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Context-aware Inductive Knowledge Graph Completion with Latent Type Constraints and Subgraph Reasoning

计算机科学 背景(考古学) 诱导子图同构问题 图形 知识图 人工智能 理论计算机科学 折线图 电压图 地理 考古
作者
Muzhi Li,Cehao Yang,Chengjin Xu,Zixing Song,Xuhui Jiang,Jian Guo,Ho-fung Leung,Irwin King
出处
期刊:Proceedings of the ... AAAI Conference on Artificial Intelligence [Association for the Advancement of Artificial Intelligence]
卷期号:39 (11): 12102-12111 被引量:1
标识
DOI:10.1609/aaai.v39i11.33318
摘要

Inductive knowledge graph completion (KGC) aims to predict missing triples with unseen entities. Recent works focus on modeling reasoning paths between the head and tail entity as direct supporting evidence. However, these methods depend heavily on the existence and quality of reasoning paths, which limits their general applicability in different scenarios. In addition, we observe that latent type constraints and neighboring facts inherent in KGs are also vital in inferring missing triples. To effectively utilize all useful information in KGs, we introduce CATS, a novel context-aware inductive KGC solution. With sufficient guidance from proper prompts and supervised fine-tuning, CATS activates the strong semantic understanding and reasoning capabilities of large language models to assess the existence of query triples, which consist of two modules. First, the type-aware reasoning module evaluates whether the candidate entity matches the latent entity type as required by the query relation. Then, the subgraph reasoning module selects relevant reasoning paths and neighboring facts, and evaluates their correlation to the query triple. Experiment results on three widely used datasets demonstrate that CATS significantly outperforms state-of-the-art methods in 16 out of 18 transductive, inductive, and few-shot settings with an average absolute MRR improvement of 7.2%.

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