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1. A Multi-Modal Deep-Learning Air Quality Prediction Method Based on Multi-Station Time-Series Data and Remote-Sensing Images: Case Study of Beijing and Tianjin.

2. AOD Derivation from SDGSAT-1/GLI Dataset in Mega-City Area.

3. Variational Bayesian Network with Information Interpretability Filtering for Air Quality Forecasting.

4. Study on Improving the Air Quality with Emission Enhanced Control Measures in Beijing during a National Parade Event.

5. Variation of Aerosol Optical Depth Measured by Sun Photometer at a Rural Site near Beijing during the 2017–2019 Period.

6. Can the Coal-to-Gas/Electricity Policy Improve Air Quality in the Beijing–Tianjin–Hebei Region?—Empirical Analysis Based on the PSM-DID.

7. Retrieval of High-Resolution Aerosol Optical Depth for Urban Air Pollution Monitoring.

8. A Variational Bayesian Deep Network with Data Self-Screening Layer for Massive Time-Series Data Forecasting.

9. The Impact of "Coal to Gas" Policy on Air Quality: Evidence from Beijing, China.

10. Seasonal Disparity in the Effect of Meteorological Conditions on Air Quality in China Based on Artificial Intelligence.

11. A Novel Recursive Model Based on a Convolutional Long Short-Term Memory Neural Network for Air Pollution Prediction.

12. Characteristics and Source Apportionment of PM 2.5 and O 3 during Winter of 2013 and 2018 in Beijing.