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Recognition of wrist EMG signal patterns using neural networks

机译:使用神经网络识别手腕肌电信号模式

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摘要

Information terminals in recent years, including cellular phones, have high performances due to new advances in IT. If a standard (such as Bluetooth) is used, it enables us to collect and to perform operational interfaces of various apparatuses using one equipment only. For example, a cellular phone can be turned on and off, made into manners mode, a CD player's volume can be easily regulated, and so on We call this "total operation device". However, such a device is not available yet. Therefore, we propose a recognition system based on wrist movements by focusing on ElectroMyoGram (EMG), using the body signals generated by voluntary movements of subject muscles, as the initial stage for construction of the total operation device. This paper tries to recognize EMG signals using neural networks (NNs). The electrodes under the dry state are attached to wrists and then EMG signals are measured. These EMG signals are classified using NNs into seven categories: neutral, up and down, right and left, inside twist, outside twist. The NN learns the FFT spectra of these signals in order to classify them. Moreover, we introduce a modular structure of the NN for improving the recognition accuracy. Computer simulations show that our approach is effective to classifying the EMG signals.
机译:近年来,包括蜂窝电话在内的信息终端由于IT的新进展而具有高性能。如果使用标准(例如蓝牙),它使我们能够仅使用一种设备来收集和执行各种设备的操作界面。例如,可以打开和关闭蜂窝电话,将其设置为礼貌模式,可以轻松调节CD播放器的音量,等等。我们称此为“总操作设备”。但是,这种设备尚不可用。因此,我们提出了一种以腕部运动为基础的识别系统,该系统以ElectroMyoGram(EMG)为重点,并使用由对象肌肉的自愿运动产生的身体信号,作为构建整个操作装置的初始阶段。本文尝试使用神经网络(NN)识别EMG信号。处于干燥状态的电极贴在手腕上,然后测量EMG信号。这些EMG信号使用NN分为七个类别:中性,上下,左右,内部扭曲,外部扭曲。 NN学习这些信号的FFT频谱以对其进行分类。此外,我们引入了神经网络的模块化结构以提高识别精度。计算机仿真表明,我们的方法可以有效地对EMG信号进行分类。

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