Remote Sensing of Water Quality Parameters over Lake Balaton by Using Sentinel-3 OLCI
The Ocean and Land Color Instrument (OLCI) onboard Sentinel 3A satellite was launched in February 2016. Level 2 (L2) products have been available for the public since July 2017. OLCI provides the possibility to monitor aquatic environments on 300 m spatial resolution on 9 spectral bands, which allow...
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doaj-fa000113e60141fbaba5919d130829252020-11-25T01:27:06ZengMDPI AGWater2073-44412018-10-011010142810.3390/w10101428w10101428Remote Sensing of Water Quality Parameters over Lake Balaton by Using Sentinel-3 OLCIKatalin Blix0Károly Pálffy1Viktor R. Tóth2Torbjørn Eltoft3Department of Physics and Technology, UiT the Arctic University of Norway, P.O. Box 6050 Langnes, NO-9037 Tromsø, NorwayBalaton Limnological Institute, Hungarian Academy of Science, Centre for Ecological Research, Klebelsberg K. street 3, 8237 Tihany, HungaryBalaton Limnological Institute, Hungarian Academy of Science, Centre for Ecological Research, Klebelsberg K. street 3, 8237 Tihany, HungaryDepartment of Physics and Technology, UiT the Arctic University of Norway, P.O. Box 6050 Langnes, NO-9037 Tromsø, NorwayThe Ocean and Land Color Instrument (OLCI) onboard Sentinel 3A satellite was launched in February 2016. Level 2 (L2) products have been available for the public since July 2017. OLCI provides the possibility to monitor aquatic environments on 300 m spatial resolution on 9 spectral bands, which allows to retrieve detailed information about the water quality of various type of waters. It has only been a short time since L2 data became accessible, therefore validation of these products from different aquatic environments are required. In this work we study the possibility to use S3 OLCI L2 products to monitor an optically highly complex shallow lake. We test S3 OLCI-derived Chlorophyll-a (Chl-a), Colored Dissolved Organic Matter (CDOM) and Total Suspended Matter (TSM) for complex waters against in situ measurements over Lake Balaton in 2017. In addition, we tested the machine learning Gaussian process regression model, trained locally as a potential candidate to retrieve water quality parameters. We applied the automatic model selection algorithm to select the combination and number of spectral bands for the given water quality parameter to train the Gaussian Process Regression model. Lake Balaton represents different types of aquatic environments (eutrophic, mesotrophic and oligotrophic), hence being able to establish a model to monitor water quality by using S3 OLCI products might allow the generalization of the methodology.http://www.mdpi.com/2073-4441/10/10/1428shallow lakeChl-aCDOMTSMGaussian process regressionautomatic model selection algorithm |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Katalin Blix Károly Pálffy Viktor R. Tóth Torbjørn Eltoft |
spellingShingle |
Katalin Blix Károly Pálffy Viktor R. Tóth Torbjørn Eltoft Remote Sensing of Water Quality Parameters over Lake Balaton by Using Sentinel-3 OLCI Water shallow lake Chl-a CDOM TSM Gaussian process regression automatic model selection algorithm |
author_facet |
Katalin Blix Károly Pálffy Viktor R. Tóth Torbjørn Eltoft |
author_sort |
Katalin Blix |
title |
Remote Sensing of Water Quality Parameters over Lake Balaton by Using Sentinel-3 OLCI |
title_short |
Remote Sensing of Water Quality Parameters over Lake Balaton by Using Sentinel-3 OLCI |
title_full |
Remote Sensing of Water Quality Parameters over Lake Balaton by Using Sentinel-3 OLCI |
title_fullStr |
Remote Sensing of Water Quality Parameters over Lake Balaton by Using Sentinel-3 OLCI |
title_full_unstemmed |
Remote Sensing of Water Quality Parameters over Lake Balaton by Using Sentinel-3 OLCI |
title_sort |
remote sensing of water quality parameters over lake balaton by using sentinel-3 olci |
publisher |
MDPI AG |
series |
Water |
issn |
2073-4441 |
publishDate |
2018-10-01 |
description |
The Ocean and Land Color Instrument (OLCI) onboard Sentinel 3A satellite was launched in February 2016. Level 2 (L2) products have been available for the public since July 2017. OLCI provides the possibility to monitor aquatic environments on 300 m spatial resolution on 9 spectral bands, which allows to retrieve detailed information about the water quality of various type of waters. It has only been a short time since L2 data became accessible, therefore validation of these products from different aquatic environments are required. In this work we study the possibility to use S3 OLCI L2 products to monitor an optically highly complex shallow lake. We test S3 OLCI-derived Chlorophyll-a (Chl-a), Colored Dissolved Organic Matter (CDOM) and Total Suspended Matter (TSM) for complex waters against in situ measurements over Lake Balaton in 2017. In addition, we tested the machine learning Gaussian process regression model, trained locally as a potential candidate to retrieve water quality parameters. We applied the automatic model selection algorithm to select the combination and number of spectral bands for the given water quality parameter to train the Gaussian Process Regression model. Lake Balaton represents different types of aquatic environments (eutrophic, mesotrophic and oligotrophic), hence being able to establish a model to monitor water quality by using S3 OLCI products might allow the generalization of the methodology. |
topic |
shallow lake Chl-a CDOM TSM Gaussian process regression automatic model selection algorithm |
url |
http://www.mdpi.com/2073-4441/10/10/1428 |
work_keys_str_mv |
AT katalinblix remotesensingofwaterqualityparametersoverlakebalatonbyusingsentinel3olci AT karolypalffy remotesensingofwaterqualityparametersoverlakebalatonbyusingsentinel3olci AT viktorrtoth remotesensingofwaterqualityparametersoverlakebalatonbyusingsentinel3olci AT torbjørneltoft remotesensingofwaterqualityparametersoverlakebalatonbyusingsentinel3olci |
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