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Independent component analysis of fMRI group studies by self-organizing clustering
2005
NeuroImage
Independent component analysis (ICA) is a valuable technique for the multivariate data-driven analysis of functional magnetic resonance imaging (fMRI) data sets. Applications of ICA have been developed mainly for single subject studies, although different solutions for group studies have been proposed. These approaches combine data sets from multiple subjects into a single aggregate data set before ICA estimation and, thus, require some additional assumptions about the separability across
doi:10.1016/j.neuroimage.2004.10.042
pmid:15734355
fatcat:tqggzrv4dfd6ldgjdxjxyaxy6y