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EMG Onset Detection Based on Teager-Kaiser Energy Operator and Morphological Close Operation

机译:基于Teager-Kaiser能量算子和形态闭合操作的EMG发作检测

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As a typical biomedical signal, the electromyography (EMG) is now widely used as a human-machine interface in the control of robotic rehabilitation devices such as prosthetic hands and legs. Immediately detecting and eliciting of a valid EMG signal are greatly anticipated for ensuring a fast-response and high-precision EMG control scheme. This paper utilizes two schemes, Teager-Kaise Engergy (TKE) operator and Morphological Close Operation (MCO), to improve the accuracy of the onset/offset detection of EMG activities. The TKE operator is used to amplify the EMG signal's amplitude change on the initiation/cessation phases, while the MCO is adopted to filter out the false positives of the binary sequence obtained by the fore TKE operation. This method is simple and easily to be implemented. After selecting appropriate filtering parameters (T_1, T_2 and j), it can achieve precise onset detection (absolute error <10ms) over a variety of signal-to-noise ratios (SNR) of the biomedical signal.
机译:作为一种典型的生物医学信号,肌电图(EMG)现在被广泛用作人机界面,用于控制机器人修复设备(如假手和腿)。为了确保快速响应和高精度的EMG控制方案,人们迫切期望立即检测和引发有效的EMG信号。本文采用了两种方案,即Teager-Kaise Engergy(TKE)操作员和Morphological Close Operation(MCO),以提高EMG活动的开始/偏移检测的准确性。 TKE运算符用于在启动/停止阶段放大EMG信号的幅度变化,而MCO则用于过滤通过前TKE操作获得的二进制序列的误报。该方法简单易行。选择适当的滤波参数(T_1,T_2和j)后,它可以在各种生物医学信号的信噪比(SNR)上实现精确的开始检测(绝对误差<10ms)。

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