StereoRel: Relational Triple Extraction from a Stereoscopic Perspective
Xuetao Tian, Liping Jing, Lu He, Feng Liu
摘要
Relational triple extraction is critical to understanding massive text corpora and constructing large-scale knowledge graph, which has attracted increasing research interest. However, existing studies still face some challenging issues, including information loss, error propagation and ignoring the interaction between entity and relation. To intuitively explore the above issues and address them, in this paper, we provide a revealing insight into relational triple extraction from a stereoscopic perspective, which rationalizes the occurrence of these issues and exposes the shortcomings of existing methods. Further, a novel model is proposed for relational triple extraction, which maps relational triples to a three-dimension (3-D) space and leverages three decoders to extract them, aimed at simultaneously handling the above issues. Extensive experiments are conducted on five public datasets, demonstrating that the proposed model outperforms the recent advanced baselines.
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它引用的顶会 Paper6
- A Novel Cascade Binary Tagging Framework for Relational Triple ExtractionZhepei Wei, Jianlin Su, Yue Wang, Yuan Tian 等ACL 2020 · 被引用 610 次
- Effective Modeling of Encoder-Decoder Architecture for Joint Entity and Relation ExtractionTapas Nayak, Hwee Tou NgAAAI 2020 · 被引用 272 次
- CopyMTL: Copy Mechanism for Joint Extraction of Entities and Relations with Multi-Task LearningDaojian Zeng, Haoran Zhang, Qianying LiuAAAI 2020 · 被引用 205 次
- Pyramid: A Layered Model for Nested Named Entity RecognitionJue Wang, Lidan Shou, Ke Chen, Gang ChenACL 2020 · 被引用 167 次
- Contrastive Triple Extraction with Generative TransformerHongbin Ye, Ningyu Zhang, Shumin Deng, Mosha Chen 等AAAI 2021 · 被引用 146 次
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