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首页> 外文期刊>Magnetic resonance imaging: An International journal of basic research and clinical applications >Evaluation of preprocessing steps to compensate for magnetic field distortions due to body movements in BOLD fMRI
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Evaluation of preprocessing steps to compensate for magnetic field distortions due to body movements in BOLD fMRI

机译:评估预处理步骤以补偿BOLD fMRI中由于人体运动引起的磁场失真

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摘要

Blood oxygenation level-dependent (BOLD) functional magnetic resonance imaging (MARI) is currently the dominant technique for non-invasive investigation of brain functions. One of the challenges with BOLD fMRI, particularly at high fields, is compensation for the effects of spatiotemporally varying magnetic field inhomogeneities (Delta B-0) caused by normal subject respiration and, in some studies, movement of the subject during the scan to perform tasks related to the functional paradigm. The presence of Delta B-0 during data acquisition distorts reconstructed images and introduces extraneous fluctuations in the fMRI time series that decrease the BOLD contrast-to-noise ratio. Optimization of the fMRI data-processing pipeline to compensate for geometric distortions is of paramount importance to ensure high quality of fMRI data. To investigate Delta B-0 caused by subject movement, echo-planar imaging scans were collected with and without concurrent motion of a phantom arm. The phantom arm was constructed and moved by the experimenter to emulate forearm motions while subjects remained still and observed a visual stimulation paradigm. These data were then subjected to eight different combinations of preprocessing steps. The best preprocessing pipeline included navigator correction, a complex phase regressor and spatial smoothing. The synergy between navigator correction and phase regression reduced geometric distortions better than either step in isolation and preconditioned the data to make them more amenable to the benefits of spatial smoothing. The combination of these steps provided a 10% increase in t-statistics compared to only navigator correction and spatial smoothing and reduced the noise and false activations in regions where no legitimate effects would occur.
机译:血液氧合水平依赖性(BOLD)功能磁共振成像(MARI)是目前非侵入性研究脑功能的主要技术。 BOLD fMRI的挑战之一,尤其是在高磁场下,是要补偿由正常的受试者呼吸以及某些研究中受试者在扫描过程中的运动引起的时空变化的磁场不均匀性(Delta B-0)的影响与功能范式相关的任务。数据采集​​过程中Delta B-0的存在使重构图像失真,并在fMRI时间序列中引入了外部波动,从而降低了BOLD对比度对噪声比。优化fMRI数据处理管道以补偿几何失真对于确保fMRI数据的高质量至关重要。为了调查由受试者运动引起的Delta B-0,在有和没有幻像臂同时运动的情况下,收集了回波平面成像扫描。幻影臂由实验者构造和移动,以模拟前臂运动,而受试者保持静止并观察到视觉刺激范例。然后对这些数据进行八种不同的预处理步骤组合。最好的预处理流程包括导航器校正,复杂的相位回归器和空间平滑。导航器校正和相位回归之间的协同作用比隔离中的任何一个步骤都更好地减少了几何畸变,并且对数据进行了预处理以使其更适合于空间平滑的好处。与仅导航器校正和空间平滑相比,这些步骤的组合使t统计量增加了10%,并减少了不会产生合法影响的区域中的噪声和错误激活。

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