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Methods for estimating disease transmission rates: Evaluating the precision of Poisson regression and two novel methods

机译:评估疾病传播率的方法:评估泊松回归的精确度和两种新方法

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摘要

Precise estimates of disease transmission rates are critical for epidemiological simulation models. Most often these rates must be estimated from longitudinal field data, which are costly and time-consuming to conduct. Consequently, measures to reduce cost like increased sampling intervals or subsampling of the population are implemented. To assess the impact of such measures we implement two different SIS models to simulate disease transmission: A simple closed population model and a realistic dairy herd including population dynamics. We analyze the accuracy of different methods for estimating the transmission rate. We use data from the two simulation models and vary the sampling intervals and the size of the population sampled. We devise two new methods to determine transmission rate, and compare these to the frequently used Poisson regression method in both epidemic and endemic situations. For most tested scenarios these new methods perform similar or better than Poisson regression, especially in the case of long sampling intervals. We conclude that transmission rate estimates are easily biased, which is important to take into account when using these rates in simulation models.
机译:疾病传播率的精确估算对于流行病学模拟模型至关重要。大多数情况下,必须从纵向现场数据中估算这些费率,因为这样做既费钱又费时。因此,采取了降低成本的措施,例如增加了采样间隔或对人群进行了二次采样。为了评估此类措施的影响,我们实施了两种不同的SIS模型来模拟疾病传播:一个简单的封闭种群模型和一个包含种群动态的现实奶牛群。我们分析了估计传输速率的不同方法的准确性。我们使用来自两个仿真模型的数据,并更改采样间隔和采样人口的大小。我们设计了两种确定传播速率的新方法,并将它们与在流行和地方性情况下常用的泊松回归方法进行比较。对于大多数经过测试的场景,这些新方法的性能与Poisson回归相似或更好,尤其是在采样间隔较长的情况下。我们得出的结论是,传输速率估算很容易产生偏差,在仿真模型中使用这些速率时必须考虑到这一点,这一点很重要。

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