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RumorSleuth: Joint Detection of Rumor Veracity and User Stance

机译:RumorSleuth:谣言准确性和用户姿态的联合检测

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摘要

The penetration of social media has had deep and far-reaching consequences in information production and consumption. Widespread use of social media platforms has engendered malicious users and attention seekers to spread rumors and fake news. This trend is particularly evident in various microblogging platforms where news becomes viral in a matter of hours and can lead to mass panic and confusion. One intriguing fact regarding rumors and fake news is that very often rumor stories prompt users to adopt different stances about the rumor posts. Understanding user stances in rumor posts is thus very important to identify the veracity of the underlying content. While rumor veracity and stance detection have been viewed as disjoint tasks we demonstrate here how jointly learning both of them can be fruitful. In this paper, we propose RumorSleuth, a multitask deep learning model which can leverage both the textual information and user profile information to jointly identify the veracity of a rumor along with users' stances. Tests on two publicly available rumor datasets demonstrate that RumorSleuth outperforms current state-of-the-art models and achieves up to 14% performance gain in rumor veracity classification and around 6% improvement in user stance classification.
机译:社交媒体的渗透对信息的生产和消费产生了深远的影响。社交媒体平台的广泛使用导致恶意用户和关注者散布谣言和虚假新闻。这种趋势在各种微博平台中尤为明显,在这些平台中,新闻在几小时内迅速传播开来,并可能导致大规模恐慌和混乱。关于谣言和虚假新闻的一个有趣的事实是,谣言故事经常促使用户对谣言帖子采取不同的立场。因此,了解谣言帖子中的用户立场对于确定基础内容的准确性非常重要。尽管谣言的真实性和立场检测被视为不相干的任务,但我们在这里展示了如何共同学习两者都可以取得成果。在本文中,我们提出了RumorSleuth,这是一个多任务深度学习模型,可以利用文本信息和用户个人资料信息来共同识别谣言的真实性和用户的立场。对两个可公开获取的谣言数据集的测试表明,RumorSleuth的性能优于当前的最新模型,在谣言准确性分类中的性能提升高达14%,在用户立场分类中的提升约为6%。

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