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An Empirical Analysis of the Role of Amplifiers, Downtoners, and Negations in Emotion Classification in Microblogs

机译:对微博情感分类中放大器,唐纳音和否定词作用的实证分析

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The effect of amplifiers, downtoners, and negations has been studied in general and particularly in the context of sentiment analysis. However, there is only limited work which aims at transferring the results and methods to discrete classes of emotions, e.g., joy, anger, fear, sadness, surprise, and disgust. For instance, it is not straight-forward to interpret which emotion the phrase "not happy" expresses. With this paper, we aim at obtaining a better understanding of such modifiers in the context of emotion-bearing words and their impact on document-level emotion classification, namely, microposts on Twitter. We select an appropriate scope detection method for modifiers of emotion words, incorporate it in a document-level emotion classification model as additional bag of words and show that this approach improves the performance of emotion classification. In addition, we build a term weighting approach based on the different modifiers into a lexical model for the analysis of the semantics of modifiers and their impact on emotion meaning. We show that amplifiers separate emotions expressed with an emotion-bearing word more clearly from other secondary connotations. Downtoners have the opposite effect. In addition, we discuss the meaning of negations of emotion-bearing words. For instance we show empirically that "not happy" is closer to sadness than to anger and that fear words in the scope of downtoners often express surprise.
机译:总体上,尤其是在情感分析的背景下,已经研究了放大器,降频器和取反的影响。然而,仅有有限的工作旨在将结果和方法转移到离散的情感类别,例如,喜悦,愤怒,恐惧,悲伤,惊奇和厌恶。例如,解释短语“不快乐”表示哪种情感并不是直截了当的。通过本文,我们旨在在含情感的单词的上下文中更好地理解此类修饰语及其对文档级情感分类的影响,即Twitter上的微博。我们为情感词的修饰语选择一种合适的范围检测方法,将其作为文档的附加词袋纳入文档级情感分类模型中,并表明该方法提高了情感分类的性能。此外,我们将基于不同修饰语的术语加权方法构建到词汇模型中,以分析修饰语的语义及其对情感含义的影响。我们表明,放大器将包含情感的单词所表达的情感与其他次要含义更清楚地分开了。唐顿粉有相反的作用。此外,我们讨论了否定带有情感的单词的含义。例如,我们凭经验表明,“不快乐”更接近于悲伤而不是愤怒,唐纳德族范围内的恐惧词常常表达出惊讶。

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