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EmoMix: Building an Emotion Lexicon for Compound Emotion Analysis

机译:EmoMix:构建用于复合情感分析的情感词典

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Building a high-quality emotion lexicon is regarded as the foundation of research on emotion analysis. Existing methods have focused on the study of primary categories (i.e., anger, disgust, fear, happiness, sadness, and surprise). However, there are many emotions expressed in texts that are difficult to be mapped to primary emotions, which poses a great challenge in emotion annotation for big data analysis. For instance, "despair" is a combination of "fear" and "sadness," and thus it is difficult to divide into each of them. To address this problem, we propose an automatic building method of emotion lexicon based on the psychological theory of compound emotion. This method could map emotional words into an emotion space, and annotate different emotion classes through a cascade clustering algorithm. Our experimental results show that our method outperforms the state-of-the-art methods in both word and sentence-level primary classification performance, and also offer us some insights into compound emotion analysis.
机译:构建高质量的情感词典被视为情感分析研究的基础。现有方法集中于主要类别的研究(即,愤怒,厌恶,恐惧,幸福,悲伤和惊奇)。但是,文本中表达的许多情绪难以映射到原始情绪,这在大数据分析的情绪注释中提出了很大的挑战。例如,“绝望”是“恐惧”和“悲伤”的组合,因此很难将其分为。为了解决这个问题,我们提出了一种基于复合情感心理学理论的情感词典自动构建方法。该方法可以将情感词映射到情感空间中,并通过级联聚类算法对不同的情感类别进行注释。我们的实验结果表明,我们的方法在单词和句子一级的主要分类性能上均优于最新方法,并且还为我们提供了对复合情感分析的一些见解。

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