2018
DOI: 10.1007/978-3-030-00755-3_13
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Connectivity-Driven Brain Parcellation via Consensus Clustering

Abstract: We present two related methods for deriving connectivitybased brain atlases from individual connectomes. The proposed methods exploit a previously proposed dense connectivity representation, termed continuous connectivity, by first performing graph-based hierarchical clustering of individual brains, and subsequently aggregating the individual parcellations into a consensus parcellation. The search for consensus minimizes the sum of cluster membership distances, effectively estimating a pseudo-Karcher mean of i… Show more

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