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The weight load inconsistency effect on voluntary movement recognition of essential tremor patient

机译:体重负荷不一致对原发性震颤患者自主运动识别的影响

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Essential Tremor (ET) refers to involuntary movements of a part of the body. ET patients have serious difficulties in performing their daily living activities. Our ultimate goal is to develop a system that can enable ET patients to perform their daily living activities. We are in the process of developing an exoskeletal robot for ET patients. This robot is controlled by estimation of voluntary movement using surface electromyogram (EMG) signal input and a Neural Network (NN) learning algorithm. However, the EMG signal of ET patients contains not only signals from voluntary movements but also noise from involuntary tremors. We have therefore developed a signal processing method to suppress tremor noise present in the surface EMG signal. The proposed filter is based on the hypothesis that tremor noise can be approximated to powered sine wave. It have been confirmed that the proposed filter increases the accuracy of recognition. In this paper, we have focused on the effect of inconsistency of weight load between instruction signal and input signal. When the instruction signal comprised unloaded motion, our voluntary movement estimation method worked stably with the loaded motion's EMG input.
机译:本质震颤(ET)是指身体一部分的非自愿运动。 ET患者在进行日常活动中遇到严重困难。我们的最终目标是开发一种系统,使ET患者能够执行其日常活动。我们正在为ET患者开发外骨骼机器人。通过使用表面肌电图(EMG)信号输入和神经网络(NN)学习算法估算自愿运动来控制该机器人。但是,ET患者的EMG信号不仅包含来自自愿运动的信号,还包含来自非自愿震颤的噪声。因此,我们开发了一种信号处理方法来抑制表面肌电信号中存在的震颤噪声。所提出的滤波器基于这样的假设,即震颤噪声可以近似为正弦波。已经证实,提出的滤波器提高了识别的准确性。在本文中,我们集中于指令信号和输入信号之间的重量负载不一致的影响。当指令信号包含空载运动时,我们的自发运动估计方法可以在空载运动的EMG输入下稳定运行。

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