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Robust Algorithm for Estimating Total Suspended Solids (TSS) in Inland and Nearshore Coastal WatersOne of the challenging tasks in modern aquatic remote sensing is the retrieval of near-surface concentrations of Total Suspended Solids (TSS). This study aims to present a Statistical, inherent Optical property (IOP) -based, and muLti-conditional Inversion proceDure (SOLID) for enhanced retrievals of satellite-derived TSS under a wide range of in-water bio-optical conditions in rivers, lakes, estuaries, and coastal waters. In this study, using a large in situ database (N > 3500), the SOLID model is devised using a three-step procedure: (a) water-type classification of the input remote sensing reflectance (R(sub rs)), (b) retrieval of particulate backscattering (b(sub bp)) in the red or near-infrared (NIR) regions using semi-analytical, machine-learning, and empirical models, and (c) estimation of TSS from b(sub bp) via water-type-specific empirical models. Using an independent subset of our in situ data (N = 2729) with TSS ranging from 0.1 to 2626.8 [g/m (exp 3)], the SOLID model is thoroughly examined and compared against several state-of-the-art algorithms (Miller and McKee, 2004; Nechad et al., 2010; Novoa et al., 2017; Ondrusek et al., 2012; Petus et al., 2010). We show that SOLID outperforms all the other models to varying degrees, i.e., from 10 to > 100%, depending on the statistical attributes (e.g., global versus water-type-specific metrics). For demonstration purposes, the model is implemented for images acquired by the MultiSpectral Imager aboard Sentinel-2A/B over the Chesapeake Bay, San-Francisco-Bay-Delta Estuary, Lake Okeechobee, and Lake Taihu. To enable generating consistent, multimission TSS products, its performance is further extended to, and evaluated for, other missions, such as the Ocean and Land Color Instrument (OLCI), Moderate Resolution Imaging Spectroradiometer (MODIS), Visible Infrared Imaging Radiometer Suite (VIIRS), and Operational Land Imager (OLI). Sensitivity analyses on uncertainties induced by the atmospheric correction indicate that 10% uncertainty in Rrs leads to < 20% uncertainty in TSS retrievals from SOLID. While this study suggests that SOLID has a potential for producing TSS products in global coastal and inland waters, our statistical analysis certainly verifies that there is still a need for improving retrievals across a wide spectrum of particle loads.
Document ID
20205002804
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Sundarabalan V Balasubramanian
(University of Maryland, College Park College Park, Maryland, United States)
Nima Pahlevan ORCID
(Science Systems and Applications (United States) Lanham, Maryland, United States)
Brandon Smith
(Science Systems and Applications (United States) Lanham, Maryland, United States)
Caren Binding
(Environment Canada Gatineau, Quebec, Canada)
John Schalles ORCID
(Creighton University Omaha, Nebraska, United States)
Hubert Loisel ORCID
(University of the Littoral Opal Coast Dunkirk, France)
Daniela Gurlin ORCID
(Wisconsin Department of Natural Resources Madison, Wisconsin, United States)
Steven Greb
(University of Wisconsin–Madison Madison, Wisconsin, United States)
Krista Alikas ORCID
(Tartu Observatory Tartu, Estonia)
Mirjam Randla
(Tartu Observatory Tartu, Estonia)
Matsushita Bunkei
(University of Tsukuba Tsukuba, Ibaraki, Japan)
Wesley Moses ORCID
(United States Naval Research Laboratory Washington D.C., District of Columbia, United States)
Ha Nguyen
(VNU University of Science Hanoi, Vietnam)
Moritz K Lehmann ORCID
(University of Waikato Hamilton, New Zealand)
David O'Donnell
(Upstate Freshwater Institute Syracuse, New York, United States)
Michael Ondrusek ORCID
(Center for Satellite Applications and Research College Park, Maryland, United States)
Tai-Hyun Han
(Korea Institute of Ocean Science and Technology Ansan-si, South Korea)
Cedric G Fichot ORCID
(Boston University Boston, Massachusetts, United States)
Tim Moore
(University of New Hampshire Durham, New Hampshire, United States)
Emmanuel Boss ORCID
(University of Maine)
Date Acquired
May 27, 2020
Publication Date
May 27, 2020
Publication Information
Publication: Remote Sensing of Environment
Publisher: Elsevier
Volume: 246
Issue Publication Date: September 1, 2020
ISSN: 0034-4257
Subject Category
Earth Resources And Remote Sensing
Funding Number(s)
CONTRACT_GRANT: 80HQTR19C0015
CONTRACT_GRANT: NNC16CA12C
CONTRACT_GRANT: 80GSFC20C0044
CONTRACT_GRANT: 80NSSC18K0077
CONTRACT_GRANT: USGS 140G0118C0011
CONTRACT_GRANT: ONR N000141612218
CONTRACT_GRANT: NOAA NA11SEC4810001
CONTRACT_GRANT: NSF 1832178
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
Keywords
Total suspended solids
Remote sensing reflectance
Backscattering
Coastal and inland waters
Inversion models
Inherent optical properties
Aquatic remote sensing
Sentinel-3
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