Abbott David F, Masterton Richard A J, Archer John S, Fleming Steven W, Warren Aaron E L, Jackson Graeme D
The Florey Institute of Neuroscience and Mental Health, Austin Hospital , Melbourne, VIC , Australia ; The University of Melbourne , Melbourne, VIC , Australia.
The Florey Institute of Neuroscience and Mental Health, Austin Hospital , Melbourne, VIC , Australia ; The University of Melbourne , Melbourne, VIC , Australia ; Austin Hospital , Melbourne, VIC , Australia.
Front Neurol. 2015 Jan 5;5:260. doi: 10.3389/fneur.2014.00260. eCollection 2014.
One of the most significant impediments to high-quality EEG recorded in an MRI scanner is subject motion. Availability of motion artifact sensors can substantially improve the quality of the recorded EEG. In the study of epilepsy, it can also dramatically increase the confidence that one has in discriminating true epileptiform activity from artifact. This is due both to the reduction in artifact and the ability to visually inspect the motion sensor signals when reading the EEG, revealing whether or not head motion is present. We have previously described the use of carbon fiber loops for detecting and correcting artifact in EEG acquired simultaneously with MRI. The loops, attached to the subject's head, are electrically insulated from the scalp. They provide a simple and direct measure of specific artifact that is contaminating the EEG, including both subject motion and residual artifact arising from magnetic field gradients applied during MRI. Our previous implementation was used together with a custom-built EEG-fMRI system that differs substantially from current commercially available EEG-fMRI systems. The present technical note extends this work, describing in more detail how to construct the carbon fiber motion-detection loops, and how to interface them with a commercially available simultaneous EEG-fMRI system. We hope that the information provided may help those wishing to utilize a motion-detection/correction solution to improve the quality of EEG recorded within an MRI scanner.
在MRI扫描仪中记录高质量脑电图(EEG)的最大障碍之一是受试者的运动。运动伪影传感器的可用性可以显著提高记录的EEG质量。在癫痫研究中,它还可以大大增加人们区分真正癫痫样活动和伪影的信心。这既归因于伪影的减少,也归因于在读取EEG时能够直观检查运动传感器信号,从而揭示是否存在头部运动。我们之前描述了使用碳纤维环来检测和校正与MRI同时采集的EEG中的伪影。这些环附着在受试者头部,与头皮电绝缘。它们提供了一种简单直接的方法来测量污染EEG的特定伪影,包括受试者运动和MRI期间施加的磁场梯度产生的残余伪影。我们之前的实现方式与一个定制的EEG - fMRI系统一起使用,该系统与当前市售的EEG - fMRI系统有很大不同。本技术说明扩展了这项工作,更详细地描述了如何构建碳纤维运动检测环,以及如何将它们与市售的同步EEG - fMRI系统连接。我们希望所提供的信息可以帮助那些希望利用运动检测/校正解决方案来提高在MRI扫描仪中记录的EEG质量的人。