作者
Li Chen, Shuang Liang, Xiaoli Li, Jian Mao, Shuang Gao, Hui Zhang, Yanling Sun, Sverre Vedal, Zhipeng Bai, Zhenxing Ma, Merched Azzi
发表日期
2021/1/15
期刊
Science of The Total Environment
卷号
752
页码范围
141780
出版商
Elsevier
简介
Because ambient ozone (O3) has fine spatial scale variability in addition to a large scale regional distribution, accurate exposure predictions for population health studies need to also capture fine spatial scale differences in exposure. To address these needs, we developed a 3-year average land use regression (LUR) and combined LUR and Bayesian maximum entropy (BME) by incorporating a national area variability LUR model for China from 2015 to 2017 along with data that take into account incompleteness of O3 monitoring data into a BME framework. Spatio-temporal kriging models that either included or did not include “soft” data were used for comparison. The final LUR model included five predictor variables: road length within a 1000 m buffer, temperature, wind speed, industrial land area within a 3000 m buffer and altitude. The 1-year predicted O3 concentrations based on the ratio method moderately …
引用总数
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