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Contrasting Opposing Views of News Articles on Contentious Issues

机译:新闻文章对有争议问题的反对意见

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We present disputant relation-based method for classifying news articles on contentious issues. We observe that the disputants of a contention are an important feature for understanding the discourse. It performs unsupervised classification on news articles based on disputant relations, and helps readers intuitively view the articles through the opponent-based frame. The readers can attain balanced understanding on the contention, free from a specific biased view. We applied a modified version of HITS algorithm and an SVM classifier trained with pseudo-relevant data for article analysis.
机译:我们提出了一种基于争议关系的方法来对有争议问题的新闻文章进行分类。我们观察到争用的争执者是理解话语的重要特征。它基于争议关系对新闻文章进行无监督分类,并帮助读者通过基于对手的框架直观地查看文章。读者可以在没有特定偏见的情况下获得关于争用的平衡理解。我们应用了HITS算法的修改版本和经过伪相关数据训练的SVM分类器,用于文章分析。

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