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Reference-free removal of EEG-fMRI ballistocardiogram artifacts with harmonic regression

机译:通过谐波回归无参考去除EEG-fmRI心冲击图伪影

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摘要

Combining electroencephalogram (EEG) recording and functional magnetic resonance imaging (fMRI) offers the potential for imaging brain activity with high spatial and temporal resolution. This potential remains limited by the significant ballistocardiogram (BCG) artifacts induced in the EEG by cardiac pulsation-related head movement within the magnetic field. We model the BCG artifact using a harmonic basis, pose the artifact removal problem as a local harmonic regression analysis, and develop an efficient maximum likelihood algorithm to estimate and remove BCG artifacts. Our analysis paradigm accounts for time-frequency overlap between the BCG artifacts and neurophysiologic EEG signals, and tracks the spatiotemporal variations in both the artifact and the signal. We evaluate performance on: simulated oscillatory and evoked responses constructed with realistic artifacts; actual anesthesia-induced oscillatory recordings; and actual visual evoked potential recordings. In each case, the local harmonic regression analysis effectively removes the BCG artifacts, and recovers the neurophysiologic EEG signals. We further show that our algorithm outperforms commonly used reference-based and component analysis techniques, particularly in low SNR conditions, the presence of significant time-frequency overlap between the artifact and the signal, and/or large spatiotemporal variations in the BCG. Because our algorithm does not require reference signals and has low computational complexity, it offers a practical tool for removing BCG artifacts from EEG data recorded in combination with fMRI.
机译:脑电图(EEG)记录和功能磁共振成像(fMRI)的结合提供了以高时空分辨率成像大脑活动的潜力。这种潜力仍然受到心电图相关的头部在磁场内运动而在EEG中诱发的重要心电图(BCG)伪影的限制。我们使用谐波对BCG伪像进行建模,将伪像去除问题摆在局部谐波回归分析中,并开发一种有效的最大似然算法来估计和消除BCG伪像。我们的分析范例说明了BCG伪影和神经生理EEG信号之间的时频重叠,并跟踪了伪影和信号的时空变化。我们评估以下方面的性能:用逼真的伪像构造的模拟振荡和诱发响应;实际麻醉引起的振荡记录;和实际的视觉诱发电位记录。在每种情况下,局部谐波回归分析都能有效消除BCG伪像,并恢复神经生理性EEG信号。我们进一步表明,我们的算法优于常规的基于参考的分析和成分分析技术,特别是在低SNR条件下,伪像与信号之间存在明显的时频重叠和/或BCG时空变化较大的情况。因为我们的算法不需要参考信号并且计算复杂度低,所以它提供了一种实用工具,可从与fMRI结合记录的EEG数据中去除BCG伪像。

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