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Diffusive Logistic Model Towards Predicting Information Diffusion in Online Social Networks

机译:预测在线社交网络中信息扩散的扩散逻辑模型

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Online social networks have recently become an effective and innovative channel for spreading information and influence among hundreds of millions of end users. Most of prior work either carried out empirical studies or focus on the information diffusion modeling in temporal dimension, little attempt has been given on understanding information diffusion over both temporal and spatial dimensions. In this paper, we propose a Partial Differential Equation (PDE), specifically, a Diffusive Logistic (DL) equation to model the temporal and spatial characteristics of information diffusion. We present the temporal and spatial patterns in a real dataset collected from a social news aggregation site, Digg, and validate the proposed DL equation in terms of predicting the information diffusion process. Our experiment results show that the DL model is able to characterize and predict the process of information propagation in online social networks. For example, for the most popular news with 24,099 votes in Digg, the average prediction accuracy of DL model over all distances during the first 6 hours is 92.08%. To the best of our knowledge, this paper is the first attempt to use PDE-based model to study the information diffusion process in both temporal and spatial dimensions in online social networks.
机译:在线社交网络最近已成为在数亿最终用户中传播信息和影响力的有效且创新的渠道。先前的大多数工作要么进行实证研究,要么着重于时间维度上的信息扩散建模,但很少有人尝试了解时间和空间维度上的信息扩散。在本文中,我们提出了一个偏微分方程(PDE),特别是一个扩散对数(DL)方程来对信息扩散的时空特征进行建模。我们介绍了从社交新闻聚合站点Digg收集的真实数据集中的时空格局,并在预测信息传播过程方面验证了所提出的DL方程。我们的实验结果表明,DL模型能够表征和预测在线社交网络中信息传播的过程。例如,对于Digg中获得24,099票的最受欢迎新闻,DL模型在前6小时内所有距离的平均预测准确性为92.08%。据我们所知,本文是首次尝试使用基于PDE的模型来研究在线社交网络在时间和空间维度上的信息传播过程。

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