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Ballistocardiogram Artifact Removal in EEG-fMRI Signals Using Discrete Hermite Transforms

机译:使用离散Hermite变换去除EEG-fMRI信号中的心电图伪影

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ara> Simultaneously recorded electroencephalogram (EEG) and functional magnetic resonance imaging (fMRI) is rapidly emerging as a powerful neurophysiological research and clinical tool. However, the quality of the EEG, recorded in the MRI scanner, is affected by the ballistocardiogram (BCG), which is an artifact related to the cardiac cycle. The BCG has a complete spectral overlap with the EEG and is nonstationary over time, making its suppression a signal processing challenge. We propose a novel method for the identification and suppression of this artifact using shape basis functions of the new dilated discrete Hermite transform. The BCG artifacts are modeled continuously, using these discrete Hermite basis functions and are subsequently subtracted from the ongoing EEG. Experimental EEG data was recorded within and outside a 3 Tesla MRI scanner, from a total of 6 subjects under a variety of experimental conditions. The efficiency of this algorithm was quantitatively assessed by adding known BCG templates, at varying Signal to Noise Ratios (SNRs), to EEG recorded outside the scanner. Significant suppression of the BCG artifact (p $≪0.05$) was achieved without distorting the underlying EEG. Using EEG data recorded inside the MR scanner, this method was compared with existing BCG artifact removal techniques and its performance was found to be superior to the Average Artifact Subtraction (AAS) method and comparable to the Independent Component Analysis (ICA) based methods. The computational simplicity of this technique allows for real time implementation.
机译:ara>同时​​记录的脑电图(EEG)和功能磁共振成像(fMRI)迅速成为一种强大的神经生理学研究和临床工具。但是,MRI扫描仪中记录的EEG的质量受到心电图(BCG)的影响,心音是与心动周期相关的伪影。 BCG与EEG具有完全的频谱重叠,并且随着时间的推移是不稳定的,这使其抑制成为信号处理的挑战。我们提出了一种新的方法,该方法使用新的膨胀离散Hermite变换的形状基础函数来识别和抑制此伪影。使用这些离散的Hermite基函数对BCG伪影进行连续建模,然后将其从正在进行的EEG中减去。在3台Tesla MRI扫描仪的内部和外部记录了实验性EEG数据,在各种实验条件下共来自6名受试者。通过将已知的BCG模板以变化的信噪比(SNR)添加到扫描仪外部记录的EEG,定量评估了该算法的效率。显着抑制了BCG伪像(p $ ≪0.05 $ ),而不会扭曲潜在的EEG。使用MR扫描器内部记录的EEG数据,将该方法与现有的BCG伪影去除技术进行了比较,发现其性能优于平均伪影减法(AAS)方法,并且可与基于独立成分分析(ICA)的方法相媲美。该技术的计算简单性允许实时实现。

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