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High-homogeneity functional parcellation of human brain for investigating robust functional connectivity

机译:人脑的高均匀性功能分割,用于研究强大的功能连接性

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Over the years, resting state functional magnetic resonance imaging (rsfMRI) has been a preferred design tool to analyze human brain functions and brain parcellations. Several different statistical methods have been proposed to study functional connectivity and generate various parcellation atlases based on corresponding connectivity maps. In this study, we employ a sliding window correlation method to generate accurate individual voxel-wise dynamic functional connectivity maps, based on which the brain can be parcellated into highly homogeneous functional parcels. Because there is no ground truth for functional brain parcellation, we accomplish parcellation via k-means clustering to compare with other available parcellations. With temporal characteristics of functional connectivity taken into consideration, high homogeneity can be observed in high resolution parcellation of human brain.
机译:多年来,静止状态功能磁共振成像(rsfMRI)已成为分析人脑功能和大脑碎片的首选设计工具。已经提出了几种不同的统计方法来研究功能连通性并根据相应的连通性图生成各种分类图集。在这项研究中,我们采用滑动窗口相关方法来生成精确的个体体素方向动态功能连接图,在此基础上,大脑可以被分解为高度均匀的功能块。由于没有功能性大脑分割的基础知识,因此我们通过k均值聚类来完成分割,以与其他可用分割进行比较。考虑到功能连接的时间特性,可以在人脑的高分辨率分割中观察到高同质性。

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