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Novel fake news spreading model with similarity on PSO-based networks

机译:基于PSO的网络相似性的新型假新闻传播模型

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This paper proposes a fake news spreading model with similarity taken into account, assuming that the similarity between individuals can affect the transmission rate. Simulations show that the similarity of two connected nodes and the product of their degrees are positively correlated when the network temperature is small, and the similarity of two connected nodes decreases as the product of their degrees increases. Thus the transmission rate can be expressed as the function of their degrees in the proposed model. The theoretic analysis demonstrates the critical threshold is related to both the influence coefficient and the similarity function. Simulation results show a smaller influence coefficient leads to a larger critical threshold and smaller final density of stiflers. (C) 2020 Elsevier B.V. All rights reserved.
机译:本文提出了一种具有相似性的假新闻传播模型,假设个人之间的相似性会影响传输速率。 模拟表明,当网络温度较小时,两个连接节点的相似性和其度的乘积是呈正相关的,并且随着其度的乘积增加,两个连接节点的相似性降低。 因此,传输速率可以表示为所提出的模型中的度的函数。 理论分析表明临界阈值与影响系数和相似性函数兼容。 仿真结果表明,较小的影响系数导致更大的临界阈值和更小的变速器的最终密度。 (c)2020 Elsevier B.v.保留所有权利。

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