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Algorithm to demodulate an electromyogram signal modulated by essential tremor

机译:解调由本质震颤调制的肌电信号的算法

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Essential tremor is a disorder that causes involuntary oscillations in patients both while they are engaged in actions and when maintaining a posture. Such patients face serious difficulties in performing daily living activities such as meal movement. We have been developing an electromyogram (EMG)-controlled exoskeleton to suppress tremors to support the movements of these patients. The problem is that the EMG signal of the patients is modulated by the tremor signal as multiplicative noise. In this paper, we proposed a novel signal processing method to demodulate patients’ EMG signals. We modelled the multiplicative tremor signal with a powered sine wave and the tremor signal in the EMG signal was removed by dividing the modelled tremor signal into the EMG signal. To evaluate the effectiveness of the demodulation, we applied the method to a real patient’s EMG signal, extracted from biceps brachii while performing an elbow flexion. We quantified the effect of the demodulation by root mean square error between two kinds of muscle torques, an estimated torque from the EMG signal and calculated torque from inverse dynamics based on the motion data. The proposed method succeeded in reducing the error by approximately 15–45% compared with using a low-pass filter, typical processing for additive noise, and showed its effectiveness in the demodulation of the patients’ EMG signal.
机译:原发性震颤是一种疾病,在患者从事动作和保持姿势时都会引起患者的不自主振荡。这些患者在进行诸如用餐运动之类的日常生活中面临严重的困难。我们一直在开发肌电图(EMG)控制的外骨骼,以抑制震颤来支持这些患者的运动。问题在于患者的肌电信号被震颤信号调制为乘性噪声。在本文中,我们提出了一种新颖的信号处理方法来解调患者的EMG信号。我们用正弦波对乘性震颤信号进行建模,并通过将建模的震颤信号划分为EMG信号来去除EMG信号中的震颤信号。为了评估解调的效果,我们将该方法应用于真实患者的EMG信号,该信号是在肱二头肌屈曲时从肱二头肌中提取的。我们通过两种肌肉扭矩之间的均方根误差(根据EMG信号估算的扭矩和根据运动数据根据逆动态计算的扭矩)量化了解调效果。与使用低通滤波器(附加噪声的典型处理)相比,该方法成功地将误差降低了约15–45%,并显示了其在患者EMG信号解调中的有效性。

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