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Effects of Gradient Coil Noise and Gradient Coil Replacement on the Reproducibility of Resting State Networks

机译:梯度线圈噪声和梯度线圈替换对静止状态网络重现性的影响

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摘要

The stability of the MRI scanner throughout a given study is critical in minimizing hardware-induced variability in the acquired imaging data set. However, MRI scanners do malfunction at times, which could generate image artifacts and would require the replacement of a major component such as its gradient coil. In this article, we examined the effect of low intensity, randomly occurring hardware-related noise due to a faulty gradient coil on brain morphometric measures derived from T1-weighted images and resting state networks (RSNs) constructed from resting state functional MRI. We also introduced a method to detect and minimize the effect of the noise associated with a faulty gradient coil. Finally, we assessed the reproducibility of these morphometric measures and RSNs before and after gradient coil replacement. Our results showed that gradient coil noise, even at relatively low intensities, could introduce a large number of voxels exhibiting spurious significant connectivity changes in several RSNs. However, censoring the affected volumes during the analysis could minimize, if not completely eliminate, these spurious connectivity changes and could lead to reproducible RSNs even after gradient coil replacement.
机译:整个给定研究中MRI扫描仪的稳定性对于最大程度地减少采集的成像数据集中由硬件引起的变异性至关重要。但是,MRI扫描仪有时会发生故障,这可能会产生图像伪影,并需要更换主要组件(例如其梯度线圈)。在本文中,我们检查了由梯度线圈故障引起的低强度,随机发生的与硬件相关的噪声对从T1加权图像和静息状态网络(RSN)导出的脑形态测量指标的影响,这些静息状态网络是由静息状态功能MRI构建的。我们还介绍了一种检测和最小化与故障梯度线圈相关的噪声影响的方法。最后,我们评估了梯度线圈更换前后这些形态学测量和RSN的可重复性。我们的结果表明,即使在相对较低的强度下,梯度线圈噪声也可能会引入大量体素,这些体素在几个RSN中显示出虚假的显着连通性变化。但是,在分析过程中检查受影响的体积可能会最小化(即使不能完全消除)这些虚假的连接性变化,甚至在更换梯度线圈后也可能导致可重现的RSN。

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