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Wiener Filtering of Surface EMG with a priori SNR Estimation Toward Myoelectric Control for Neurological Injury Patients

机译:对神经损伤患者进行肌电控制的先验SNR估计对表面肌电信号进行Wiener滤波

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摘要

Voluntary surface electromyogram (EMG) signals from neurological injury patients are often corrupted by involuntary background interference or spikes, imposing difficulties for myoelectric control. We present a novel framework to suppress involuntary background spikes during voluntary surface EMG recordings. The framework applies a Wiener filter to restore voluntary surface EMG signals based on tracking a priori signal to noise ratio (SNR) by using the decision-directed method. Semi-synthetic surface EMG signals contaminated by different levels of involuntary background spikes were constructed from a database of surface EMG recordings in a group of spinal cord injury subjects. After the processing, the onset detection of voluntary muscle activity was significantly improved against involuntary background spikes. The magnitude of voluntary surface EMG signals can also be reliably estimated for myoelectric control purpose. Compared with the previous sample entropy analysis for suppressing involuntary background spikes, the proposed framework is characterized by quick and simple implementation, making it more suitable for application in a myoelectric control system toward neurological injury rehabilitation.
机译:来自神经系统损伤患者的自愿性表面肌电图(EMG)信号通常会由于非自愿的背景干扰或尖峰而损坏,给肌电控制带来困难。我们提出了一个新颖的框架,以抑制自愿性表面肌电图记录过程中的非自愿背景尖峰。该框架采用维纳滤波器,通过使用决策指导方法跟踪先验信噪比(SNR),恢复了自愿的表面肌电信号。从一组脊髓损伤受试者的表面肌电图记录数据库中构建了受不同水平的非自愿背景尖峰污染的半合成表面肌电图信号。处理后,针对非自愿性背景峰值的主动肌肉活动的开始检测显着改善。出于肌电控制目的,也可以可靠地估算出自愿性表面肌电信号的大小。与先前的用于抑制非自愿背景尖峰的样本熵分析相比,该框架的特点是实现过程快速简单,使其更适合在肌电控制系统中用于神经损伤修复。

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