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Demystifying Structural Disparity in Graph Neural Networks: Can One Size Fit All?

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arxiv 2306.01323 v3 pith:ESO76P55 submitted 2023-06-02 cs.LG cs.AI

classification cs.LGcs.AI
keywords nodesheterophilichomophilicstructuralgnnsgraphsdisparityexhibiting
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Recent studies on Graph Neural Networks(GNNs) provide both empirical and theoretical evidence supporting their effectiveness in capturing structural patterns on both homophilic and certain heterophilic graphs. Notably, most real-world homophilic and heterophilic graphs are comprised of a mixture of nodes in both homophilic and heterophilic structural patterns, exhibiting a structural disparity. However, the analysis of GNN performance with respect to nodes exhibiting different structural patterns, e.g., homophilic nodes in heterophilic graphs, remains rather limited. In the present study, we provide evidence that Graph Neural Networks(GNNs) on node classification typically perform admirably on homophilic nodes within homophilic graphs and heterophilic nodes within heterophilic graphs while struggling on the opposite node set, exhibiting a performance disparity. We theoretically and empirically identify effects of GNNs on testing nodes exhibiting distinct structural patterns. We then propose a rigorous, non-i.i.d PAC-Bayesian generalization bound for GNNs, revealing reasons for the performance disparity, namely the aggregated feature distance and homophily ratio difference between training and testing nodes. Furthermore, we demonstrate the practical implications of our new findings via (1) elucidating the effectiveness of deeper GNNs; and (2) revealing an over-looked distribution shift factor on graph out-of-distribution problem and proposing a new scenario accordingly.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Aggregate to Adapt: Node-Centric Aggregation for Multi-Source-Free Graph Domain Adaptation

    cs.LG 2025-02 conditional novelty 6.0 of 10

    GraphATA performs multi-source-free graph domain adaptation by giving each target node its own graph convolutional matrix, formed from a sparse, context-dependent blend of source model weights.

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