BERT-INT:A BERT-based Interaction Model For Knowledge Graph Alignment

Author:

Tang Xiaobin1,Zhang Jing1,Chen Bo1,Yang Yang2,Chen Hong3,Li Cuiping1

Affiliation:

1. Renmin University of China

2. Zhejiang University

3. Renmin University, China

Abstract

Knowledge graph alignment aims to link equivalent entities across different knowledge graphs. To utilize both the graph structures and the side information such as name, description and attributes, most of the works propagate the side information especially names through linked entities by graph neural networks. However, due to the heterogeneity of different knowledge graphs, the alignment accuracy will be suffered from aggregating different neighbors. This work presents an interaction model to only leverage the side information. Instead of aggregating neighbors, we compute the interactions between neighbors which can capture fine-grained matches of neighbors. Similarly, the interactions of attributes are also modeled. Experimental results show that our model significantly outperforms the best state-of-the-art methods by 1.9-9.7% in terms of HitRatio@1 on the dataset DBP15K.

Publisher

International Joint Conferences on Artificial Intelligence Organization

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1. A self-supervised entity alignment framework via attribute correction;Journal of King Saud University - Computer and Information Sciences;2024-10

2. Temporal knowledge completion enhanced self-supervised entity alignment;Journal of Intelligent Information Systems;2024-08-13

3. A survey: knowledge graph entity alignment research based on graph embedding;Artificial Intelligence Review;2024-08-03

4. Entity-Alignment Interaction Model Based on Chinese RoBERTa;Applied Sciences;2024-07-15

5. SARA: Semantic-assisted Reinforced Active Learning for Entity Alignment;2024 International Joint Conference on Neural Networks (IJCNN);2024-06-30

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