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Removal of BCG artifacts from EEG recordings inside the MR scanner: A comparison of methodological and validation-related aspects

机译:从MR扫描器内的EEG记录中去除BCG伪像:方法学和验证相关方面的比较

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Multimodal approaches are of growing interest in the study of neural processes. To this end much attention has been paid to the integration of electroencephalographic (EEG) and functional magnetic resonance imaging (fMRI) data because of their complementary properties. However, the simultaneous acquisition of both types of data causes serious artifacts in the EEG, with amplitudes that may be much larger than those of EEG signals themselves. The most challenging of these artifacts is the ballistocardiogram (BCG) artifact, caused by pulse-related electrode movements inside the magnetic field. Despite numerous efforts to find a suitable approach to remove this artifact, still a considerable discrepancy exists between current EEG-fMRI studies. This paper attempts to clarify several methodological issues regarding the different approaches with an extensive validation based on event-related potentials (ERPs). More specifically, Optimal Basis Set (OBS) and Independent Component Analysis (ICA) based methods were investigated. Their validation was not only performed with measures known from previous studies on the average ERPs, but most attention was focused on task-related measures, including their use on trial-to-trial information. These more detailed validation criteria enabled us to find a clearer distinction between the most widely used cleaning methods. Both OBS and ICA proved to be able to yield equally good results. However, ICA methods needed more parameter tuning, thereby making OBS more robust and easy to use. Moreover, applying OBS prior to ICA can optimize the data quality even more, but caution is recommended since the effect of the additional ICA step may be strongly subject-dependent.
机译:在神经过程的研究中,多峰方法越来越受到关注。为此,由于它们的互补特性,已经非常重视脑电图(EEG)和功能磁共振成像(fMRI)数据的集成。但是,同时获取这两种类型的数据会导致EEG中出现严重的伪影,其幅度可能比EEG信号本身的幅度大得多。这些伪影中最具挑战性的是心搏描记图(BCG)伪影,它是由磁场内与脉冲相关的电极运动引起的。尽管人们为寻找合适的方法去除这种伪影付出了许多努力,但当前的EEG-fMRI研究之间仍然存在相当大的差异。本文试图通过基于事件相关电位(ERP)的广泛验证来阐明有关不同方法的几个方法学问题。更具体地说,研究了基于最佳基础集(OBS)和独立成分分析(ICA)的方法。他们的验证不仅使用先前对平均ERP的研究中已知的方法进行,而且最受关注的是与任务相关的方法,包括它们在试验信息中的使用。这些更详细的验证标准使我们能够在最广泛使用的清洁方法之间找到更清晰的区别。事实证明,OBS和ICA都能产生同样好的结果。但是,ICA方法需要更多的参数调整,从而使OBS更加健壮和易于使用。此外,在ICA之前应用OBS可以进一步优化数据质量,但是建议谨慎,因为附加ICA步骤的效果可能与主体紧密相关。

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