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A traveling epidemic model of space-time disease spread

机译:时空疾病传播的旅行流行病模型

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摘要

This work presents a random field model of disease attribute (incidence, mortality etc.) that transfers the study of the attribute distribution from the original spatiotemporal domain onto a lower-dimensionality traveling domain that moves along the direction of disease velocity. The partial differential equations connecting the disease attribute covariances in the original and the traveling domain are derived with coefficients that are functions of the disease velocity. These equations offer epidemiologic insight concerning the strength of the space-time dependence between the disease attribute values in the two domains. The traveling disease model has certain theoretical and computational advantages in the study and prediction of space-time disease attribute distributions in conditions of uncertainty. Estimates of the disease attribute are derived in the traveling domain and then used to generate maps of space-time disease attribute distribution in the original domain. The theoretical model is illustrated and additional insight is gained by means of a numerical mortality simulation study, which shows that the proposed model is at least as accurate but computationally more efficient than mainstream mapping techniques of higher dimensionality. These findings concerning the very good predictability of the proposed model also strongly support its adequacy to represent the space-time mortality distribution.
机译:这项工作提出了一种疾病属性(发病率,死亡率等)的随机域模型,该模型将对属性分布的研究从最初的时空域转移到了沿疾病速度方向移动的低维传播域。用原始系数和传播系数来推导连接原始域和传播域中疾病属性协方差的偏微分方程。这些方程式提供了流行病学方面的见解,涉及这两个域中疾病属性值之间的时空依赖性。在不确定性条件下,时空疾病模型在时空疾病属性分布的研究和预测中具有一定的理论和计算优势。在旅行域中得出疾病属性的估计值,然后将其用于在原始域中生成时空疾病属性分布图。通过数值死亡率模拟研究,说明了理论模型并获得了更多的见识,该研究表明,所提出的模型至少与主流的高维地图绘制技术一样准确,但计算效率更高。这些与拟议模型的良好可预测性有关的发现也强烈支持其足以代表时空死亡率分布。

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