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Recognizing Stances in Online Debates

机译:认识在线辩论中的立场

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摘要

This paper presents an unsupervised opinion analysis method for debate-side classification, i.e., recognizing which stance a person is taking in an online debate. In order to handle the complexities of this genre, we mine the web to learn associations that are indicative of opinion stances in debates. We combine this knowledge with discourse information, and formulate the debate side classification task as an Integer Linear Programming problem. Our results show that our method is substantially better than challenging baseline methods.
机译:本文提出了一种用于辩论方分类的无监督意见分析方法,即识别一个人在在线辩论中采取的立场。为了处理这种体裁的复杂性,我们在网络上进行挖掘以学习在辩论中表示意见立场的联想。我们将这些知识与话语信息相结合,并将辩论方分类任务表述为整数线性规划问题。我们的结果表明,我们的方法比具有挑战性的基线方法好得多。

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