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Text Similarity Computation Model for Identifying Rumor Based on Bayesian Network in Microblog

机译:基于MicroBlog中的贝叶斯网络识别谣言的文本相似性计算模型

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摘要

The research of text similarity, especially for rumor texts, which constructed the calculation model by known rumors and calculated its similarity. From which, people can recognize the rumor in advance, and improve their vigilance to effectively block and control rumors dissemination. Based on the Bayesian network, the similarity calculation model of microblog rumor texts was built. At the same time, taking into account not only the rumor texts have similar characters, but also the rumor producers have similar characters, and therefore the similarity calculation model of rumor texts makers was constructed. Then, the similarity between the text and the user was integrated, and the microblog similarity calculation model was established. Finally, also experimentally studied the performance of the proposed model on the microblog rumor text and the user data set. The experimental results indicated that the similarity algorithm proposed in this paper could be used to identify the rumors of texts and predict the characters of users more accurately and effectively.
机译:文本相似性的研究,特别是对于谣言文本,由已知的谣言构成计算模型并计算其相似度。从中,人们可以提前识别谣言,并改善他们的警惕,以有效阻止和控制谣言传播。基于贝叶斯网络,构建了微博谣言文本的相似性计算模型。与此同时,不仅考虑了谣言文本的特征,而且传闻生产商也有类似的特征,因此构建了谣言文本制造商的相似性计算模型。然后,集成了文本和用户之间的相似性,并且建立了微博相似性计算模型。最后,还通过实验研究了在MicroBlog谣言文本和用户数据集上的所提出的模型的性能。实验结果表明,本文提出的相似性算法可用于识别文本的谣言,并更准确,有效地预测用户的特征。

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