入频率内容的影响和信噪比对表面EMG-扭矩动力学参数估计

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The dynamic relationship between surface EMG (sEMG) and torque can be estimated from data acquired while subjects voluntarily modulate joint torque. We have shown that for such data, the input (EMG) contains a feedback component from the output (torque) and so accurate estimates of the dynamics require the use of closed-loop identification algorithms. Moreover, this approach has several other limitations since the input is controlled indirectly and so the frequency content and signal-to-noise ratio cannot be controlled. This paper investigates how these factors influence the accuracy of estimates. This was studied using experimental sEMG recorded from healthy human subjects for tasks with different modulation rates. Box-Jenkin (BJ) method was used for identification. Results showed that input frequency content had little effect on estimates of gain and natural frequency but had strong effect on damping factor estimates. It was demonstrated that to accurately estimate the damping factor, the command signal switching rate must be less than 2s. It was also shown that random errors increased with noise level but was limited to 10% of the parameters true value for highest noise level tested. To summarize, simulation study of this work showed that voluntary modulation paradigm can accurately identify sEMG-torque dynamics.
机译:可以从自愿调制关节扭矩的受试者获取的数据估计表面EMG(SEMG)和扭矩之间的动态关系。我们已经表明,对于这样的数据,输入(EMG)包含来自输​​出(扭矩)的反馈组件,因此对动力学的准确估计需要使用闭环识别算法。此外,该方法具有若干其他限制,因为输入间接控制,因此不能控制频率内容和信噪比。本文研究了这些因素如何影响估计的准确性。这是使用从健康人类受试者记录的实验SEMG进行研究,以进行不同调制率的任务。 Box-Jenkin(BJ)方法用于识别。结果表明,输入频率含量对增益和自然频率的估计影响不大,但对阻尼因子估计有很大影响。据证明,要准确估计阻尼因子,命令信号切换速率必须小于2s。还表明随机误差随着噪声水平而增加,但受到测试最高噪声水平的参数的10%。为了总结,对这项工作的仿真研究表明,自愿调制范例可以准确地识别半扭矩动态。

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