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A Tuned Ocean Color Algorithm for the Arctic Ocean: A Solution for Waters With High CDM ContentThe Arctic Ocean (AO) is the most river-influenced ocean. Located at the land-sea interface wherein phytoplankton blooms are common, Arctic coastal waterbodies are among the most affected regions by climate change. Given phytoplankton are critical for energy transfer supporting marine food webs, accurate estimation of chlorophyll a concentration (Chl), which is frequently used as a proxy of phytoplankton biomass, is critical for improving our knowledge of the Arctic marine ecosystem and its response to the ongoing climate change. Due to the unique and complex bio-optical properties of the AO, efforts are still needed to obtain more accurate Chl estimates, especially for coastal waters with high colored detrital material (CDM) content. In this study, we optimized the the Garver-Siegel-Maritorena (GSM) algorithm, using an Arctic bio-optical dataset comprised of seven wavelengths (the original GSM wavelengths plus 625 nm). Results suggested that our tuned algorithm, denoted GSMA, outperformed an alternative AO GSM algorithm denoted AO.GSM, but the accuracy of Chl estimates was only improved by 8%. In addition, GSMA showed appreciable robustness when assessed using a satellite image and two non-Arctic coastal datasets.
Document ID
20230015768
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Juan LI ORCID
(Wuhan University Wuhan, China)
Atsushi Matsuoka
(University of New Hampshire Durham, New Hampshire, United States)
Stanford B. Hooker
(Goddard Space Flight Center Greenbelt, Maryland, United States)
Stéphane Maritorena
(University of California, Santa Barbara Santa Barbara, California, United States)
Xiaoping Pang ORCID
(Université Laval Québec, Quebec, Canada)
Marcel Babin
(Université Laval Québec, Quebec, Canada)
Date Acquired
November 1, 2023
Publication Date
October 31, 2023
Publication Information
Publication: Optics Express
Publisher: Optica Publishing Group
Volume: 31
Issue: 23
Issue Publication Date: November 6, 2023
e-ISSN: 1094-4087
Subject Category
Oceanography
Funding Number(s)
WBS: 388496
PROJECT: ROSES 1658689
CONTRACT_GRANT: JAXA 22RT000298
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
Keywords
Arctic
Algorithm
CDM
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