Framework for Regional to Global Extension of Optical Water Types for Remote Sensing of Optically Complex Transitional Water Bodies

Author:

Atwood Elizabeth C.1ORCID,Jackson Thomas12,Laurenson Angus1ORCID,Jönsson Bror F.13ORCID,Spyrakos Evangelos4ORCID,Jiang Dalin4,Sent Giulia5ORCID,Selmes Nick1,Simis Stefan1ORCID,Danne Olaf6,Tyler Andrew4,Groom Steve1

Affiliation:

1. Earth Observation Science and Applications, Plymouth Marine Laboratory, Plymouth PL1 3DH, UK

2. Climate Services Group, European Organisation for the Exploitation of Meteorological Satellites (EUMETSAT), 64295 Darmstadt, Germany

3. Ocean Process Analysis Lab, University of New Hampshire, Durham, NH 03824, USA

4. Earth and Planetary Observation Sciences (EPOS), Department of Biological and Environmental Sciences, University of Stirling, Stirling FK9 4LA, UK

5. MARE—Marine and Environmental Science Centre, ARNET—Aquatic Research Network, Faculdade de Ciências, Universidade de Lisboa, 1749-016 Lisbon, Portugal

6. Brockmann Consult GmbH, 21029 Hamburg, Germany

Abstract

Water quality indicator algorithms often separate marine and freshwater systems, introducing artificial boundaries and artifacts in the freshwater to ocean continuum. Building upon the Ocean Colour- (OC) and Lakes Climate Change Initiative (CCI) projects, we propose an improved tool to assess the interactions across river–sea transition zones. Fuzzy clustering methods are used to generate optical water types (OWT) representing spectrally distinct water reflectance classes, occurring within a given region and period (here 2016–2021), which are then utilized to assign membership values to every OWT class for each pixel and seamlessly blend optimal in-water algorithms across the region. This allows a more flexible representation of water provinces across transition zones than classic hard clustering techniques. Improvements deal with expanded sensor spectral band-sets, such as Sentinel-3 OLCI, and increased spatial resolution with Sentinel-2 MSI high-resolution data. Regional clustering was found to be necessary to capture site-specific characteristics, and a method was developed to compare and merge regional cluster sets into a pan-regional representative OWT set. Fuzzy clustering OWT timeseries data allow unique insights into optical regime changes within a lagoon, estuary, or delta system, and can be used as a basis to improve WQ algorithm performance.

Funder

European Commission

DOORS

Fundação para a Ciência e a Tecnologia

Publisher

MDPI AG

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