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- W4213321786 abstract "This paper investigates the possibility of high resolution mapping of PM2.5 concentration over Tehran city using high resolution satellite AOD (MAIAC) retrievals. For this purpose, a framework including three main stages, data preprocessing; regression modeling; and model deployment was proposed. The output of the framework was a machine learning model trained to predict PM2.5 from MAIAC AOD retrievals and meteorological data. The results of model testing revealed the efficiency and capability of the developed framework for high resolution mapping of PM2.5, which was not realized in former investigations performed over the city. Thus, this study, for the first time, realized daily, 1 km resolution mapping of PM2.5 in Tehran with R2 around 0.74 and RMSE better than 9.0 μgm3." @default.
- W4213321786 created "2022-02-24" @default.
- W4213321786 creator A5040600937 @default.
- W4213321786 date "2022-05-01" @default.
- W4213321786 modified "2023-10-18" @default.
- W4213321786 title "A machine learning-based framework for high resolution mapping of PM2.5 in Tehran, Iran, using MAIAC AOD data" @default.
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- W4213321786 doi "https://doi.org/10.1016/j.asr.2022.02.032" @default.
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