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Filtering Essential Tremor noise on surface EMG based on squared sine wave approximation

机译:基于平方正弦波逼近的表面EMG过滤基本震颤噪声

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Essential Tremor (ET) refers to involuntary movements of a part of the body. ET patients have serious difficulties in performing daily living activities. Our ultimate goal is to develop a system that can enable ET patients to perform daily living activities. We have been developing an exoskeleton robot for ET patients. We make use of the electromyogram (EMG) signal to control this robot. However, the EMG signal of ET patients contains not only signals from voluntary movements but also noise from involuntary tremors. In this paper, we focus on developing a signal processing method to suppress tremor noise present in the surface EMG signal. The proposed filter detected attenuation ratio by the correlation between the last EMG data and one period squared sine wave. The filtered EMG signals indicated that essential tremor noise of the elbow flexed posture while holding a water-filled bottle was suppressed. In addition, voluntary information was less affected by the filter. Welch's t-value test confirmed that ease of extraction of voluntary movement was increased by the proposed filter.
机译:基本震颤(et)是指身体的一部分的非自愿运动。患者在进行日常生活活动方面存在严重困难。我们的最终目标是开发一个可以使患者能够进行日常生活活动的系统。我们一直在为ET患者开发一个外骨骼机器人。我们利用电灰度(EMG)信号来控制该机器人。然而,ET患者的EMG信号不仅包含来自自愿运动的信号,而且含有来自非自愿震颤的噪音。在本文中,我们专注于开发信号处理方法来抑制表面EMG信号中存在的震颤噪声。所提出的滤波器通过最后一个EMG数据与一个周期平方波之间的相关性检测衰减比。滤波的EMG信号表示抑制了弯头弯曲姿势的基本震颤震颤,同时握住充满水瓶的瓶子。此外,通过过滤器影响志愿信息较小。 Welch的T值测试证实,通过所提出的过滤器增加了自愿运动的易提取。

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