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Emotion Cause Extraction by Combining Intra-clause Sentiment-enhanced Attention and Inter-clause Consistency Interaction

机译:通过组合内部情绪增强的关注和间歇一致性相互作用来提取情绪

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Emotion cause extraction aims at identifying causes of the given emotion expression in a document. Many approaches have been proposed to solve this task, including rule-based approaches, traditional machine learning methods and deep neural networks. However, these approaches focus more on text content and suffer from the problem of the information deficiency issue. In this work, we exploit external sentiment knowledge, intra-clause syntactic dependency and inter-clause consistency to alleviate the problem. We design a sentiment-enhanced attention mechanism to fuse sentiment knowledge and syntactic dependency, and we obtain consistency information through the interaction between clauses on the same side of emotion expression. We finally achieve the best performance among 10 compared methods.
机译:情绪原因提取旨在识别文献中给定的情绪表达的原因。 已经提出了许多方法来解决这项任务,包括基于规则的方法,传统机器学习方法和深神经网络。 然而,这些方法更多地关注文本内容并遭受信息缺陷问题的问题。 在这项工作中,我们利用外部情绪知识,间句法依赖和间歇群体一致性来缓解问题。 我们设计了一种增强的注意力机制,以融合情绪知识和语法依赖,我们通过情感表达的同一侧的子句之间的相互作用获得了一致性信息。 我们终于实现了10种比较方法的最佳表现。

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