首页> 外文会议>Second workshop on natural language processing meets journalism 2017 >From Clickbait to Fake News Detection: An Approach based on Detecting the Stance of Headlines to Articles
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From Clickbait to Fake News Detection: An Approach based on Detecting the Stance of Headlines to Articles

机译:从Clickbait到虚假新闻检测:一种基于检测标题对文章姿势的方法

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We present a system for the detection of the stance of headlines with regard to their corresponding article bodies. The approach can be applied in fake news, especially clickbait detection scenarios. The component is part of a larger platform for the curation of digital content; we consider veracity and relevancy an increasingly important part of curating online information. We want to contribute to the debate on how to deal with fake news and related online phenomena with technological means, by providing means to separate related from unrelated headlines and further classifying the related headlines. On a publicly available data set annotated for the stance of headlines with regard to their corresponding article bodies, we achieve a (weighted) accuracy score of 89.59.
机译:我们提出了一种用于检测标题相对于其相应文章正文的立场的系统。该方法可以应用于假新闻,尤其是点击诱饵检测方案。该组件是用于管理数字内容的更大平台的一部分;我们认为准确性和相关性是策划在线信息越来越重要的一部分。我们希望通过提供分离无关标题和进一步分类相关标题的手段,为有关如何通过技术手段处理假新闻和相关在线现象的辩论做出贡献。在一个公开的数据集上,注明其相应文章正文的标题立场,我们获得(加权)准确度得分为89.59。

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