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Analysis of the ballistocardiographic artifact removal in simultaneous EEG-fMRI recording using independent component analysis and coherence function

机译:使用独立分量分析和相干函数分析同时进行EEG-fMRI记录的心电图伪影去除

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The simultaneous acquisition of EEG and fMRI has becoming increasingly important for neuroimaging research. However, this integration comes with artifacts that directly interfere in the signal quality. Independent component analysis has been one of the most used tools to remove biological artifacts and more recently it has been used to the removal of BCG artifact present when simultaneous EEG and fMRI is acquired. Although widely adopted some questions regarding the reliability of the estimated sources are still unanswered. The efficiency of the removal depends on the correct identification and selection of the artifact-related independent components. This selection is not obvious since different strategies give different results. Considering that no real BCG artifact-free data can be collected inside an MR scanner it is a difficult task to select the best criteria or best algorithm. In this paper we contribute to the solution of this problem proposing an automatic component selection method based on maximum absolute magnitude squared coherence function between the independent components and the ECG signal.
机译:脑电图和功能磁共振成像的同步采集对于神经影像研究变得越来越重要。但是,这种集成带有直接干扰信号质量的伪像。独立成分分析一直是去除生物伪影的最常用工具之一,近来,当同时获取EEG和fMRI时,它已被用于消除存在的BCG伪影。尽管被广泛采用,但有关估计来源可靠性的一些问题仍未得到解答。去除效率取决于与工件相关的独立组件的正确标识和选择。这种选择并不明显,因为不同的策略会产生不同的结果。考虑到无法在MR扫描器内收集真正的无BCG伪像数据,选择最佳标准或最佳算法是一项艰巨的任务。在本文中,我们为解决这一问题做出了贡献,提出了一种基于独立分量与ECG信号之间最大绝对值平方相干函数的自动分量选择方法。

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