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Fake and Spam Messages: Detecting Misinformation During Natural Disasters on Social Media

机译:虚假和垃圾邮件消息:在社交媒体上的自然灾害期间检测错误信息

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During natural disasters or crises, users on social media tend to easily believe contents of postings related to the events, and retweet the postings with hoping them to be reached to many other users. Unfortunately, there are malicious users who understand the tendency and post misinformation such as spam and fake messages with expecting wider propagation. To resolve the problem, in this paper we conduct a case study of 2013 Moore Tornado and Hurricane Sandy. Concretely, we (i) understand behaviors of these malicious users, (ii) analyze properties of spam, fake and legitimate messages, (iii) propose flat and hierarchical classification approaches, and (iv) detect both fake and spam messages with even distinguishing between them. Our experimental results show that our proposed approaches identify spam and fake messages with 96.43% accuracy and 0.961 F-measure.
机译:在自然灾害或危机期间,社交媒体上的用户倾向于轻松相信与事件相关的帖子内容,并转发这些帖子,以期将其吸引到许多其他用户。不幸的是,有些恶意用户了解趋势并发布了错误信息,例如垃圾邮件和伪造消息,期望传播范围更广。为了解决该问题,本文对2013年的Moore Tornado和飓风Sandy进行了案例研究。具体而言,我们(i)了解这些恶意用户的行为,(ii)分析垃圾邮件,伪造和合法邮件的属性,(iii)提出统一和分层的分类方法,以及(iv)甚至在区分两者之间区分伪造和垃圾邮件。他们。我们的实验结果表明,我们提出的方法能够以96.43%的准确度和0.961 F度量来识别垃圾邮件和虚假邮件。

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