From connectivity models to region labels: identifying foci of a neurological disorder.

Venkataraman, Archana; Kubicki, Marek; Golland, Polina · IEEE Trans Med Imaging · 2013

other · Level V

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Abstract

We propose a novel approach to identify the foci of a neurological disorder based on anatomical and functional connectivity information. Specifically, we formulate a generative model that characterizes the network of abnormal functional connectivity emanating from the affected foci. This allows us to aggregate pairwise connectivity changes into a region-based representation of the disease. We employ the variational expectation-maximization algorithm to fit the model and subsequently identify both the afflicted regions and the differences in connectivity induced by the disorder. We demonstrate our method on a population study of schizophrenia.

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