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Breaking Down the Invisible Wall of Informal Fallacies in Online Discussions

机译:在在线讨论中打破无形的谬误壁垒

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People debate on a variety of topics on online platforms such as Reddit, or Facebook. Debates can be lengthy, with users exchanging a wealth of information and opinions. However, conversations do not always go smoothly, and users sometimes engage in unsound argumentation techniques to prove a claim. These techniques are called fallacies. Fallacies are persuasive arguments that provide insufficient or incorrect evidence to support the claim. In this paper, we study the most frequent fallacies on Reddit, and we present them using the pragma-dialectical theory of argumentation. We construct a new annotated dataset of fallacies, using user comments containing fallacy mentions as noisy labels, and cleaning the data via crowdsourcing. Finally, we study the task of classifying fallacies using neural models. We find that generally the models perform better in the presence of conversational context.
机译:人们对在线平台上的各种主题辩论,如雷德德特或Facebook。 辩论可以冗长,用户交换丰富的信息和意见。 但是,对话并不总是顺利进行,用户有时会从事非疑问技术以证明索赔。 这些技术称为谬误。 谬误是有说服力的论据,提供不足或不正确的证据来支持索赔。 在本文中,我们研究了Reddit上最常见的谬误,我们使用论证辩证理论呈现出来。 我们使用包含谬误提到的用户评论作为嘈杂的标签,并通过众包清洁数据的用户评论。 最后,我们研究了使用神经模型进行分类谬误的任务。 我们发现,通常模型在存在会话背景下更好地执行。

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