异构SIR模型中延迟病例隔离的局限性

Jonas Hansson, Alain Govaert, R. Pates, E. Tegling, K. Soltesz
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摘要

病例隔离,即发现和隔离受感染的个体,以防止传播,是遏制传染病流行的一种策略。在这里,我们研究了受时间延迟影响的病例隔离策略在稳定异质接触网络中流行病传播的能力方面的效率。对于SIR流行病模型,我们分析表征了稳定性边界,并展示了它如何依赖于感染和隔离之间的时间延迟以及个体间接触网络的异质性,通过接触率的方差来量化。我们表明,网络异质性是先前导出的均匀SIR模型(具有均匀接触率)稳定性结果的限制校正因子,因此在相关时间尺度上过于乐观。我们通过深刻的数值例子说明了结果和潜在的机制。
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Limitations of time-delayed case isolation in heterogeneous SIR models
Case isolation, that is, detection and isolation of infected individuals in order to prevent spread, is a strategy to curb infectious disease epidemics. Here, we study the efficiency of a case isolation strategy subject to time delays in terms of its ability to stabilize the epidemic spread in heterogeneous contact networks. For an SIR epidemic model, we characterize the stability boundary analytically and show how it depends on the time delay between infection and isolation as well as the heterogeneity of the inter-individual contact network, quantified by the variance in contact rates. We show that network heterogeneity accounts for a restricting correction factor to previously derived stability results for homogeneous SIR models (with uniform contact rates), which are therefore too optimistic on the relevant time scales. We illustrate the results and the underlying mechanisms through insightful numerical examples.
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