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2017 | OriginalPaper | Buchkapitel

Exact Topological Inference for Paired Brain Networks via Persistent Homology

verfasst von : Moo K. Chung, Victoria Villalta-Gil, Hyekyoung Lee, Paul J. Rathouz, Benjamin B. Lahey, David H. Zald

Erschienen in: Information Processing in Medical Imaging

Verlag: Springer International Publishing

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Abstract

We present a novel framework for characterizing paired brain networks using techniques in hyper-networks, sparse learning and persistent homology. The framework is general enough for dealing with any type of paired images such as twins, multimodal and longitudinal images. The exact nonparametric statistical inference procedure is derived on testing monotonic graph theory features that do not rely on time consuming permutation tests. The proposed method computes the exact probability in quadratic time while the permutation tests require exponential time. As illustrations, we apply the method to simulated networks and a twin fMRI study. In case of the latter, we determine the statistical significance of the heritability index of the large-scale reward network where every voxel is a network node.

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Metadaten
Titel
Exact Topological Inference for Paired Brain Networks via Persistent Homology
verfasst von
Moo K. Chung
Victoria Villalta-Gil
Hyekyoung Lee
Paul J. Rathouz
Benjamin B. Lahey
David H. Zald
Copyright-Jahr
2017
DOI
https://doi.org/10.1007/978-3-319-59050-9_24