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Studying the Scope of Negation for Spanish Sentiment Analysis on Twitter

机译:研究推特西班牙情绪分析的否定范围

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摘要

Polarity classification is a well-known Sentiment Analysis task. However, most research has been oriented towards developing supervised or unsupervised systems without paying much attention to certain linguistic phenomena such as negation. In this paper we focus on this specific issue in order to demonstrate that dealing with negation can improve the final system. Although we can find some studies of negation detection, most of them deal with English documents. On the contrary, our study is focused on the scope of negation in Spanish Sentiment Analysis. Thus, we have built an unsupervised polarity classification system based on integrating external knowledge. In order to evaluate the influence of negation we have implemented a specific module for negation detection by applying several rules. The system has been tested considering and without considering negation, using a corpus of tweets written in Spanish. The results obtained reveal that the treatment of negation can greatly improve the accuracy of the final system. Moreover, we have carried out a comprehensive statistical study in order to demonstrate our approach. To the best of our knowledge, this is the first work which statistically demonstrates that taking into account negation significantly improves the polarity classification of Spanish tweets.
机译:极性分类是一个知名的情绪分析任务。然而,大多数研究已经朝向制定监督或无监督的系统,而不会关注某些语言现象,如否定。在本文中,我们专注于这个特定的问题,以证明否定处理否定可以改善最终系统。虽然我们可以找到一些否定检测的研究,但其中大多数都处理英文文件。相反,我们的研究专注于西班牙情绪分析中否定的范围。因此,我们基于整合外部知识构建了无监督的极性分类系统。为了评估否定的影响,我们已经通过应用若干规则实现了一个特定模块,用于否定检测。通过用西班牙语编写的推文,考虑和不考虑否定,考虑和不考虑否定的系统进行了测试。得到的结果表明,否定的治疗可以大大提高最终系统的准确性。此外,我们已经开展了全面的统计研究,以证明我们的方法。据我们所知,这是第一个统计上表明,考虑到否定的第一项工作显着提高了西班牙推文的极性分类。

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