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
Link To Document :
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