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Space and contact networks:capturing the locality of disease transmission

机译:空间和接触网络:捕获疾病传播的地点

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While an arbitrary level of complexity may be included in simulations of spatial epidemics,computational intensity and analytical intractability mean that such models often lack transparency into the determinants of epidemiological dynamics.Although numerous approaches attempt to resolve this complexity-tractability trade-off,moment closure methods arguably offer the most promising and robust frameworks for capturing the role of the locality of contact processes on global disease dynamics.While a close analogy may be made between full stochastic spatial transmission models and dynamic network models,we consider here the special case where the dynamics of the network topology change on time-scales much longer than the epidemiological processes imposed on them;in such cases,the use of static network models are justified.We show that in such cases,static network models may provide excellent approximations to the underlying spatial contact process through an appropriate choice of the effective neighbourhood size.We also demonstrate the robustness of this mapping by examining the equivalence of deterministic approximations to the full spatial and network models derived under third-order moment closure assumptions.For systems where deviation from homogeneous mixing is limited,we show that pair equations developed for network models are at least as good an approximation to the underlying stochastic spatial model as more complex spatial moment equations,with both classes of approximation becoming less accurate only for highly localized kernels.
机译:尽管在空间流行病的模拟中可能包含任意程度的复杂性,但计算强度和分析难处理性意味着这种模型通常对流行病学动力学的决定因素缺乏透明度。尽管许多方法试图解决这种复杂性-易处理性的权衡,瞬间闭合这些方法可以说是提供最有前途和最有力的框架,以捕捉接触过程的局部性在全球疾病动态中的作用。虽然完全随机的空间传播模型和动态网络模型之间可以进行类比,但在此我们考虑以下特殊情况:网络拓扑的动态变化在时间尺度上的变化比在其上施加的流行病学过程要长得多;在这种情况下,使用静态网络模型是合理的。我们表明,在这种情况下,静态网络模型可以为基础拓扑提供良好的近似通过适当选择效果的空间接触过程我们还通过检查确定性逼近在三阶矩闭合假设下得出的完整空间模型和网络模型的等价性来证明该映射的鲁棒性。对于均质混合偏差受限的系统,我们证明了对方程为网络模型开发的模型至少与更复杂的空间矩方程组近似为基本的随机空间模型,而这两种近似方法仅对于高度局部化的内核而言,其精确度就会降低。

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