Document-level Event Extraction via Heterogeneous Graph-based Interaction Model with a Tracker
Runxin Xu, Tianyu Liu, Lei Li, Baobao Chang
摘要
Document-level event extraction aims to recognize event information from a whole piece of article. Existing methods are not effective due to two challenges of this task: a) the target event arguments are scattered across sentences; b) the correlation among events in a document is non-trivial to model. In this paper, we propose Heterogeneous Graph-based Interaction Model with a Tracker (GIT) to solve the aforementioned two challenges. For the first challenge, GIT constructs a heterogeneous graph interaction network to capture global interactions among different sentences and entity mentions. For the second, GIT introduces a Tracker module to track the extracted events and hence capture the interdependency among the events. Experiments on a large-scale dataset (Zheng et al., 2019) show GIT outperforms the existing best methods by 2.8 F1. Further analysis reveals GIT is effective in extracting multiple correlated events and event arguments that scatter across the document. Our code is available at https: //github.com/RunxinXu/GIT.
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引用它的顶会 Paper11
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- Guideline Learning for In-Context Information ExtractionChaoxu Pang, Yixuan Cao, Qiang Ding, Ping LuoEMNLP 2023 · 被引用 12 次
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- An Iteratively Parallel Generation Method with the Pre-Filling Strategy for Document-level Event ExtractionGuanhua Huang, Runxin Xu, Ying Zeng, Jiaze Chen 等EMNLP 2023 · 被引用 11 次
它引用的顶会 Paper4
- Event Extraction by Answering (Almost) Natural QuestionsXinya Du, Claire CardieEMNLP 2020 · 被引用 391 次
- Double Graph Based Reasoning for Document-level Relation ExtractionShuang Zeng, Runxin Xu, Baobao Chang, Lei LiEMNLP 2020 · 被引用 238 次
- Improving Event Detection via Open-domain Trigger KnowledgeMeihan Tong, Bin Xu, Shuai Wang, Yixin Cao 等ACL 2020 · 被引用 107 次
- Document-Level Event Role Filler Extraction using Multi-Granularity Contextualized EncodingXinya Du, Claire CardieACL 2020 · 被引用 101 次
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