研究目的
To improve the AODf retrieval accuracy from multi-angle and polarized satellite measurements over East China, particularly on high aerosol loading days, by proposing a new optimal aerosol model determination method (GRES) using the traditional LUT approach.
研究成果
The GRES method significantly improves AODf retrieval accuracy over East China, especially on high aerosol loading days, with high correlation and lower errors compared to the PARASOL operational product. It also shows good expandability for total AOD retrieval. Future work should address non-spherical aerosols and improve cloud detection.
研究不足
The study does not consider non-spherical aerosol models, which could lead to uncertainties. The cloud mask in PARASOL data may be over-detected, affecting retrieval in some areas. The method is empirical and may require adjustments for different wavelengths or regions.
1:Experimental Design and Method Selection:
The study uses the traditional LUT approach with the GRES method for optimal aerosol model determination. The Second Simulation of a Satellite Signal in the Solar Spectrum, Vector version (6SV) radiative transfer code (version
2:1) is employed to construct LUTs. The Nadal and Bréon BPDF model is used for surface polarized reflectance estimation. Sample Selection and Data Sources:
PARASOL Level 1 data from 2011-2013 over East China are used. AERONET ground-based data from Beijing, Xianghe, Taihu, and Hong_Kong_PolyU sites are used for validation.
3:List of Experimental Equipment and Materials:
PARASOL satellite instrument, 6SV code, IDL programming language, AERONET sun-sky radiometers.
4:Experimental Procedures and Operational Workflow:
Data preprocessing includes cloud masking, NDVI calculation, and polarized reflectance computation. The GRES method involves calculating residual errors, sorting, grouping, and determining optimal aerosol models.
5:Data Analysis Methods:
Statistical analysis using correlation coefficient (r), RMSE, MAE, and expected error (EE) for validation against AERONET data.
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