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Affective-word based Chinese text sentiment classification

机译:基于情感词的中文文本情感分类

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When browsing news on the web, various emotions may be evoked in readers and furthermore cause different influence on their minds and life. We expect that emotional analysis and classification of text may provide good performance and significance to users surfing the Internet. Most previous research only focus on bi-emotion classification, that is, Positive and Negative, e.g., identifying whether a comment is for praising or criticizing. In this paper, we propose a χ2-based Chinese text emotion classification with five sentiment categories. We run two experiments, one uses sentiment words extracted from HowNet and a Chinese thesaurus: TongYiCi CiLin, and the other is not. The results shows that adding affective words can make better prediction in the sentiment classification.
机译:当浏览网络新闻时,读者可能会引起各种各样的情绪,进而对他们的思想和生活产生不同的影响。我们希望对文本进行情感分析和分类可以为上网的用户提供良好的性能和意义。以前的大多数研究仅关注双向情感分类,即正面和负面的分类,例如确定评论是赞美还是批评。本文提出了一种基于χ 2 的中文文本情感分类方法,分为五个情感类别。我们进行了两个实验,一个使用从知网和中文词库中提取的情感词:TongYiCi CiLin,另一个则没有。结果表明,添加情感词可以更好地预测情感分类。

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