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Yes, we can! Mining Arguments in 50 Years of US Presidential Campaign Debates

机译:我们可以!美国总统竞选辩论五十年来的矿业争论

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Political debates offer a rare opportunity for citizens to compare the candidates' positions on the most controversial topics of the campaign. Thus they represent a natural application scenario for Argument Mining. As existing research lacks solid empirical investigation of the typology of argument components in political debates, we fill this gap by proposing an Argument Mining approach to political debates. We address this task in an empirical manner by annotating 39 political debates from the last 50 years of US presidential campaigns, creating a new corpus of 29k argument components, labeled as premises and claims. We then propose two tasks: (1) identifying the argumentative components in such debates, and (2) classifying them as premises and claims. We show that feature-rich SVM learners and Neural Network architectures outperform standard baselines in Argument Mining over such complex data. We release the new corpus USElecDeb60Tol6 and the accompanying software under free licenses to the research community.
机译:政治辩论为公民提供了难得的机会,可以就竞选活动中最具争议的话题比较候选人的立场。因此,它们代表了参数挖掘的自然应用场景。由于现有研究缺乏对政治辩论中论点成分类型的可靠的实证研究,因此,我们通过为政治辩论提出“论点挖掘”方法来填补这一空白。我们通过经验性的方式来解决此任务,方法是对美国总统大选过去50年的39场政治辩论进行注释,创建一个新的29k论点组成的语料库,标记为前提和主张。然后,我们提出了两项​​任务:(1)确定此类辩论中的辩论性组成部分;(2)将它们归类为前提和主张。我们展示了功能丰富的SVM学习器和神经网络体系结构在此类复杂数据上的参数挖掘性能优于标准基线。我们免费向研究社区发布了新的语料库USElecDeb60Tol6及其随附的软件。

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