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Effective Synchronization of EEG and EMG for Mobile Brain/Body Imaging in Clinical Settings

机译:脑电图和肌电图在临床环境中用于移动式脑部/身体成像的有效同步

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摘要

Mobile Brain/Body Imaging (MoBI) is rapidly gaining traction as a new imaging modality to study how cognitive processes support locomotion. Electroencephalogram (EEG) and electromyogram (EMG), due to their time resolution, non-invasiveness and portability are the techniques of choice for MoBI, but synchronization requirements among others restrict its use to high-end research facilities. Here we test the effectiveness of a technique that enables us to achieve MoBI-grade synchronization of EEG and EMG, even when other strategies (such as Lab Streaming Layer (LSL)) cannot be used e.g., due to the unavailability of proprietary Application Programming Interfaces (APIs), which is often the case in clinical settings. The proposed strategy is that of aligning several spikes at the beginning and end of the session. We delivered a train of spikes to the EEG amplifier and EMG electrodes every 2 s over a 10-min time period. We selected a variable number of spikes (from 1 to 10) both at the beginning and end of the time series and linearly resampled the data so as to align them. We then compared the misalignment of the “middle” spikes over the whole recording to test for jitter and synchronization drifts, highlighting possible nonlinearities (due to hardware filters) and estimated the maximum length of the recording to achieve a [−5 to 5] ms misalignment range. We demonstrate that MoBI-grade synchronization can be achieved within 10-min recordings with a 1.7 ms jitter and [−5 5] ms misalignment range. We show that repeated spike delivery can be used to test online synchronization options and to troubleshoot synchronization issues over EEG and EMG. We also show that synchronization cannot rely only on the equipment sampling rate advertised by manufacturers. The synchronization strategy described can be used virtually in every clinical environment, and may increase the interest among a broader spectrum of clinicians and researchers in the MoBI framework, ultimately leading to a better understanding of the brain processes underlying locomotion control and the development of more effective rehabilitation approaches.
机译:移动脑部/身体成像(MoBI)作为研究成像过程如何支持运动的一种新的成像方式正在迅速获得关注。脑电图(EEG)和肌电图(EMG)由于其时间分辨率,无创性和便携性是MoBI的首选技术,但是同步性要求将其限制在高端研究机构中使用。在这里,我们测试一种技术的有效性,该技术使我们能够实现EEG和EMG的MoBI级同步,即使在其他策略(例如实验室流传输层(LSL))无法使用(例如由于专有应用程序编程接口不可用)的情况下, (API),在临床环境中通常是这种情况。建议的策略是在会话开始和结束时对齐几个峰值。我们在10分钟的时间内每2秒钟向EEG放大器和EMG电极发送一列尖峰信号。我们在时间序列的开始和结束时都选择了可变数量的峰值(从1到10),并对数据进行线性重新采样以使其对齐。然后,我们比较了整个记录中“中间”尖峰的未对准情况,以测试抖动和同步漂移,突出显示了可能的非线性(由于硬件滤波器的影响),并估计了记录的最大长度以实现[-5至5] ms未对准范围。我们证明了MoBI级同步可以在10分钟的录音中实现,并具有1.7 ms的抖动和[-5 5] ms的未对准范围。我们显示重复的峰值交付可用于测试在线同步选项并解决EEG和EMG上的同步问题。我们还表明,同步不能仅依赖于制造商宣传的设备采样率。所描述的同步策略几乎可以在每种临床环境中使用,并且可能会增加MoBI框架中更广泛的临床医生和研究人员的兴趣,从而最终使人们更好地理解运动控制所基于的大脑过程并开发出更有效的方法康复方法。

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