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ValenTo: Sentiment Analysis of Figurative Language Tweets with Irony and Sarcasm

机译:ValenTo:具有讽刺意味和讽刺意味的比喻性语言推文的情感分析

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This paper describes the system used by the ValenTo team in the Task 11, Sentiment Analysis of Figurative Language in Twitter, at Se-mEval 2015. Our system used a regression model and additional external resources to assign polarity values. A distinctive feature of our approach is that we used not only word-sentiment lexicons providing polarity annotations, but also novel resources for dealing with emotions and psycholinguistic information. These are important aspects to tackle in figurative language such as irony and sarcasm, which were represented in the dataset. The system also exploited novel and standard structural features of tweets. Considering the different kinds of figurative language in the dataset our submission obtained good results in recognizing sentiment polarity in both ironic and sarcastic tweets.
机译:本文描述了ValenTo团队在2015年Se-mEval的Twitter任务11,比喻语言中的情感分析中使用的系统。我们的系统使用了回归模型和其他外部资源来分配极性值。我们方法的一个显着特征是,我们不仅使用提供极性注释的单词情感词典,还使用了新颖的资源来处理情绪和心理语言信息。这些是要用比喻语言(例如讽刺和讽刺)解决的重要方面,它们已在数据集中显示。该系统还利用了推文的新颖和标准结构特征。考虑到数据集中不同形式的比喻语言,我们的论文在识别讽刺和讽刺推文中的情感极性方面取得了不错的成绩。

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