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A Study of Long-Term fMRI Reproducibility Using Data-Driven Analysis Methods

机译:基于数据驱动分析方法的长期fMRI再现性研究

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摘要

The reproducibility of functional magnetic resonance imaging (fMRI) is important for fMRI-based neuroscience research and clinical applications. Previous studies show considerable variation in amplitude and spatial extent of fMRI activation across repeated sessions on individual subjects even using identical experimental paradigms and imaging conditions. Most existing fMRI reproducibility studies were typically limited by time duration and data analysis techniques. Particularly, the assessment of reproducibility is complicated by a fact that fMRI results may depend on data analysis techniques used in reproducibility studies. In this work, the long-term fMRI reproducibility was investigated with a focus on the data analysis methods. Two spatial smoothing techniques, including a wavelet-domain Bayesian method and the Gaussian smoothing, were evaluated in terms of their effects on the long-term reproducibility. A multivariate support vector machine (SVM)-based method was used to identify active voxels, and compared to a widely used general linear model (GLM)-based method at the group level. The reproducibility study was performed using multisession fMRI data acquired from eight healthy adults over 1.5 years’ period of time. Three regions-of-interest (ROI) related to a motor task were defined based upon which the long-term reproducibility were examined. Experimental results indicate that different spatial smoothing techniques may lead to different reproducibility measures, and the wavelet-based spatial smoothing and SVM-based activation detection is a good combination for reproducibility studies. On the basis of the ROIs and multiple numerical criteria, we observed a moderate to substantial within-subject long-term reproducibility. A reasonable long-term reproducibility was also observed from the inter-subject study. It was found that the short-term reproducibility is usually higher than the long-term reproducibility. Furthermore, the results indicate that brain regions with high contrast-to-noise ratio do not necessarily exhibit high reproducibility. These findings may provide supportive information for optimal design/implementation of fMRI studies and data interpretation.
机译:功能磁共振成像(fMRI)的可重复性对于基于fMRI的神经科学研究和临床应用非常重要。先前的研究表明,即使使用相同的实验范式和成像条件,在单个受试者的重复训练过程中,fMRI激活的幅度和空间范围也会发生很大变化。大多数现有的fMRI可重复性研究通常受持续时间和数据分析技术的限制。特别地,由于fMRI结果可能取决于在再现性研究中使用的数据分析技术,使得对再现性的评估变得复杂。在这项工作中,研究了长期功能磁共振成像的可重复性,重点是数据分析方法。评估了两种空间平滑技术(包括小波域贝叶斯方法和高斯平滑)对长期再现性的影响。基于多元支持向量机(SVM)的方法用于识别活动体素,并与在组级别与广泛使用的基于通用线性模型(GLM)的方法进行比较。这项可重复性研究是使用多阶段fMRI数据进行的,这些数据是在1.5年的时间里从八名健康成年人那里获得的。定义了与运动任务相关的三个感兴趣区域(ROI),并根据这些感兴趣区域检查了长期可重复性。实验结果表明,不同的空间平滑技术可能会导致不同的可重复性度量,而基于小波的空间平滑和基于SVM的激活检测是可重复性研究的良好组合。基于ROI和多个数值标准,我们观察到了中度到重度的受试者内部长期可重复性。从受试者间研究还观察到合理的长期可重复性。发现短期再现性通常高于长期再现性。此外,结果表明,具有高对比度噪声比的大脑区域不一定显示出高再现性。这些发现可能为功能磁共振成像研究和数据解释的最佳设计/实施提供支持信息。

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