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A synchronized estimation of hourly surface concentrations of six criteria air pollutants with GEMS dataopen access

Authors
Yang QianqianKim JhoonCHO, YESEULLee Won-JinLee Dong-WonYuan QiangqiangWang FanZhou ChenhongZhang XiaoruiXiao XiangGuo MeiyuGuo YikeCarmichael Gregory R. R.Gao Meng
Issue Date
Jul-2023
Publisher
Nature Publishing Group
Citation
npj Climate and Atmospheric Science, v.6, no.1
Journal Title
npj Climate and Atmospheric Science
Volume
6
Number
1
URI
https://yscholarhub.yonsei.ac.kr/handle/2021.sw.yonsei/6760
DOI
10.1038/s41612-023-00407-1
ISSN
2397-3722
Abstract
Machine learning is widely used to infer ground-level concentrations of air pollutants from satellite observations. However, a single pollutant is commonly targeted in previous explorations, which would lead to duplication of efforts and ignoration of interactions considering the interactive nature of air pollutants and their common influencing factors. We aim to build a unified model to offer a synchronized estimation of ground-level air pollution levels. We constructed a multi-output random forest (MORF) model and achieved simultaneous estimation of hourly concentrations of PM2.5, PM10, O-3, NO2, CO, and SO2 in China, benefiting from the world's first geostationary air-quality monitoring instrument Geostationary Environment Monitoring Spectrometer. MORF yielded a high accuracy with cross-validated R-2 reaching 0.94. Meanwhile, model efficiency was significantly improved compared to single-output models. Based on retrieved results, the spatial distributions, seasonality, and diurnal variations of six air pollutants were analyzed and two typical pollution events were tracked.
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