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Emotion-Cause Pair Extraction: A New Task to Emotion Analysis in Texts
论文
论文
发布时间2019-06-04
发表ACL 2019 7 · arXiv:1906.01267
作者:Rui Xia,Zixiang Ding
详细介绍
Emotion cause extraction (ECE), the task aimed at extracting the potential causes behind certain emotions in text, has gained much attention in recent years due to its wide applications. However, it suffers from two shortcomings: 1) the emotion must be annotated before cause extraction in ECE, which greatly limits its applications in real-world scenarios; 2) the way to first annotate emotion and then extract the cause ignores the fact that they are mutually indicative. In this work, we propose a new task: emotion-cause pair extraction (ECPE), which aims to extract the potential pairs of emotions and corresponding causes in a document. We propose a 2-step approach to address this new ECPE task, which first performs individual emotion extraction and cause extraction via multi-task learning, and then conduct emotion-cause pairing and filtering. The experimental results on a benchmark emotion cause corpus prove the feasibility of the ECPE task as well as the effectiveness of our approach.
代码仓库 (4)
NUSTM/ECPE官方TensorFlow
MorningBooks/A_oveview_of_awesome_causality_dataset
MorningBooks/Causality
bbruceyuan/ECPE-PyTorchPyTorch
