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20-08-2024 | Original Article

ETCGN: entity type-constrained graph networks for document-level relation extraction

Authors: Hangxiao Yang, Changpu Chen, Shaokai Zhang, Baiyang Chen, Chang Liu, Qilin Li

Published in: International Journal of Machine Learning and Cybernetics | Issue 12/2024

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Abstract

The article introduces ETCGN, a state-of-the-art model for document-level relation extraction that integrates entity type constraints and graph networks. By utilizing a KL divergence loss function, ETCGN aligns the predicted relation distribution with statistical distributions, leading to improved accuracy. The model outperforms existing methods on benchmark datasets like DocRED and HacRED, showcasing its effectiveness in handling complex relation extraction tasks. The author highlights the advantages of ETCGN in capturing long-distance entity interactions and leveraging entity type information to enhance prediction accuracy.

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Metadata
Title
ETCGN: entity type-constrained graph networks for document-level relation extraction
Authors
Hangxiao Yang
Changpu Chen
Shaokai Zhang
Baiyang Chen
Chang Liu
Qilin Li
Publication date
20-08-2024
Publisher
Springer Berlin Heidelberg
Published in
International Journal of Machine Learning and Cybernetics / Issue 12/2024
Print ISSN: 1868-8071
Electronic ISSN: 1868-808X
DOI
https://doi.org/10.1007/s13042-024-02293-2