论文标题

高阶网络传染动力学中介镜定位的主方程分析

Master equation analysis of mesoscopic localization in contagion dynamics on higher-order networks

论文作者

St-Onge, Guillaume, Thibeault, Vincent, Allard, Antoine, Dubé, Louis J., Hébert-Dufresne, Laurent

论文摘要

传染病的简单模型倾向于假设个体的随机混合,但是实际的相互作用不是随机的成对遭遇:它们发生在各种类型的聚会中,例如工作场所,家庭,学校和音乐会,最好由高阶网络结构描述。我们使用基于组的近似近似主方程对高阶网络进行建模,其中我们在其中跟踪一组节点内的所有状态和交互,并在它们之间假设均值场耦合。我们使用易感感染感染的动力学,我们的方法揭示了介质定位制度的存在,在该方案中,疾病只能在网络整体组织中的大型群体周围集中和自我固定。在此制度中,相变涂抹,其特征是组的不均匀激活。在介质水平上,我们观察到,相同大小的组内感染节点的分布也可以非常分散,甚至可以分散。在考虑节点和组级别的异质网络时,我们在结构参数空间中分析与中学定位相关的区域。我们以特征向量的定位来透视这种现象,并讨论如何将重点放在高阶结构上,以辨别介质水平上更微妙的定位。最后,我们讨论介质定位如何影响对结构干预措施的反应,以及该框架如何为广泛的动态提供重要的见解。

Simple models of infectious diseases tend to assume random mixing of individuals, but real interactions are not random pairwise encounters: they occur within various types of gatherings such as workplaces, households, schools, and concerts, best described by a higher-order network structure. We model contagions on higher-order networks using group-based approximate master equations, in which we track all states and interactions within a group of nodes and assume a mean-field coupling between them. Using the Susceptible-Infected-Susceptible dynamics, our approach reveals the existence of a mesoscopic localization regime, where a disease can concentrate and self-sustain only around large groups in the network overall organization. In this regime, the phase transition is smeared, characterized by an inhomogeneous activation of the groups. At the mesoscopic level, we observe that the distribution of infected nodes within groups of a same size can be very dispersed, even bimodal. When considering heterogeneous networks, both at the level of nodes and groups, we characterize analytically the region associated with mesoscopic localization in the structural parameter space. We put in perspective this phenomenon with eigenvector localization and discuss how a focus on higher-order structures is needed to discern the more subtle localization at the mesoscopic level. Finally, we discuss how mesoscopic localization affects the response to structural interventions and how this framework could provide important insights for a broad range of dynamics.

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