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Long-range Meta-path Search on Large-scale Heterogeneous Graphs

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arxiv 2307.08430 v6 pith:AWZ4RP5M submitted 2023-07-17 cs.AI

classification cs.AI
keywords lmspslong-rangeeffectivegraphsheterogeneousmeta-pathssearchmeta-path
verification ladder T0 review T1 audit T2 compute T3 formal
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Utilizing long-range dependency, a concept extensively studied in homogeneous graphs, remains underexplored in heterogeneous graphs, especially on large ones, posing two significant challenges: Reducing computational costs while maximizing effective information utilization in the presence of heterogeneity, and overcoming the over-smoothing issue in graph neural networks. To address this gap, we investigate the importance of different meta-paths and introduce an automatic framework for utilizing long-range dependency on heterogeneous graphs, denoted as Long-range Meta-path Search through Progressive Sampling (LMSPS). Specifically, we develop a search space with all meta-paths related to the target node type. By employing a progressive sampling algorithm, LMSPS dynamically shrinks the search space with hop-independent time complexity. Through a sampling evaluation strategy, LMSPS conducts a specialized and effective meta-path selection, leading to retraining with only effective meta-paths, thus mitigating costs and over-smoothing. Extensive experiments across diverse heterogeneous datasets validate LMSPS's capability in discovering effective long-range meta-paths, surpassing state-of-the-art methods. Our code is available at https://github.com/JHL-HUST/LMSPS.

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Cited by 1 Pith paper

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    cs.IR 2025-06 conditional novelty 4.0 of 10

    Semantic features and heterogeneous graph structures improve GNN recommender performance on two large RDF-derived datasets.

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