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Coarse-grained bifurcation analysis and detection of criticalities of an individual-based epidemiological network model with infection control

机译:具有感染控制的基于个人的流行病学网络模型的粗粒度分叉分析和临界度检测

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摘要

We present and discuss how the so called Equation-free approach for multi-scale computations can be used to systematically study certain aspects of the dynamics of detailed individual-based epidemiological simulators. As our illustrative example, we choose a simple individual-based stochastic epidemic model evolving on a fixed random regular network (RRN). We show how control policies based on the isolation of the infected population can dramatically influence the dynamics of the disease resulting to big-amplitude oscillations. We also address the development of a computational framework that enables detailed epidemiological simulators to converge to their coarse-grained critical points, which mark the onset of the emergent time-dependent solutions as well as to trace branches of coarse-grained unstable equilibria. Using the individual-based simulator we construct the coarse-grained bifurcation diagrams illustrating the dependence of the solutions on the disease characteristics.
机译:我们介绍并讨论如何将所谓的无方程式多尺度计算方法用于系统地研究详细的基于个体的流行病学模拟器动力学的某些方面。作为我们的说明性示例,我们选择了一个基于固定个体随机规则网络(RRN)的简单的基于个体的随机流行模型。我们展示了基于隔离感染人群的控制策略如何极大地影响导致大幅度振荡的疾病动态。我们还将解决计算框架的开发问题,该框架使详细的流行病学模拟器能够收敛​​到其粗粒度临界点,这标志着出现的时间相关解决方案的出现以及跟踪粗粒度不稳定平衡的分支。使用基于个人的模拟器,我们构造了粗粒度的分叉图,说明了解决方案对疾病特征的依赖性。

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