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Epidemics of random walkers in metapopulation model for complete, cycle, and star graphs

机译:完成,循环和星形图中的按摩沃思仪的流行病

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We present the metapopulation dynamic model for epidemic spreading of random walkers between subpopulations. A subpopulation is represented by a node on a graph. Each agent or individual is either susceptible (S) or infected (I). All agents move by random walk on the graph; namely, each agent randomly determines the destination of migration. The reaction-diffusion equations are presented as ordinary differential equations, not partial differential equations. To evaluate the risk of each subpopulation (node), we obtain the solutions of reaction-diffusion equations analytically and numerically for small, complete, cycle and star graphs. If a graph is homogeneous, or if every node has the same degree, then the solution never changes for any nodes. However, when a graph is heterogeneous, the infection density in equilibrium differs entirely among nodes. For example, on star graphs, the hub seems to be a supply source of disease because the infection density at the hub is much higher than that at the other nodes. On every graph, the epidemic thresholds are identical for all nodes. (C) 2018 Elsevier Ltd. All rights reserved.
机译:我们介绍了亚步骤之间随机步行者的疫情传播动态模型。亚ppopulation由图上的节点表示。每个药物或个体是易感或感染(i)。所有代理都在图表上随机散步;即,每个代理随机确定迁移的目的地。反应扩散方程被呈现为常微分方程,而不是部分微分方程。为了评估每个亚群(节点)的风险,我们通过分析和数值获得反应扩散方程的解决方案,用于小,完整,周期和星形图。如果图形是同质的,或者如果每个节点具有相同程度,则解决方案永远不会更改任何节点。然而,当图形是异质的时,平衡中的感染密度完全不同于节点之间。例如,在星形图上,集线器似乎是一种疾病源,因为集线器处的感染密度远高于另一个节点的感染密度。在每个图中,所有节点都是相同的流行病阈值。 (c)2018年elestvier有限公司保留所有权利。

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