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Satellite retrieval of the linear polarization components of the water-leaving radiance in open oceans

Tianfeng Pan, Xianqiang He, Yan Bai, Teng Li, Fang Gong, Difeng Wang

Year
2023
Citations
5

Abstract

Atmospheric correction (AC) of polarized radiances acquired by polarization satellite sensors, remains a challenge due to the complex radiative transfer processes of the coupled ocean–atmosphere system. In this study, we proposed an innovative polarized AC algorithm built on the near-infrared band (PACNIR) with an emphasis on the retrieval of the linear polarization components of the water-leaving radiance in clear open oceans. This algorithm was based on the black ocean assumption in the near-infrared band and fitted polarized radiance measurements along multiple observation directions with nonlinear optimized processing. Our retrieval algorithm notably inverted the linearly polarized components of the water-leaving radiance and aerosol parameters. Compared with that of the simulated linear polarization components of the water-leaving radiance via the vector radiative transfer model for the studied sea regions, the mean absolute error of the PACNIR-retrieved linearly polarized components ( nQw and nUw ) exhibited a magnitude of 10 −4 , while the magnitude of that of the simulated nQw and nUw data was 10 −3 . Moreover, the PACNIR-retrieved aerosol optical thicknesses at 865 nm exhibited a mean absolute percentage error of approximately 30% relative to in situ values obtained from Aerosol Robotic Network-Ocean Color (AERONET-OC) sites. The PACNIR algorithm could facilitate AC of the polarized data provided by the next generation of multiangle polarization satellite ocean color sensors.

Keywords

RadianceRadiative transferRemote sensingOcean colorPolarization (electrochemistry)Atmospheric radiative transfer codesAERONETEnvironmental scienceAtmospheric correctionLinear polarization

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