2021
DOI: 10.1016/j.atmosenv.2020.118022
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Machine learning based bias correction for numerical chemical transport models

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Cited by 16 publications
(5 citation statements)
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“…It could cause a high probability that the duration of future heatwaves in southwestern (northwestern) North China would be overestimated (underestimated). Therefore, it is necessary to reduce these CMIP model biases through various methods, such as bias correction (Yu et al, 2018; Zhang et al, 2020a), machine learning (Xu et al, 2021), dynamical downscaling (Liang et al, 2008) and global climate model upgrading.…”
Section: Discussionmentioning
confidence: 99%
“…It could cause a high probability that the duration of future heatwaves in southwestern (northwestern) North China would be overestimated (underestimated). Therefore, it is necessary to reduce these CMIP model biases through various methods, such as bias correction (Yu et al, 2018; Zhang et al, 2020a), machine learning (Xu et al, 2021), dynamical downscaling (Liang et al, 2008) and global climate model upgrading.…”
Section: Discussionmentioning
confidence: 99%
“…These methods are increasingly being used due to the progress in the development of ML hardware and technology. ML bias correction techniques are mainly used for chemistry transport model simulations of trace gases, e.g., [15], or used in situ surface data for aerosols, e.g., [16,17], or for post-processing weather forecasts, e.g., [18,19]. ML is used in the context of the monthly mean AOD estimation as well [20].…”
Section: Introductionmentioning
confidence: 99%
“…These methods are increasingly being used thanks to the advancement in the development of ML hardware and technology. Until now, these ML bias correction techniques are mainly used for chemistry-transport model simulations of trace gases e.g., [19] or using in situ surface data for aerosols e.g., [20,21], or for post-processing forecasts e.g., [22,23].…”
Section: Introductionmentioning
confidence: 99%