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3 months ago

Hyper-SAGNN: a self-attention based graph neural network for hypergraphs

Ruochi Zhang Yuesong Zou Jian Ma

Hyper-SAGNN: a self-attention based graph neural network for hypergraphs

Abstract

Graph representation learning for hypergraphs can be used to extract patterns among higher-order interactions that are critically important in many real world problems. Current approaches designed for hypergraphs, however, are unable to handle different types of hypergraphs and are typically not generic for various learning tasks. Indeed, models that can predict variable-sized heterogeneous hyperedges have not been available. Here we develop a new self-attention based graph neural network called Hyper-SAGNN applicable to homogeneous and heterogeneous hypergraphs with variable hyperedge sizes. We perform extensive evaluations on multiple datasets, including four benchmark network datasets and two single-cell Hi-C datasets in genomics. We demonstrate that Hyper-SAGNN significantly outperforms the state-of-the-art methods on traditional tasks while also achieving great performance on a new task called outsider identification. Hyper-SAGNN will be useful for graph representation learning to uncover complex higher-order interactions in different applications.

Code Repositories

ma-compbio/Hyper-SAGNN
Official
pytorch

Benchmarks

BenchmarkMethodologyMetrics
link-prediction-on-gpsHyper-SAGNN-W
AUC: 0.922
AUPR: 0.722
link-prediction-on-gpsHyper-SAGNN-E
AUC: 0.9520000000000001
AUPR: 0.7979999999999999
link-prediction-on-movielens-1mHyper-SAGNN-E
AUPR: 0.7929999999999999
link-prediction-on-movielens-1mHyper-SAGNN-W
AUC: 0.93
AUPR: 0.81
link-prediction-on-wordnetHyper-SAGNN-W
AUC: 0.88
AUPR: 0.706
link-prediction-on-wordnetHyper-SAGNN-E
AUC: 0.89
AUPR: 0.705

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Hyper-SAGNN: a self-attention based graph neural network for hypergraphs | Papers | HyperAI