REMOTE SENSING OF ENVIRONMENT | 卷:200 |
Radiometric validation of atmospheric correction for MERIS in the Baltic Sea based on continuous observations from ships and AERONET-OC | |
Article | |
Qin, Ping1,2  Simis, Stefan G. H.1  Tilstone, Gavin H.1  | |
[1] Plymouth Marine Lab, Prospect Pl, Plymouth PL1 3DH, Devon, England | |
[2] Ocean Univ China, Coll Informat Sci & Engn, Qingdao 266100, Peoples R China | |
关键词: Atmospheric correction; Baltic Sea; Remote sensing reflectance; MERE; AERONET-OC; Shipborne radiometry; | |
DOI : 10.1016/j.rse.2017.08.024 | |
来源: Elsevier | |
【 摘 要 】
The Baltic Sea is a semi-enclosed sea that is optically dominated by coloured dissolved organic material (CDOM) and has relatively low sun elevation which makes accurate ocean colour remote sensing challenging in these waters. The high absorption, low scattering properties of the Baltic Sea are representative of other optically similar water bodies including the Arctic Ocean, Black Sea, coastal regions adjacent to the CDOM-rich estuaries such as the Amazon, and highly absorbing lakes where radiometric validation is essential in order to develop accurate remote sensing algorithms. Previous studies in this region mainly focused on the validation and improvement of standard Chlorophyll-a (Chl alpha) and attenuation coefficient (k(d)) ocean colour products. The primary input to derive these is the water-leaving radiance (L-w) or remote sensing reflectance (R-rs) and it is therefore fundamental to obtain the most accurate L-w or R-rs before deriving higher level products. To this end, the retrieval accuracy of R-rs from Medium Resolution Imaging Spectrometer (MERIS) imagery using six atmospheric correction processors was assessed through above-water measurements at two sites of the Aerosol Robotic Network for Ocean Colour (AERONET-OC; 363 measurements) and a shipbome autonomous platform from which the highest number of measurements were obtained (4986 measurements). The six processors tested were the CoastColour processor (CC), the Case 2 Regional processor for lakes (C2R-Lakes), the Case 2 Regional CoastColour processor (C2R-CC), the FUB/WeW water processor (FUB), the MERIS ground segment processor (MEGS) and POLYMER. All processors except for CC had small average absolute percentage differences (psi) in the wavelength range from 490 nm to 709 nm (psi < 40%), while other bands had larger differences with psi > 60%. Compared to in situ values, the R-rs(709)/R-rs(665) band ratio had psi < 30% for all processors. The most accurate R-rs in the 490 to 709 nm domain was obtained from POLYMER with psi < 30% and coefficients of determination (R-2) > 0.6. Using a score system based on all statistical tests, POLYMER scored highest, while C2R-CC, C2R-Lakes and FUB had lower scores. This study represents the largest data base of in situ R-rs the most comprehensive analysis of AC models for highly absorbing waters and for MERIS, conducted to date. The results have implications for the new generation of Copernicus Sentinel ocean colour satellites.
【 授权许可】
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