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Contagion Processes on Time-Varying Networks with Homophily-Driven Group Interactions

机译:具有同声源驱动群体交互的时变网络的传染过程

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The complicated interaction patterns among heterogeneous individuals have a profound impact on the contagion process in the networks. In recent years, there has been increasing evidence for the emergence of many-body interactions between two or more nodes in a wide range of biological and social networks. To encode these multinode interactions explicitly, the simplicial complex is now a popular alternative to simple networks. Meanwhile, the time-varying network has been acknowledged as a key ingredient of the contagion process. In this paper, we consider the connectivity pattern of networks affected by the homophily effect associated with individual attributes and investigate the impact of homophily-driven group interactions on the contagion process in temporal networks. The simplicial complex modeling framework is adopted to capture stochastic interactions between passively selected nodes in the paradigm of activity-driven networks. We study the evolution of infection and the epidemic threshold of the contagion process by both analytical and numerical methods. Our results on statistical topological properties of instantaneous network may shed light on accurately characterizing the evolution curve of infection. Furthermore, we show the impact of the homophily-driven interaction pattern on the epidemic threshold, which generalizes the existing results on both the paradigmatic activity-driven network and the simplicial activity-driven network.
机译:异构个人之间的复杂交互模式对网络中的传感过程产生了深刻的影响。近年来,在广泛的生物和社交网络中,在两个或更多个节点之间的许多互动产生了越来越多的证据。为了明确地对这些多光宝交互进行编码,现在是简单网络的流行替代。同时,时变网络被视为传染过程的关键成分。在本文中,我们考虑受与个体属性相关的粗源效应影响的网络的连接模式,并调查奇妙驱动的群体相互作用对时间网络传递过程的影响。采用单纯性复杂建模框架来捕获活动驱动网络范式中被动选择节点之间的随机交互。通过分析和数值方法研究感染的演变和传染过程的流行病阈值。我们对瞬时网络的统计拓扑特性的结果可能会在精确地表征感染曲线上脱光。此外,我们展示了具有奇妙驱动的交互模式对疫情阈值的影响,这概括了范式活动驱动的网络和单一性活动驱动网络的现有结果。

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  • 来源
    《Complexity》 |2019年第1期|共13页
  • 作者

    Li Ding; Ping Hu;

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