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An integrated Bayesian model for estimating the long-term health effects of air pollution by fusing modelled and measured pollution data: a case study of nitrogen dioxide concentrations in Scotland

机译:通过融合模拟和测量污染数据估算空气污染对长期健康影响的综合贝叶斯模型:苏格兰二氧化氮浓度的案例研究

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摘要

The long-term health effects of air pollution can be estimated using a spatio-temporal ecological study, where the disease data are counts of hospital admissions from populations in small areal units at yearly intervals. Spatially representative pollution concentrations for each areal unit are typically estimated by applying Kriging to data from a sparse monitoring network, or by computing averages over grid level concentrations from an atmospheric dispersion model. We propose a novel fusion model for estimating spatially aggregated pollution concentrations using both the modelled and monitored data, and relate these concentrations to respiratory disease in a new study in Scotland between 2007 and 2011.
机译:空气污染对健康的长期影响可以通过时空生态研究来估计,该疾病数据是每年每隔小区域单位人口从医院得到的入院计数。通常,通过将Kriging应用于稀疏监视网络的数据,或通过从大气扩散模型计算网格水平浓度的平均值,来估算每个区域单位的空间代表性污染浓度。我们提出了一种新颖的融合模型,用于使用模型化数据和监测数据来估算空间聚集的污染物浓度,并将这些浓度与呼吸系统疾病相关联,这是2007年至2011年在苏格兰进行的一项新研究中。

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