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Comparing Approaches to Subjectivity Classification: A Study on Portuguese Tweets

机译:比较主观性分类方法:葡萄牙推文的研究

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In this paper, we compare lexicon-based and machine learning-based approaches to define the subjectivity of tweets in Portuguese. We tested SentiLex and WordAffectBR lexicons, and Sequential Machine Optimization and Naive Bayes algorithms for this task. In our study, we used the Computer-BR corpus that contains messages about the technology area. We obtained better results using the Comprehensive Measurement Feature Selection method and the Sequential Machine Optimization algorithm as the classifier. We achieved considerable accuracy when we included the polarities of words in the vector space model of tweets.
机译:在本文中,我们比较基于词汇和基于机器的基于机器的方法来定义葡萄牙语中推文的主体性。我们测试了Sentilex和Wordaffectbr Lexicons,以及此任务的顺序机优化和幼稚贝叶斯算法。在我们的研究中,我们使用包含关于技术区域的消息的计算机-BR语料库。我们使用综合测量特征选择方法和顺序机优化算法获得了更好的结果作为分类器。当我们在推文的矢量空间模型中包含单词的极性时,我们实现了相当大的准确性。

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