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Suppression of epidemic spreading in time-varying multiplex networks

机译:时变多路复用网络中流行病传播的抑制

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摘要

Suppressing and preventing epidemic spreading is of critical importance to the well being of the human society. To uncover phenomena that can guide control and management of epidemics is thus of significant value. An understanding of epidemic spreading dynamics in the real world requires the following two ingredients. Firstly, a multiplex network description is necessary, because information diffusion in the virtual communication layer of the individuals can affect the disease spreading dynamics in the physical contact layer, and vice versa. The interaction between the dynamical processes in the two layers is typically asymmetric. Secondly, both network layers are in general time varying. In spite of the large body of literature on spreading dynamics in complex networks, the effect of the asymmetrical interaction between information diffusion and epidemic spreading in activity-driven, time-varying multiplex networks have not been understood. We address this problem by developing a general theory based on the approach of microscopic Markov chain, which enables us to predict the epidemic threshold and the final infection density in the physical layer, on which the information diffusion process in the virtual layer can have a significant effect. The focus of our study is on uncovering and understanding mechanisms to inhibit physical disease spreading. We find that stronger heterogeneity in the individual activities and a smaller contact capacity in the communication layer can promote the inhibitory effect. A remarkable phenomenon is that an enhanced positive correlation between the activities in the two layers can greatly suppress the spreading dynamics, suggesting a practical and effective approach to controlling epidemics in the real world. (C) 2019 Elsevier Inc. All rights reserved.
机译:抑制和预防流行病的传播对人类社会的福祉至关重要。因此,揭示可指导流行病控制和管理的现象具有重要价值。对现实世界中流行病传播动态的理解需要以下两个要素。首先,多路网络描述是必要的,因为个人虚拟通信层中的信息传播会影响物理接触层中疾病的传播动态,反之亦然。两层动力学过程之间的相互作用通常是不对称的。其次,两个网络层通常都在变化。尽管有大量关于复杂网络中传播动力学的文献,但在活动驱动的时变多路复用网络中,信息传播与流行病传播之间的不对称相互作用的影响尚未得到了解。我们通过基于微观马尔可夫链的方法发展通用理论来解决此问题,该理论使我们能够预测物理层的流行阈值和最终感染密度,在虚拟层上,信息传播过程可能具有重要意义。影响。我们研究的重点是发现和理解抑制物理疾病传播的机制。我们发现,个体活动中较强的异质性和通信层中较小的接触能力可以促进抑制作用。一个显着的现象是,两层活动之间增强的正相关性可以极大地抑制传播动态,从而提出了一种控制现实世界中流行病的实用有效方法。 (C)2019 Elsevier Inc.保留所有权利。

著录项

  • 来源
    《Applied Mathematical Modelling》 |2019年第11期|806-818|共13页
  • 作者单位

    China Elect Technol Grp Corp Cyberspace Secur Key Lab Chengdu Sichuan Peoples R China|Univ Elect Sci & Technol China Web Sci Ctr Chengdu 611731 Sichuan Peoples R China;

    Univ Shanghai Sci & Technol Business Sch Shanghai Peoples R China;

    East China Normal Univ Shanghai Key Lab Pure Math & Math Practice Sch Math Sci Shanghai 200241 Peoples R China|East China Normal Univ Shanghai Key Lab Multidimens Informat Proc Shanghai 200241 Peoples R China;

    Univ Elect Sci & Technol China Web Sci Ctr Chengdu 611731 Sichuan Peoples R China|Univ Elect Sci & Technol China Big Data Res Ctr Chengdu 611731 Sichuan Peoples R China;

    Arizona State Univ Dept Elect Engn Tempe AZ 85287 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Multiplex network; Time-varying; Epidemic spreading; Microscopic Markov chain;

    机译:多重网络;时变流行病蔓延;微观马尔可夫链;

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