Papers › TranS: Transition-based Knowledge Graph Embedding with Synthetic Relation Representation
TranS: Transition-based Knowledge Graph Embedding with Synthetic Relation Representation
Xuanyu Zhang, Qing Yang, Dongliang Xu
Knowledge graph embedding (KGE) aims to learn continuous vectors of relations and entities in knowledge graph. Recently, transition-based KGE methods have achieved promising performance, where the single relation vector learns to translate head entity to tail entity. However, this scoring pattern is not suitable for complex scenarios where the same entity pair has different relations. Previous models usually focus on the improvement of entity representation for 1-to-N, N-to-1 and N-to-N relations, but ignore the single relation vector. In this paper, we propose a novel transition-based method, TranS, for knowledge graph embedding. The single relation vector in traditional scoring patterns is replaced with synthetic relation representation, which can solve these issues effectively and efficiently. Experiments on a large knowledge graph dataset, ogbl-wikikg2, show that our model achieves state-of-the-art results.
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Results from the paper archive 2025-07-28
| Task | Dataset | Model | Metric | Value | Rank at snapshot | Leaderboard | Report |
|---|---|---|---|---|---|---|---|
| Link Property Prediction | ogbl-wikikg2 | TranS | Ext. data | No | #8 of 30 | Archive leaderboard | report |
| Link Property Prediction | ogbl-wikikg2 | TranS | Number of params | 19215402 | #8 of 30 | Archive leaderboard | report |
| Link Property Prediction | ogbl-wikikg2 | TranS | Test MRR | 0.6882 ± 0.0019 | #8 of 30 | Archive leaderboard | report |
| Link Property Prediction | ogbl-wikikg2 | TranS | Validation MRR | 0.6988 ± 0.0006 | #8 of 30 | Archive leaderboard | report |
Ranks are positions in the archive's leaderboards as they stood at the 2025-07-28 snapshot. Results published since then are not among these rows, so a rank here is not a current standing.
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