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Simultaneously recorded EEG–fMRI: Removal of gradient artifacts by subtraction of head movement related average artifact waveforms

机译:同时记录的EEG-fMRI:通过减去与头部运动有关的平均伪影波形来消除梯度伪影

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摘要

Electroencephalograms (EEGs) recorded simultaneously with functional magnetic resonance imaging (fMRI) are corrupted by large repetitive artifacts generated by the switched MR gradients. Several methods have been proposed to remove these distortions by subtraction of averaged artifact templates from the ongoing EEG. Here, we present a modification of this approach which accounts for head movements to improve the extracted template. Using the fMRI analysis package statistical parametric mapping (SPM; FIL London) the head displacement is determined at each half fMRI‐volume. The basic idea is to apply a moving average algorithm for template extraction but to include only epochs that were obtained at the same head position as the artefact to be removed. This approach was derived from phantom EEG measurements demonstrating substantial variations of the artefact waveform in response to movements of the phantom in the MRI magnet. To further reduce the residual noise, we applied a resampling algorithm which aligns the EEG samples in a strict adaptive manner to the fMRI timing. Finally, we propose a new algorithm to suppress residual artifacts such as those occasionally observed in case of brief strong movements, which are not reflected by the movement indicator because of the limited temporal resolution of the fMRI sequence. On the basis of EEG recordings of six subjects these measures combined reduce the residual artefact activity quantified in terms of the spectral power at the gradient repetition rate and its harmonics by roughly 20 to 50% (depending on the amount of movement) predominantly in frequencies beyond 30 Hz. Hum Brain Mapp, 2009. © 2009 Wiley‐Liss, Inc.
机译:与功能磁共振成像(fMRI)同时记录的脑电图(EEG)被切换的MR梯度产生的大量重复伪像破坏。已经提出了几种方法通过从正在进行的EEG中减去平均伪像模板来消除这些失真。在这里,我们提出了这种方法的一种修改形式,该方法考虑了头部运动以改善提取的模板。使用fMRI分析工具包统计参数映射(SPM; FIL London),在每半fMRI体积处确定头部位移。基本思想是将移动平均算法应用于模板提取,但仅包括在与要去除的假象相同的头部位置上获得的历元。这种方法是从幻影脑电图测量中得出的,该测量结果表明了伪影波形响应MRI磁体中幻影运动而发生了实质性变化。为了进一步减少残留噪声,我们应用了重采样算法,该算法以严格的自适应方式将脑电图样本与功能磁共振成像时间对齐。最后,我们提出了一种新的算法来抑制残余伪像,例如在短暂的强烈运动情况下偶尔观察到的伪像,由于fMRI序列的时间分辨率有限,这些伪像没有被运动指示符反映。在六名受试者的脑电图记录的基础上,这些措施相结合可将以梯度重复率及其谐波的频谱功率量化的残余假象活动降低大约20%至50%(取决于运动量),主要是在30赫兹嗡嗡的脑图,2009年。©2009 Wiley-Liss,Inc.

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