Syntactic Multi-view Learning for Open Information Extraction
Kuicai Dong, Aixin Sun, Jung-Jae Kim, Xiaoli Li
摘要
Open Information Extraction (OpenIE) aims to extract relational tuples from open-domain sentences. Traditional rule-based or statistical models have been developed based on syntactic structures of sentences, identified by syntactic parsers. However, previous neural Ope-nIE models under-explore the useful syntactic information. In this paper, we model both constituency and dependency trees into wordlevel graphs, and enable neural OpenIE to learn from the syntactic structures. To better fuse heterogeneous information from both graphs, we adopt multi-view learning to capture multiple relationships from them. Finally, the finetuned constituency and dependency representations are aggregated with sentential semantic representations for tuple generation. Experiments show that both constituency and dependency information, and the multi-view learning are effective. Our model is publicly available. 1
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引用它的顶会 Paper2
- Open Information Extraction via ChunksKuicai Dong, Aixin Sun, Jung-Jae Kim, Xiaoli LiEMNLP 2023 · 被引用 4 次
- Inference Helps PLMs' Conceptual Understanding: Improving the Abstract Inference Ability with Hierarchical Conceptual Entailment GraphsJuncai Li, Ru Li, Xiaoli Li, Qinghua Chai 等EMNLP 2024
它引用的顶会 Paper4
- DetIE: Multilingual Open Information Extraction Inspired by Object DetectionMichael Vasilkovsky, Anton Alekseev, Valentin Malykh, Ilya Shenbin 等AAAI 2022 · 被引用 24 次
- OpenIE6: Iterative Grid Labeling and Coordination Analysis for Open Information ExtractionKeshav Kolluru, Vaibhav Adlakha, Samarth Aggarwal, Mausam 等EMNLP 2020 · 被引用 13 次
- IMoJIE: Iterative Memory-Based Joint Open Information ExtractionKeshav Kolluru, Samarth Aggarwal, Vipul Rathore, Mausam 等ACL 2020 · 被引用 5 次
- MILIE: Modular & Iterative Multilingual Open Information ExtractionBhushan Kotnis, Kiril Gashteovski, Daniel Oñoro-Rubio, Ammar Shaker 等ACL 2022
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