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Multivariate space‐time modelling of multiple air pollutants and their health effects accounting for exposure uncertainty

机译:多变空气时间建模多次空气污染物及其健康效果核算暴露不确定性

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摘要

The long‐term health effects of air pollution are often estimated using a spatio‐temporal ecological areal unit study, but this design leads to the following statistical challenges: (1) how to estimate spatially representative pollution concentrations for each areal unit; (2) how to allow for the uncertainty in these estimated concentrations when estimating their health effects; and (3) how to simultaneously estimate the joint effects of multiple correlated pollutants. This article proposes a novel 2‐stage Bayesian hierarchical model for addressing these 3 challenges, with inference based on Markov chain Monte Carlo simulation. The first stage is a multivariate spatio‐temporal fusion model for predicting areal level average concentrations of multiple pollutants from both monitored and modelled pollution data. The second stage is a spatio‐temporal model for estimating the health impact of multiple correlated pollutants simultaneously, which accounts for the uncertainty in the estimated pollution concentrations. The novel methodology is motivated by a new study of the impact of both particulate matter and nitrogen dioxide concentrations on respiratory hospital admissions in Scotland between 2007 and 2011, and the results suggest that both pollutants exhibit substantial and independent health effects.
机译:空气污染的长期健康效应通常使用时空生态区域研究估计,但这种设计导致以下统计挑战:(1)如何为每个区域单位估算空间代表性污染浓度; (2)如何在估算健康效果时允许这些估计浓度的不确定性; (3)如何同时估计多个相关污染物的关节效应。本文提出了一种用于解决这3个挑战的新型2级贝叶斯分层模型,推断基于马尔可夫链蒙特卡罗模拟。第一阶段是多变量的时空融合模型,用于预测来自监测和建模的污染数据的多种污染物的面积水平平均浓度。第二阶段是一种时空模型,用于估计多个相关污染物同时的健康影响,这对估计污染浓度的不确定性估计。新型方法是通过对颗粒物质和二氧化氮浓度对苏格兰呼吸医院入院的影响的新研究,结果表明,两种污染物都表现出实质性和独立的健康影响。

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