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Association between the New COVID-19 Cases and Air Pollution with Meteorological Elements in Nine Counties of New York State

机译:新的Covid-19患者与纽约九县气象元素的空气污染

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摘要

The principal objective of this article is to assess the possible association between the number of COVID-19 infected cases and the concentrations of fine particulate matter (PM2.5) and ozone (O3), atmospheric pollutants related to people’s mobility in urban areas, taking also into account the effect of meteorological conditions. We fit a generalized linear mixed model which includes spatial and temporal terms in order to detect the effect of the meteorological elements and COVID-19 infected cases on the pollutant concentrations. We consider nine counties of the state of New York which registered the highest number of COVID-19 infected cases. We implemented a Bayesian method using integrated nested Laplace approximation (INLA) with a stochastic partial differential equation (SPDE). The results emphasize that all the components used in designing the model contribute to improving the predicted values and can be included in designing similar real-world data (RWD) models. We found only a weak association between PM2.5 and ozone concentrations with COVID-19 infected cases. Records of COVID-19 infected cases and other covariates data from March to May 2020 were collected from electronic health records (EHRs) and standard RWD sources.
机译:本文的主要目标是评估Covid-19受感染病例的数量和细颗粒物质(PM2.5)和臭氧(O3),与人们在城市地区的流动性相关的大气污染物之间的可能关联,采取同样考虑了气象条件的影响。我们符合广义的线性混合模型,包括空间和时间术语,以检测气象元素和Covid-19受感染病例对污染物浓度的影响。我们考虑纽约州的九个县,其中登记了Covid-19受感染病例的最多。我们利用具有随机偏微分方程(SPDE)的集成嵌套的拉普拉斯近似(Inla)实现了贝叶斯方法。结果强调设计模型中使用的所有组件有助于改善预测值,并且可以包括在设计类似的真实数据(RWD)模型中。我们发现PM2.5和臭氧浓度之间的弱关联,具有Covid-19受感染病例。从电子健康记录(EHRS)和标准RWD消息来源收集了从3月到2020年3月到5月到2020年3月到2020年5月到2020年的感染病例和其他协变量数据的记录。

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