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Model Graph Inductive Learning for Knowledge Graph Completion

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Link prediction in knowledge graphs fundamentally depends on the quality of learned embeddings for entities and relations. However, most existing methods derive these embeddings by aggregating only the local neighborhood of each entity, neglecting the global structure of the knowledge graph. This limited view prevents models from capturing higher-level structural patterns that are essential for accurate and generalizable link prediction. To address these limitations, we introduce Model Graph Inductive Learning (\textbf{MGIL}), a framework that constructs a model graph by clustering entities based on the similarity of their incoming and outgoing relational structures or their entity types. A GNN is then applied to this model graph to produce embeddings that capture the global view of the knowledge graph. These embeddings subsequently serve as high-quality initial features %embeddings for the original knowledge graph, replacing random initialization and leading to more stable and expressive representations. Extensive experiments on standard and recently proposed inductive benchmarks demonstrate that MGIL achieves state-of-the-art or highly competitive performance in inductive link prediction, highlighting its effectiveness across diverse graph settings.

Mohommad Esmaei Khani, Mahdieh Hasheminejad, Ali Taherkhani, Hossein Hajiabolhassan• 2026

Related benchmarks

TaskDatasetResultRank
Inductive Link PredictionFB15k-237 V1
Hits@1087.17
19
Inductive Link PredictionWN18RR V2
Hits@100.839
19
Inductive Link PredictionWN18RR V3
Hits@1077.02
19
Inductive Link PredictionWN18RR V4
Hits@100.7781
19
Inductive Link PredictionHetioNet benchmarks (Inference 1)
Hits@1090.05
15
Inductive Link PredictionHetioNet benchmarks (Inference 2)
Hits@1090.84
15
Inductive Link PredictionWN18RR V1
Hits@100.8486
13
Link PredictionWN18RR inductive v1
Hits@1075.37
13
Inductive Link PredictionNELL-995 V1
Hits@1084.4
12
Inductive Link PredictionNELL-995 V2
Hits@1097.37
12
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