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Adding neck muscle activity to a head phantom device to validate mobile EEG muscle and motion artifact removal *

机译:将颈部肌肉活动添加到头部幻影装置,以验证移动脑电图肌肉和运动伪影拆除 *

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Recent advancement in electroencephalography (EEG) signal processing and hardware can greatly reduce motion artifact, but neck muscle electrical activity is a problem during mobile brain imaging studies examining whole body movement tasks like walking and running. To test the ability of independent component analysis (ICA) to extract neural signals contaminated by neck muscle electrical activity, we broadcast ground-truth electrical signals through a head phantom device during motion. We placed the phantom on a motion platform used to replicate human head trajectories during walking and embedded neck muscle sources within the phantom. ICA was able to extract artificial neural sources from even the most contaminated data in this simulation of human walking. Performance of ICA in high muscle activity amplitude conditions was improved by including electromyographic recordings in the ICA decomposition. These results highlight the importance of recording multiple electromyographic signals from the neck during mobile brain imaging with EEG for studying electrocortical dynamics during movement.
机译:近期脑电图(EEG)信号处理和硬件的进步可以大大减少运动伪影,但颈部肌肉电力活动是在移动脑成像研究期间的问题,检查整个身体运动任务,如行走和跑步。为了测试独立分量分析(ICA)以提取由颈部肌肉电活动污染的神经信号的能力,我们在运动期间通过头部幻影装置广播地面真理电信号。我们将幻像放在用于在幻影内的行走和嵌入的颈部肌肉源期间复制人头轨迹的运动平台。 ICA能够从这种人类行走模拟中的最污染的数据中提取人工神经来源。通过在ICA分解中包括电焦记录,改善了ICA在高肌肉活动幅度条件下的性能。这些结果突出了在移动脑成像期间从颈部与脑电图记录多个电拍摄信号的重要性,用于在运动期间研究电离动力学。

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