2021
DOI: 10.1088/1741-2552/abecc6
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Inferring functional connectivity through graphical directed information

Abstract: Objective. Accurate inference of functional connectivity is critical for understanding brain function. Previous methods have limited ability distinguishing between direct and indirect connections because of inadequate scaling with dimensionality. This poor scaling performance reduces the number of nodes that can be included in conditioning. Our goal was to provide a technique that scales better and thereby enables minimization of indirect connections. Approach. Our major contribution is a powerful model-free f… Show more

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References 34 publications
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