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A Question Answering Approach to Emotion Cause Extraction

机译:一个问题回答情绪引发提取方法

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Emotion cause extraction aims to identify the reasons behind a certain emotion expressed in text. It is a much more difficult task compared to emotion classification. Inspired by recent advances in using deep memory networks for question answering (QA), we propose a new approach which considers emotion cause identification as a reading comprehension task in QA. Inspired by convolutional neural networks, we propose a new mechanism to store relevant context in different memory slots to model context information. Our proposed approach can extract both word level sequence features and lexical features. Performance evaluation shows that our method achieves the state-of-the-art performance on a recently released emotion cause dataset, outperforming a number of competitive baselines by at least 3 01% in F-measure.
机译:情绪导致提取旨在确定文本中某种情绪背后的原因。与情感分类相比,这是一个更加艰巨的任务。灵感来自最近利用深记忆网络的问题回答(QA)的进步,我们提出了一种新的方法,将情绪引起识别作为QA的阅读理解任务。灵感来自卷积神经网络,我们提出了一种新机制来将相关上下文存储在不同的内存插槽中以模拟上下文信息。我们所提出的方法可以提取单词级别序列特征和词汇特征。绩效评估表明,我们的方法在最近发布的情绪导致数据集中实现了最先进的性能,优先于F测量中至少3 01%的竞争基线。

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