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SubLex: Generating subjectivity lexicons using genetic algorithm for subjectivity classification of big social data

机译:SubLex:使用遗传算法生成主观词典,用于大社会数据的主观分类

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Web 2.0 enabled users to share their experiences, views, and opinions. One of the key products of Web 2.0 is Twitter, a social media site with hundreds of millions of users. These users tweet whatever they want to share with other people. The aim of this paper is to classify the tweets into subjective and objective tweets. We group words people use in Twitter into objective and subjective words, creating a subjectivity lexicon. We extract two meta-level features from tweets, which show their count of objective and subjective words. Then we classify the tweets by using these metafeatures. We use genetic algorithm for creating subjectivity lexicons from training datasets. Then we compare the results with baselines. The results show that genetic algorithm outperforms all the baselines in terms of accuracy in two assessed datasets. The created lexicons give insight about the objectivity and subjectivity of words and may be used to build sentiment lexicons.
机译:Web 2.0使用户可以分享他们的经验,观点和意见。 Web 2.0的主要产品之一是Twitter,这是一个拥有数亿用户的社交媒体网站。这些用户发布任何他们想与他人共享的推文。本文的目的是将这些推文分为主观和客观的推文。我们将人们在Twitter中使用的词分为主观词和主观词,从而创建了主观性词典。我们从推文中提取了两个元级别的功能,这些功能显示了它们的主语和主语数量。然后,我们使用这些元功能对推文进行分类。我们使用遗传算法从训练数据集中创建主观词汇。然后,我们将结果与基线进行比较。结果表明,遗传算法在两个评估数据集中的准确性均优于所有基线。创建的词典可以洞悉单词的客观性和主观性,并且可以用于构建情感词典。

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