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Deterministic epidemic models on contact networks: Correlations and unbiological terms

机译:接触网络上的确定性流行病模型:相关性和非生物学术语

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摘要

The relationship between system-level and subsystem-level master equations is investigated and then utilised for a systematic and potentially automated derivation of the hierarchy of moment equations in a susceptible-infectious-removed (SIR) epidemic model. In the context of epidemics on contact networks we use this to show that the approximate nature of some deterministic models such as mean-field and pair-approximation models can be partly understood by the identification of implicit anomalous terms. These terms describe unbiological processes which can be systematically removed up to and including the nth order by nth order moment closure approximations. These terms lead to a detailed understanding of the correlations in network-based epidemic models and contribute to understanding the connection between individual-level epidemic processes and population-level models. The connection with metapopulation models is also discussed. Our analysis is predominantly made at the individual level where the first and second order moment closure models correspond to what we term the individual-based and pair-based deterministic models, respectively. Matlab code is included as supplementary material for solving these models on transmission networks of arbitrary complexity
机译:研究了系统级主子系统方程和子系统级主方程之间的关系,然后将其用于在传染病易感性(SIR)流行模型中矩方程的层次结构的系统化和潜在的自动化推导。在联系网络上的流行病中,我们用它来证明某些确定性模型(例如均值场和对近似模型)的近似性质可以通过隐式异常项的识别而部分理解。这些术语描述了非生物过程,可以通过n阶矩闭合近似系统地去除直至n阶(包括n阶)。这些术语导致对基于网络的流行模型中相关性的详细理解,并有助于理解个人级别的流行过程与人口级别的模型之间的联系。还讨论了与种群模型的联系。我们的分析主要是在个人一级进行的,一阶和二阶矩闭合模型分别对应于我们所说的基于个人的和基于对的确定性模型。包含Matlab代码作为补充材料,用于解决任意复杂度的传输网络上的这些模型

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