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空间传染病动力学的条件逻辑个体水平模型

Conditional logistic individual-level models of spatial infectious disease dynamics.

作者信息

Akter Tahmina, Deardon Rob

机构信息

Department of Mathematics and Statistics, University of Calgary, University Drive NW, Calgary, T2N 1N4, Canada.

Institute of Statistical Research and Training, University of Dhaka, Dhaka, 1000, Bangladesh.

出版信息

Infect Dis Model. 2024 Oct 28;10(1):268-286. doi: 10.1016/j.idm.2024.10.008. eCollection 2025 Mar.

Abstract

Here, we introduce a novel framework for modelling the spatiotemporal dynamics of disease spread known as conditional logistic individual-level models (CL-ILM's). This framework alleviates much of the computational burden associated with traditional spatiotemporal individual-level models for epidemics, and facilitates the use of standard software for fitting logistic models when analysing spatiotemporal disease patterns. The models can be fitted in either a frequentist or Bayesian framework. Here, we apply the new spatial CL-ILM to simulated data, semi-real data from the UK 2001 foot-and-mouth disease epidemic, and real data from a greenhouse experiment on the spread of tomato spotted wilt virus.

摘要

在此,我们介绍一种用于对疾病传播的时空动态进行建模的全新框架,即条件逻辑个体水平模型(CL - ILM)。该框架减轻了与传统的用于流行病的时空个体水平模型相关的许多计算负担,并在分析时空疾病模式时便于使用标准软件来拟合逻辑模型。这些模型可以在频率主义或贝叶斯框架中进行拟合。在此,我们将新的空间CL - ILM应用于模拟数据、来自英国2001年口蹄疫疫情的半真实数据以及来自一项关于番茄斑萎病毒传播的温室实验的真实数据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/89b5/11609356/c0daebdb6afe/gr1.jpg

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