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VIDEO DOI: https://doi.org/10.48448/em5m-dt85

poster

ACL 2024

August 22, 2024

Bangkok, Thailand

Towards Better Question Generation in QA-based Event Extraction

keywords:

large language models

event extraction

question answering

Event Extraction (EE) is an essential information extraction task that aims to extract event-related information from unstructured texts. The paradigm of this task has shifted from conventional classification-based methods to more contemporary question-answering-based (QA-based) approaches. However, in QA-based EE, the quality of the questions dramatically affects the extraction accuracy, and how to generate high-quality questions for QA-based EE remains a challenge. In this work, to tackle this challenge, we suggest four criteria to evaluate the quality of a question and propose a reinforcement learning method, RLQG, for QA-based EE that can generate generalizable, high-quality, and context-dependent questions and provides clear guidance to QA models. The extensive experiments conducted on ACE and RAMS datasets have strongly validated our approach's effectiveness, which also demonstrates its robustness in scenarios with limited training data. The corresponding code of RLQG is released for further research.

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SlidesTranscript English (automatic)

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Wanlong Liu and 8 other authors

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