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Modeling and Analyzing the Interaction between Network Rumors and Authoritative Information

机译:网络谣言与权威信息之间相互作用的建模与分析

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In this paper, we propose a novel two-stage rumor spreading Susceptible-Infected-Authoritative-Removed (SIAR) model for complex homogeneous and heterogeneous networks. The interaction Markov chains (IMC) mean-field equations based on the SIAR model are derived to describe the dynamic interaction between the rumors and authoritative information. We use a Monte Carlo simulation method to characterize the dynamics of the Susceptible-Infected-Removed (SIR) and SIAR models, showing that the SIAR model with consideration of authoritative information gives a more realistic description of propagation features of rumors than the SIR model. The simulation results demonstrate that the critical threshold λc of the SIAR model has the tiniest increase than the threshold of SIR model. The sooner the authoritative information is introduced, the less negative impact the rumors will bring. We also get the result that heterogeneous networks are more prone to the spreading of rumors. Additionally, the inhibition of rumor spreading, as one of the characteristics of the new SIAR model itself, is instructive for later studies on the rumor spreading models and the controlling strategies.
机译:在本文中,我们针对复杂的同构异构网络提出了一种新型的两阶段谣言传播易受感染的权威去除(SIAR)模型。推导了基于SIAR模型的相互作用马尔可夫链(IMC)平均场方程,以描述谣言与权威信息之间的动态相互作用。我们使用蒙特卡罗模拟方法来表征易感性感染去除(SIR)和SIAR模型的动力学,表明考虑到权威信息的SIAR模型比SIR模型更能真实地描述谣言的传播特征。仿真结果表明,SIAR模型的临界阈值λ c 的增加幅度最小于SIR模型的阈值。越早引入权威信息,谣言带来的负面影响就越小。我们还得到了这样的结果,即异构网络更容易散布谣言。另外,作为新的SIAR模型本身的特征之一,抑制谣言传播对于以后的谣言传播模型和控制策略的研究具有指导意义。

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