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ADMP-GNN: Adaptive Depth Message Passing GNN

  • Laboratoire d'Informatique (LIX)
  • Université Paris-Saclay

Résultats de recherche: Le chapitre dans un livre, un rapport, une anthologie ou une collectionContribution à une conférenceRevue par des pairs

Résumé

Graph Neural Networks (GNNs) have proven to be highly effective in various graph learning tasks. A key characteristic of GNNs is their use of a fixed number of message-passing steps for all nodes in the graph, regardless of each node's diverse computational needs and characteristics. Through empirical real-world data analysis, we demonstrate that the optimal number of message-passing layers varies for nodes with different characteristics. This finding is further supported by experiments conducted on synthetic datasets. To address this, we propose Adaptive Depth Message Passing GNN (ADMP-GNN), a novel framework that dynamically adjusts the number of message passing layers for each node, resulting in improved performance. This approach applies to any model that follows the message passing scheme. We evaluate ADMP-GNN on the node classification task and observe performance improvements over baseline GNN models. Our code is publicly available at: https://github.com/abbahaddou/ADMP-GNN

langue originaleAnglais
titreCIKM 2025 - Proceedings of the 34th ACM International Conference on Information and Knowledge Management
EditeurAssociation for Computing Machinery, Inc
Pages4-13
Nombre de pages10
ISBN (Electronique)9798400720406
Les DOIs
étatPublié - 10 nov. 2025
Evénement34th ACM International Conference on Information and Knowledge Management, CIKM 2025 - Seoul, Corée du Sud
Durée: 10 nov. 202514 nov. 2025

Série de publications

NomCIKM 2025 - Proceedings of the 34th ACM International Conference on Information and Knowledge Management

Une conférence

Une conférence34th ACM International Conference on Information and Knowledge Management, CIKM 2025
Pays/TerritoireCorée du Sud
La villeSeoul
période10/11/2514/11/25

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