DocumentCode
76349
Title
Inversion of Chromophoric Dissolved Organic Matter From EO-1 Hyperion Imagery for Turbid Estuarine and Coastal Waters
Author
Weining Zhu ; Qian Yu
Author_Institution
Dept. of Geosci., Univ. of Massachusetts-Amherst, Amherst, MA, USA
Volume
51
Issue
6
fYear
2013
fDate
Jun-13
Firstpage
3286
Lastpage
3298
Abstract
The significant implication of chromophoric dissolved organic matter (CDOM) for water quality and biogeochemical cycle leads to an increasing need of CDOM monitoring in coastal regions. Current ocean-color algorithms are mostly limited to open-sea water and have high uncertainty when directly applied to turbid coastal waters. This paper presents a semianalytical algorithm, quasi-analytical CDOM algorithm (QAA-CDOM), to invert CDOM absorption from Earth Observing-1 (EO-1) Hyperion satellite images. This algorithm was developed from a widely used ocean-color algorithm QAA and our earlier extension of QAA. The main goal is to improve the algorithm performance for a wide range of water conditions, particularly turbid waters in estuarine and coastal regions. The algorithm development, calibration, and validation were based on our intensive high-resolution underwater measurements, International Ocean Color Coordinating Group synthetic data, and global National Aeronautics and Space Administration Bio-Optical Marine Algorithm Data Set data. The result shows that retrieved CDOM absorption achieved accuracy (root mean square error (RMSE) = 0.115 m-1 and R2 = 0.73) in the Atchafalaya River plume area. QAA-CDOM is also evaluated for scenarios in three additional study sites, namely, the Mississippi River, Amazon River, and Moreton Bay, where ag(440) was in the wide range of 0.01-15 m-1. It resulted in expected CDOM distribution patterns along the river salinity gradient. This study improves the high-resolution observation of CDOM dynamics in river-dominated coastal margins and other coastal environments for the study of land-ocean interactive processes.
Keywords
geophysical image processing; geophysics computing; hyperspectral imaging; inverse problems; ocean composition; oceanographic regions; oceanographic techniques; organic compounds; remote sensing; turbidity; underwater optics; Amazon River; Atchafalaya River plume area; CDOM absorption inversion; CDOM inversion; EO-1 Hyperion imagery; Earth Observing-1 Hyperion satellite; International Ocean Color Coordinating Group synthetic data; Mississippi River; Moreton Bay; QAA-CDOM; Quasianalytical CDOM Algorithm; algorithm calibration; algorithm development; algorithm performance; algorithm validation; biogeochemical cycle; chromophoric dissolved organic matter; coastal region CDOM monitoring; global NASA Bio-Optical Marine Algorithm Data Set data; high resolution underwater measurements; land-ocean interactive processes; ocean color algorithms; semianalytical algorithm; turbid coastal waters; turbid estuarine waters; turbid waters; water conditions; water quality; Absorption; Algorithm design and analysis; Atmospheric modeling; Oceans; Remote sensing; Rivers; Sea measurements; Chromophoric dissolved organic matter (CDOM); EO-1 Hyperion; ocean color; quasi-analytical algorithm (QAA);
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/TGRS.2012.2224117
Filename
6361477
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