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Atmospheric correction of ocean color imagery over turbid coastal waters using active and passive remote sensing 被引量:1

Atmospheric correction of ocean color imagery over turbid coastal waters using active and passive remote sensing
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摘要 This paper demonstrates an atmospheric correction method to process MODIS/Aqua (Moderate-resolution Imaging Spectroradiometer) ocean color imagery over turbid coastal waters with the aid of concurrent CALIOP (Cloud-Aerosol LIdar with Orthogonal Polarization) aerosol data, assuming that there exists "nonturbid" water in the study area where MODIS aerosol optical properties can be retrieved accurately. Aerosol properties from CALIOP measurements were obtained and related to those from MODIS. This relationship, combined with CALIOP aerosol data, was extended to turbid water to derive MODIS aerosol properties, where atmospheric correction using MODIS data alone often fails. By combining MODIS and CALIOP data, aerosol signals were separated from the total signals at the satellite level, and water-leaving radiances in turbid waters were subsequently derived. This method was tested on several MODIS/Aqua ocean color images over South China turbid waters. Comparison with field data shows that this method was effective in reducing the errors in the retrieved water-leaving radiance values to some extent. In the Zhujiang (Pearl) River Estuary, this method did not overestimate the aerosol effects as severely, and provided far fewer negative water-leaving radiance values than the NASA (National Aeronautics and Space Administration) default methods that used MODIS data alone. This paper demonstrates an atmospheric correction method to process MODIS/Aqua (Moderate-resolution Imaging Spectroradiometer) ocean color imagery over turbid coastal waters with the aid of concurrent CALIOP (Cloud-Aerosol LIdar with Orthogonal Polarization) aerosol data, assuming that there exists "nonturbid" water in the study area where MODIS aerosol optical properties can be retrieved accurately. Aerosol properties from CALIOP measurements were obtained and related to those from MODIS. This relationship, combined with CALIOP aerosol data, was extended to turbid water to derive MODIS aerosol properties, where atmospheric correction using MODIS data alone often fails. By combining MODIS and CALIOP data, aerosol signals were separated from the total signals at the satellite level, and water-leaving radiances in turbid waters were subsequently derived. This method was tested on several MODIS/Aqua ocean color images over South China turbid waters. Comparison with field data shows that this method was effective in reducing the errors in the retrieved water-leaving radiance values to some extent. In the Zhujiang (Pearl) River Estuary, this method did not overestimate the aerosol effects as severely, and provided far fewer negative water-leaving radiance values than the NASA (National Aeronautics and Space Administration) default methods that used MODIS data alone.
出处 《Chinese Journal of Oceanology and Limnology》 SCIE CAS CSCD 2009年第1期124-128,共5页 中国海洋湖沼学报(英文版)
基金 Supported by the National Basic Research Program of China (973 Program, Nos. 2009CB723905, 2006CB701300) the National High Technology Research and Development Program of China (863 Program, No. 2007AA12Z161) the NSFC (Nos. 40676094, 40721001, 40706060) MOST, China (No. 2007BAC23B05) Open Fund of Nanchang University (No. Z03975) the Open Fund of Ocean University of China for visiting Ph. D students.
关键词 Ocean color remote sensing atmospheric correction turbid coastal waters CALIOP MODIS 沿海水域 海洋水色 大气校正 彩色图像 美国国家航空航天局 MODIS数据 被动遥感 中分辨率成像光谱仪
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