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Emerging Rumor Identification for Social Media with Hot Topic Detection

机译:带有热点话题的社交媒体新兴谣言识别

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A rumor is commonly defined as a statement whose true value is unverifiable. As rumor can spread misinformation around people, causing social problems such as panic, and the rapid growth of online social media has made it possible for rumors to spread more quickly, it is important to automatically identify rumors for social media. Existing methods on rumor detection always concentrate on telling rumor from truth with handcrafted regular expressions, dealing with out of date rumor related message. To solve this problem, we introduce a novel hot topic detection method combining bursty term identification and multi-dimension sentence modeling to automatically detect emerging hot topics for rumor identification. We conduct a comprehensive set of experiments on two data sets from real-world social media. Experiment results show that our emerging rumor identification for social media with hot topic detection work well both in news data set and twitter data set, and combining the hot topic detection with the rumor detection is possible to finish real-time rumor identification. We believe our method to automatically detect rumor will open new dimensions in analyzing online misinformation and other aspects of social media mining.
机译:谣言通常被定义为其真实价值无法验证的陈述。由于谣言会在人周围散布错误信息,从而引起诸如恐慌之类的社会问题,并且在线社交媒体的迅速发展使谣言得以更快地传播,因此自动识别社交媒体的谣言非常重要。现有的谣言检测方法始终专注于通过手工制作的正则表达式将谣言从真相中分辨出来,处理与谣言有关的过时消息。为了解决这个问题,我们引入了一种新颖的热点话题检测方法,该方法结合了突发术语识别和多维句子建模,可以自动检测新兴热点话题以进行谣言识别。我们对来自现实世界社交媒体的两个数据集进行了全面的实验。实验结果表明,我们新兴的具有热点话题检测功能的社交媒体谣言识别在新闻数据集和Twitter数据集中均能很好地发挥作用,并且将热点话题检测与谣言检测相结合可以完成实时的谣言识别。我们相信,我们自动检测谣言的方法将为分析在线错误信息和社交媒体挖掘的其他方面打开新的维度。

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