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Predicting Popularity of Forum Threads for Public Events Security

机译:预测公共活动安全论坛主题的流行度

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摘要

Web user's online interactive behavior with others often makes some user generated contents popular. The modeling and prediction of the popularity of online content are an important research issue for many key application domains. In this paper, we focus on one form of user generated content, forum threads, and their popularity prediction for public events security. To predict the popularity of forum threads, we first define the popularity prediction problem, and identify the dynamic factors that affect the popularity of forum threads. Based on the information of dynamic evolution at the early stage, we propose a popularity prediction algorithm which makes use of the locality property and combines multiple dynamic factors. The proposed algorithm is further evaluated using the Tianya forum dataset on the discussions of various public events. The experimental results show that, compared to the baseline methods, our method achieves relatively better performance in predicting the popularity of forum threads on public events security.
机译:Web用户与他人的在线交互行为经常使某些用户生成的内容流行。在线内容受欢迎程度的建模和预测是许多关键应用程序领域的重要研究问题。在本文中,我们关注于用户生成的内容,论坛主题及其对公共事件安全性的流行度预测的一种形式。为了预测论坛线程的受欢迎程度,我们首先定义受欢迎程度预测问题,然后确定影响论坛线程受欢迎程度的动态因素。基于早期动态演化的信息,提出一种利用局部性并结合多个动态因素的流行度预测算法。在各种公共事件的讨论中,使用Tianya论坛数据集进一步评估了提出的算法。实验结果表明,与基线方法相比,我们的方法在预测论坛主题对公共事件安全性的普及方面取得了相对较好的性能。

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