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Words are the Window to the Soul: Language-based User Representations for Fake News Detection

机译:文字是心灵之窗:基于语言的假新闻检测用户表示

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Cognitive and social traits of individuals are reflected in language use. Moreover, individuals who are prone to spread fake news online often share common traits. Building on these ideas, we introduce a model that creates representations of individuals on social media based only on the language they produce, and use them to detect fake news. We show that language-based user representations are beneficial for this task. We also present an extended analysis of the language of fake news spreaders, showing that its main features are mostly domain independent and consistent across two English datasets. Finally, we exploit the relation between language use and connections in the social graph to assess the presence of the Echo Chamber effect in our data.
机译:个人的认知和社会特征反映在语言使用上。此外,容易在网上传播假新闻的人往往有共同的特点。在这些想法的基础上,我们引入了一个模型,该模型仅基于个人所使用的语言在社交媒体上创建个人的表示,并使用它们来检测假新闻。我们证明了基于语言的用户表示对这项任务是有益的。我们还对假新闻传播者的语言进行了扩展分析,表明其主要特征在两个英语数据集中基本上是领域独立和一致的。最后,我们利用社交图中语言使用和联系之间的关系来评估数据中回声室效应的存在。

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