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Improvement of Aerosol Optical Depth Retrieval over Hong Kong from a Geostationary Meteorological Satellite Using Critical Reflectance with Background Optical Depth CorrectionDespite continuous efforts to retrieve aerosol optical depth (AOD) using a conventional 5-channelmeteorological imager in geostationary orbit, the accuracy in urban areas has been poorer than other areas primarily due to complex urban surface properties and mixed aerosol types from different emission sources. The two largest error sources in aerosol retrieval have been aerosol type selection and surface reflectance. In selecting the aerosol type from a single visible channel, the season-dependent aerosol optical properties were adopted from longterm measurements of Aerosol Robotic Network (AERONET) sun-photometers. With the aerosol optical properties obtained fromthe AERONET inversion data, look-up tableswere calculated by using a radiative transfer code: the Second Simulation of the Satellite Signal in the Solar Spectrum (6S). Surface reflectance was estimated using the clear sky composite method, awidely used technique for geostationary retrievals. Over East Asia, the AOD retrieved from the Meteorological Imager showed good agreement, although the values were affected by cloud contamination errors. However, the conventional retrieval of the AOD over Hong Kong was largely underestimated due to the lack of information on the aerosol type and surface properties. To detect spatial and temporal variation of aerosol type over the area, the critical reflectance method, a technique to retrieve single scattering albedo (SSA), was applied. Additionally, the background aerosol effect was corrected to improve the accuracy of the surface reflectance over Hong Kong. The AOD retrieved froma modified algorithmwas compared to the collocated data measured by AERONET in Hong Kong. The comparison showed that the new aerosol type selection using the critical reflectance and the corrected surface reflectance significantly improved the accuracy of AODs in Hong Kong areas,with a correlation coefficient increase from0.65 to 0.76 and a regression line change from τMI [basic algorithm] = 0.41τAERONET + 0.16 to τMI [new algorithm] = 0.70τAERONET + 0.01.
Document ID
20140005404
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Kim, Mijin
(Yonsei Univ. Seoul, Korea, Republic of)
Kim, Jhoon
(Yonsei Univ. Seoul, Korea, Republic of)
Wong, Man Sing
(Hong Kong Polytechnic Kowloon, Hong Kong)
Yoon, Jongmin
(Max-Planck-Inst. fuer Chemie Mainz, Germany)
Lee, Jaehwa
(Maryland Univ. College Park, MD, United States)
Wu, Dong L.
(NASA Goddard Space Flight Center Greenbelt, MD United States)
Chan, P.W.
(Hong Kong Observatory Kowloon, Hong Kong)
Nichol, Janet E.
(Hong Kong Polytechnic Kowloon, Hong Kong)
Chung, Chu-Yong
Ou, Mi-Lim
(Korea Meteorological Administration Seoul, Republic of Korea)
Date Acquired
May 9, 2014
Publication Date
February 1, 2014
Publication Information
Publication: Remote Sensing of Environment
Volume: 142
Subject Category
Earth Resources And Remote Sensing
Report/Patent Number
GSFC-E-DAA-TN13124
Report Number: GSFC-E-DAA-TN13124
Funding Number(s)
CONTRACT_GRANT: NNX12AD03A
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
aerosols
geostationary
critical reflectance
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