Deep Hypergraph U-Net for Brain Graph Embedding and Classification
Mert Lostar, Islem Rekik

TL;DR
This paper introduces Hypergraph U-Net (HUNet), a novel deep learning framework that captures high-order relationships in brain network data for improved classification of neurological conditions.
Contribution
The paper proposes HUNet, a hypergraph-based extension of U-Net, to better model high-order relationships in brain connectome data for embedding and classification tasks.
Findings
HUNet outperforms existing methods with 4-14% higher accuracy.
Effective on both morphological and functional brain networks.
Demonstrates scalability and generalizability across datasets.
Abstract
-Background. Network neuroscience examines the brain as a complex system represented by a network (or connectome), providing deeper insights into the brain morphology and function, allowing the identification of atypical brain connectivity alterations, which can be used as diagnostic markers of neurological disorders. -Existing Methods. Graph embedding methods which map data samples (e.g., brain networks) into a low dimensional space have been widely used to explore the relationship between samples for classification or prediction tasks. However, the majority of these works are based on modeling the pair-wise relationships between samples, failing to capture their higher-order relationships. -New Method. In this paper, inspired by the nascent field of geometric deep learning, we propose Hypergraph U-Net (HUNet), a novel data embedding framework leveraging the hypergraph structure to…
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Taxonomy
TopicsFunctional Brain Connectivity Studies · Advanced Graph Neural Networks · Bioinformatics and Genomic Networks
Methods*Communicated@Fast*How Do I Communicate to Expedia? · Max Pooling · Convolution · Concatenated Skip Connection · U-Net
