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Towards Global-Scale Seagrass Mapping and Monitoring Using Sentinel-2 on Google Earth Engine: The Case Study of the Aegean and Ionian Seas

Traganos, Dimosthenis and Aggarwal, Bharat and Poursanidis, Dimitris and Topouzelis, Konstantinos and Chrysoulakis, Nektarios and Reinartz, Peter (2018) Towards Global-Scale Seagrass Mapping and Monitoring Using Sentinel-2 on Google Earth Engine: The Case Study of the Aegean and Ionian Seas. Remote Sensing, 10, 1227/1-1227/14. Multidisciplinary Digital Publishing Institute (MDPI). doi: 10.3390/rs10081227. ISSN 2072-4292.

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Abstract

Seagrasses are traversing the epoch of intense anthropogenic impacts that significantly decrease their coverage and invaluable ecosystem services, necessitating accurate and adaptable, global-scale mapping and monitoring solutions. Here, we combine the cloud computing power of Google Earth Engine with the freely available Copernicus Sentinel-2 multispectral image archive, image composition, and machine learning approaches to develop a methodological workflow for large-scale, high spatiotemporal mapping and monitoring of seagrass habitats. The present workflow can be easily tuned to space, time and data input; here, we show its potential, mapping 2510.1 km² of P. oceanica seagrasses in an area of 40,951 km² between 0 and 40 m of depth in the Aegean and Ionian Seas (Greek territorial waters) after applying support vector machines to a composite of 1045 Sentinel-2 tiles at 10-m resolution. The overall accuracy of P. oceanica seagrass habitats features an overall accuracy of 72% following validation by an independent field data set to reduce bias. We envision that the introduced flexible, time- and cost-efficient cloud-based chain will provide the crucial seasonal to interannual baseline mapping and monitoring of seagrass ecosystems in global scale, resolving gain and loss trends and assisting coastal conservation, management planning, and ultimately climate change mitigation.

Item URL in elib:https://elib.dlr.de/121352/
Document Type:Article
Title:Towards Global-Scale Seagrass Mapping and Monitoring Using Sentinel-2 on Google Earth Engine: The Case Study of the Aegean and Ionian Seas
Authors:
AuthorsInstitution or Email of AuthorsAuthor's ORCID iDORCID Put Code
Traganos, DimosthenisDimosthenis.Traganos (at) dlr.deUNSPECIFIEDUNSPECIFIED
Aggarwal, BharatBharat.Aggarwal (at) dlr.deUNSPECIFIEDUNSPECIFIED
Poursanidis, DimitrisFoundation for Research and Technology—Hellas (FORTH), Institute of Applied and Computational Mathematics, Heraklion, GreeceUNSPECIFIEDUNSPECIFIED
Topouzelis, KonstantinosDepartment of Marine Sciences, University of the Aegean, University Hill, Mytilene, Lesvos Island, Greece, 81100UNSPECIFIEDUNSPECIFIED
Chrysoulakis, NektariosFoundation for Research and Technology - Hellas (FORTH), Heraklion, Crete, GreeceUNSPECIFIEDUNSPECIFIED
Reinartz, Peterpeter.reinartz (at) dlr.dehttps://orcid.org/0000-0002-8122-1475UNSPECIFIED
Date:5 August 2018
Journal or Publication Title:Remote Sensing
Refereed publication:Yes
Open Access:Yes
Gold Open Access:Yes
In SCOPUS:Yes
In ISI Web of Science:Yes
Volume:10
DOI:10.3390/rs10081227
Page Range:1227/1-1227/14
Publisher:Multidisciplinary Digital Publishing Institute (MDPI)
ISSN:2072-4292
Status:Published
Keywords:seagrass; habitat mapping; image composition; machine learning; support vector machines; Google Earth Engine; Sentinel-2; Aegean; Ionian; global scale
HGF - Research field:Aeronautics, Space and Transport
HGF - Program:Space
HGF - Program Themes:Earth Observation
DLR - Research area:Raumfahrt
DLR - Program:R EO - Earth Observation
DLR - Research theme (Project):R - Vorhaben hochauflösende Fernerkundungsverfahren (old)
Location: Berlin-Adlershof , Oberpfaffenhofen
Institutes and Institutions:Remote Sensing Technology Institute > Photogrammetry and Image Analysis
Deposited By: Zielske, Mandy
Deposited On:11 Sep 2018 13:57
Last Modified:02 Nov 2023 09:59

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