Multi-Aspect Explainable Inductive Relation Prediction by Sentence Transformer
Zhixiang Su, Di Wang, Chunyan Miao, Lizhen Cui
摘要
Recent studies on knowledge graphs (KGs) show that path-based methods empowered by pre-trained language models perform well in the provision of inductive and explainable relation predictions. In this paper, we introduce the concepts of relation path coverage and relation path confidence to filter out unreliable paths prior to model training to elevate the model performance. Moreover, we propose Knowledge Reasoning Sentence Transformer (KRST) to predict inductive relations in KGs. KRST is designed to encode the extracted reliable paths in KGs, allowing us to properly cluster paths and provide multi-aspect explanations. We conduct extensive experiments on three real-world datasets. The experimental results show that compared to SOTA models, KRST achieves the best performance in most transductive and inductive test cases (4 of 6), and in 11 of 12 few-shot test cases.
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引用它的顶会 Paper3
- Context-aware Inductive Knowledge Graph Completion with Latent Type Constraints and Subgraph ReasoningMuzhi Li, Cehao Yang, Chengjin Xu, Zixing Song 等AAAI 2025 · 被引用 7 次
- Context Pooling: Query-specific Graph Pooling for Generic Inductive Link Prediction in Knowledge GraphsZhixiang Su, Di Wang, Chunyan MiaoKDD 2025 · 被引用 1 次
- Anchoring Path for Inductive Relation Prediction in Knowledge GraphsZhixiang Su, Di Wang, Chunyan Miao, Lizhen CuiAAAI 2024
它引用的顶会 Paper3
- Composition-based Multi-Relational Graph Convolutional NetworksShikhar Vashishth, Soumya Sanyal, Vikram Nitin, Partha P. TalukdarICLR 2020 · 被引用 1,105 次
- Inductive Relation Prediction by Subgraph ReasoningKomal K. Teru, Etienne G. Denis, William L. HamiltonICML 2020 · 被引用 493 次
- Inductive Relation Prediction by BERTHanwen Zha, Zhiyu Chen, Xifeng YanAAAI 2022 · 被引用 69 次
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