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Detecting Rumors Through Modeling Information Propagation Networks in a Social Media Environment

机译:通过建模社交媒体环境中的信息传播网络来检测谣言

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In the midst of today’s pervasive influence of social media content and activities, information credibility has increasingly become a major issue. Accordingly, identifying false information, e.g., rumors circulated in social media environments, attracts expanding research attention and growing interests. Many previous studies have exploited user-independent features for rumor detection. These prior investigations uniformly treat all users relevant to the propagation of a social media message as instances of a generic entity. Such a modeling approach usually adopts a homogeneous network to represent all users, the practice of which ignores the variety across an entire user population in a social media environment. Recognizing this limitation in modeling methodologies, this paper explores user-specific features in a social media environment for rumor detection. The new approach hypothesizes whether a user tending to spread a rumor message is dependent on specific attributes of the user in addition to content characteristics of the message itself. Under this hypothesis, the information propagation patterns of rumors versus those of credible messages in a social media environment are differentiable. To explore and exploit this hypothesis, we develop a new information propagation model based on a heterogeneous user representation and modeling approach. By applying the new approach, we are able to differentiate rumors from credible messages through observing distinctions in their respective propagation patterns in social media. The experimental results show that the new information propagation model based on heterogeneous user representation can effectively distinguish rumors from credible social media content. Our experimental findings further show that rumors are more likely to spread among certain user groups.
机译:在当今社会媒体内容和活动的普遍影响中,信息可信度已日益成为一个主要问题。因此,识别虚假信息,例如在社交媒体环境中流传的谣言,引起了越来越多的研究关注和日益增长的兴趣。以前的许多研究都利用用户独立功能来进行谣言检测。这些先前的调查将与社交媒体消息的传播相关的所有用户统一地视为通用实体的实例。这种建模方法通常采用同构网络来表示所有用户,其做法忽略了社交媒体环境中整个用户群体的多样性。认识到建模方法的局限性,本文探讨了社交媒体环境中特定于用户的功能以进行谣言检测。新方法假设除了消息本身的内容特征之外,倾向于传播谣言消息的用户是否还取决于用户的特定属性。在这种假设下,社交媒体环境中谣言的信息传播模式与可信消息的信息传播模式是可区分的。为了探索和利用这一假设,我们开发了一种基于异构用户表示和建模方法的新信息传播模型。通过应用新方法,我们可以通过观察社交媒体中各自传播方式的差异来区分谣言与可信消息。实验结果表明,基于异构用户表示的新信息传播模型可以有效地将谣言与可信的社交媒体内容区分开。我们的实验结果进一步表明,谣言更有可能在某些用户群体中传播。

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