作者
Rajan Kashyap, Ru Kong, Sagarika Bhattacharjee, Jingwei Li, Juan Zhou, BT Thomas Yeo
发表日期
2019/4/1
期刊
NeuroImage
卷号
189
页码范围
804-812
出版商
Academic Press
简介
There is significant interest in using resting-state functional connectivity (RSFC) to predict human behavior. Good behavioral prediction should in theory require RSFC to be sufficiently distinct across participants; if RSFC were the same across participants, then behavioral prediction would obviously be poor. Therefore, we hypothesize that removing common resting-state functional magnetic resonance imaging (rs-fMRI) signals that are shared across participants would improve behavioral prediction. Here, we considered 803 participants from the human connectome project (HCP) with four rs-fMRI runs. We applied the common and orthogonal basis extraction (COBE) technique to decompose each HCP run into two subspaces: a common (group-level) subspace shared across all participants and a subject-specific subspace. We found that the first common COBE component of the first HCP run was localized to the …
引用总数
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