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An improved framework for confound regression and filtering for control of motion artifact in the preprocessing of resting-state functional connectivity data

机译:改进的框架,用于在静态状态功能连接数据的预处理中控制运动伪像,进行混杂回归和过滤

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摘要

Several recent reports in large, independent samples have demonstrated the influence of motion artifact on resting-state functional connectivity MRI (rsfc-MRI). Standard rsfc-MRI preprocessing typically includes regression of confounding signals and band-pass filtering. However, substantial heterogeneity exists in how these techniques are implemented across studies, and no prior study has examined the effect of differing approaches for the control of motion-induced artifacts. To better understand how in-scanner head motion affects rsfc-MRI data, we describe the spatial, temporal, and spectral characteristics of motion artifacts in a sample of 348 adolescents. Analyses utilize a novel approach for describing head motion on a voxelwise basis. Next, we systematically evaluate the efficacy of a range of confound regression and filtering techniques for the control of motion-induced artifacts. Results reveal that the effectiveness of preprocessing procedures on the control of motion is heterogeneous, and that improved preprocessing provides a substantial benefit beyond typical procedures. These results demonstrate that the effect of motion on rsfc-MRI can be substantially attenuated through improved preprocessing procedures, but not completely removed.
机译:大型独立样本中的一些最新报告证明了运动伪影对静止状态功能连接性MRI(rsfc-MRI)的影响。标准的rsfc-MRI预处理通常包括混淆信号的回归和带通滤波。但是,这些技术在各个研究中的实施方式之间存在很大的异质性,并且之前的研究都没有研究控制运动诱发伪像的不同方法的效果。为了更好地了解扫描仪内头部运动如何影响rsfc-MRI数据,我们在348个青少年样本中描述了运动伪影的空间,时间和光谱特征。分析利用一种新颖的方法在体素的基础上描述头部运动。接下来,我们系统地评估了一系列混杂回归和滤波技术在控制运动引起的伪影方面的功效。结果表明,预处理程序对运动控制的有效性是异类的,改进的预处理程序提供了超越常规程序的巨大好处。这些结果表明,运动对rsfc-MRI的影响可以通过改进的预处理程序大大减弱,但不能完全消除。

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