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DARIM: Dynamic Approach for Rumor Influence Minimization in Online Social Networks

机译:Darim:谣言的动态方法在线社交网络中最小化

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This paper investigates the problem of rumor influence minimization in online social networks (OSNs). Over the years, researchers have proposed strategies to diminish the influence of rumor mainly divided into two well-known methods, namely the anti-rumor campaign strategy and the blocking nodes strategy. Although these strategies have proven to be efficient in different scenarios, their gaps remain in other situations. Therefore, we introduce in this work the dynamic approach for rumor influence minimization (DARIM) that aims to overcome these shortcomings and exploit their advantage. The objective is to find a compromise between the blocking nodes and anti-rumor campaign strategies that minimize the most the influence of a rumor. Accordingly, we present a solution formulated from the perspective of a network inference problem by exploiting the survival theory. Thus, we introduce a greedy algorithm based on the likelihood principle. Since the problem is NP-hard, we prove the objective function is submodular and monotone and provide an approximation within (1 - 1/e) of the optimal solution. Experiments performed in real multiplex and single OSNs provide evidence about the performance of the proposed algorithm compared the work of literature.
机译:本文调查了在线社交网络中谣言影响最小化(OSNS)。多年来,研究人员提出了减少谣言的影响的策略,主要分为两种众所周知的方法,即反谣言活动策略和阻塞节点策略。虽然这些策略已被证明在不同的情景中有效,但它们的差距仍然存在于其他情况下。因此,我们在这项工作中介绍了谣言影响最小化(Darim)的动态方法,旨在克服这些缺点并利用它们的优势。目标是在阻塞节点和反谣言活动策略之间找到折衷,以最小化最谣言的影响。因此,我们通过利用生存理论,提出了一种由网络推理问题的角度制定的解决方案。因此,我们介绍了一种基于似然原理的贪婪算法。由于问题是NP - 硬,我们证明目标函数是子模子和单调的,并在最佳解决方案的(1 - 1 / e)内提供近似值。实验在实际复用和单一OSN中进行了关于所提出的算法性能的证据,而是比较了文献的工作。

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