December 2022 Functional random effects modeling of brain shape and connectivity
Eardi Lila, John A. D. Aston
Author Affiliations +
Ann. Appl. Stat. 16(4): 2122-2144 (December 2022). DOI: 10.1214/21-AOAS1572

Abstract

We present a statistical framework that jointly models brain shape and functional connectivity which are two complex aspects of the brain that have been classically studied independently. We adopt a Riemannian modeling approach to account for the non-Euclidean geometry of the space of shapes and the space of connectivity that constrains trajectories of covariation to be valid statistical estimates. In order to disentangle genetic sources of variability from those driven by unique environmental factors, we embed a functional random effects model in the Riemannian framework. We apply the proposed model to the Human Connectome Project dataset to explore spontaneous co-variation between brain shape and connectivity in young healthy individuals.

Funding Statement

JA wishes to gratefully acknowledge funding from Engineering and Physical Sciences Research Council (UK) EP/T017961/1. EL was partially supported by NSF Grant DMS-2210064.

Acknowledgments

We wish to thank the Editors and referees for the valuable comments and references.

Citation

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Eardi Lila. John A. D. Aston. "Functional random effects modeling of brain shape and connectivity." Ann. Appl. Stat. 16 (4) 2122 - 2144, December 2022. https://doi.org/10.1214/21-AOAS1572

Information

Received: 1 April 2021; Revised: 1 November 2021; Published: December 2022
First available in Project Euclid: 26 September 2022

MathSciNet: MR4489202
zbMATH: 1496.62187
Digital Object Identifier: 10.1214/21-AOAS1572

Keywords: Functional data analysis , mixed effects models , neuroimaging , variance component models

Rights: Copyright © 2022 Institute of Mathematical Statistics

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Vol.16 • No. 4 • December 2022
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