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Rumors Detection in Sina Weibo Based on Text and User Characteristics

机译:关于文本和用户特征的新浪微博检测谣言

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M414 such as Twitter and Sina Weibo have brought convenience to people in recent years, but there are a large number of internet rumors bring serious harm to us. Because of the fuzziness and concealment of rumors, the automatic identification of microblog rumors is very difficult, which brings great challenges to microblog's supervision. In this paper, for the text information of rumors, we construct a new emotional classification method, and use this method to analyze the emotional orientation of comments, and then calculate the proportion of negative emotional comments. Combined with user information at the same time, we analyze retweet-list and comment-list, and then judge whether there are authoritative users who participated in the spread of rumors. Moreover, we extract features from the information of user and calculate the user's reputation value. Finally, we use the training classifier to detect microblog rumors. Experimental results illustrate the efficacy and efficiency of the proposed new features in microblog rumors detection.
机译:M414如Twitter和Sina Weibo近年来为人们带来了方便,但有大量的互联网谣言对我们带来了严重伤害。由于谣言的模糊和隐蔽,微博谣言的自动识别非常困难,这对微博的监督带来了巨大的挑战。在本文中,对于谣言的文本信息,我们构建了一种新的情感分类方法,并使用这种方法来分析评论的情绪导向,然后计算负面情绪评论的比例。同时结合用户信息,我们分析了转发列表和评论列表,然后判断是否存在参与谣言传播的权威用户。此外,我们从用户信息中提取特征并计算用户的声誉值。最后,我们使用训练分类器来检测微博谣言。实验结果说明了微博谣言检测中提出的新功能的功效和效率。

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