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Visual inspection of independent components: defining a procedure for artifact removal from fMRI data.

机译:视觉检查独立组件:定义从fMRI数据中去除伪影的程序。

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摘要

Artifacts in functional magnetic resonance imaging (fMRI) data, primarily those related to motion and physiological sources, negatively impact the functional signal-to-noise ratio in fMRI studies, even after conventional fMRI preprocessing. Independent component analysis' demonstrated capacity to separate sources of neural signal, structured noise, and random noise into separate components might be utilized in improved procedures to remove artifacts from fMRI data. Such procedures require a method for labeling independent components (ICs) as representing artifacts to be removed or neural signals of interest to be spared. Visual inspection is often considered an accurate method for such labeling as well as a standard to which automated labeling methods are compared. However, detailed descriptions of methods for visual inspection of ICs are lacking in the literature. Here we describe the details of, and the rationale for, an operationalized fMRI data denoising procedure that involves visual inspection of ICs (96% inter-rater agreement). We estimate that dozens of subjects/sessions can be processed within a few hours using the described method of visual inspection. Our hope is that continued scientific discussion of and testing of visual inspection methods will lead to the development of improved, cost-effective fMRI denoising procedures.
机译:功能磁共振成像(fMRI)数据中的伪像(主要是与运动和生理源有关的伪像)即使在常规fMRI预处理之后,也对fMRI研究中的功能信噪比产生负面影响。独立成分分析显示的将神经信号源,结构噪声和随机噪声分离为独立成分的能力可以在改进的过程中利用,以从fMRI数据中去除伪影。这样的程序需要一种用于标记独立组件(IC)的方法,以表示要去除的伪影或要保留的感兴趣的神经信号。目视检查通常被认为是用于此类标记的准确方法以及与自动标记方法进行比较的标准。然而,文献中缺少用于IC的视觉检查的方法的详细描述。在这里,我们描述了涉及视觉检查IC(96%的评分者协议)的功能化fMRI数据降噪过程的详细信息和理由。我们估计,使用上述视觉检查方法,可以在几个小时内处理数十个主题/课程。我们希望对视觉检查方法进行持续的科学讨论和测试将导致改进的,具有成本效益的fMRI去噪程序的发展。

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