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Retrieval of Harmonized LAI Product of Agricultural Crops from Landsat OLI and Sentinel-2 MSI Time Series

dc.contributor.authorTomíček, Jiří
dc.contributor.authorMišurec, Jan
dc.contributor.authorLukeš, Petr
dc.contributor.authorPotůčková, Markéta
dc.date.accessioned2023-06-06T08:03:45Z
dc.date.available2023-06-06T08:03:45Z
dc.date.issued2022
dc.identifier.urihttps://hdl.handle.net/20.500.14178/1931
dc.description.abstractIn this study, an approach for the harmonized calculation of the Leaf Area Indices (LAIs) for agronomic crops from Sentinel-2 MSI and Landsat OLI multispectral satellite data is proposed in order to obtain a dense seasonal trajectory. It was developed and tested on dominant crops grown in the Czech Republic, including winter wheat, spring barley, winter rapeseed, alfalfa, sugar beet, and corn. The two-step procedure harmonizing Sentinel-2 MSI and Landsat OLI spectral data began with deriving NDVI, MSAVI, and NDWI_1610 vegetation indices (VIs) as proxy indicators of green biomass and foliage water content, the parameters contributing most to a stand's spectral response. Second, a simple linear transformation was applied to the resulting VI values. The regression model itself was built on an artificial neural network, then trained on PROSAIL simulations data. The LAI estimates were validated using an extensive dataset of in situ measurements collected during 2017 and 2018 in the lowlands of the Central Bohemia Region. Very strong agreement was observed between LAI estimates from both Sentinel-2 MSI and Landsat OLI data and independent ground-based measurements (r between 0.7 and 0.98). Very good results were also achieved in the mutual comparison of Sentinel-2 and Landsat-based LAI datasets (rRMSE < 20%, r between 0.75 and 0.99). Using data from all currently available Sentinel-2 (A/B) and Landsat (8/9) satellites, a dense harmonized LAI time series can be created with high potential for use in precision agriculture.en
dc.language.isoen
dc.relation.urlhttps://doi.org/10.3390/agriculture12122080
dc.rightsCreative Commons Uveďte původ 4.0 Internationalcs
dc.rightsCreative Commons Attribution 4.0 Internationalen
dc.titleRetrieval of Harmonized LAI Product of Agricultural Crops from Landsat OLI and Sentinel-2 MSI Time Seriesen
dcterms.accessRightsopenAccess
dcterms.licensehttps://creativecommons.org/licenses/by/4.0/legalcode
dc.date.updated2023-12-05T11:10:44Z
dc.subject.keywordSentinel-2en
dc.subject.keywordLandsaten
dc.subject.keywordleaf area indexen
dc.subject.keywordharmonizationen
dc.subject.keywordvegetation indexen
dc.subject.keywordPROSAILen
dc.subject.keywordradiative transferen
dc.subject.keywordartificial neural networken
dc.subject.keywordtime seriesen
dc.relation.fundingReferenceinfo:eu-repo/grantAgreement/UK/COOP/COOP
dc.date.embargoStartDate2023-12-05
dc.type.obd73
dc.type.versioninfo:eu-repo/semantics/publishedVersion
dc.identifier.doi10.3390/agriculture12122080
dc.identifier.utWos000900236700001
dc.identifier.eidScopus2-s2.0-85144735552
dc.identifier.obd623074
dc.identifier.rivRIV/00216208:11310/22:10455414
dc.subject.rivPrimary10000::10500::10508
dcterms.isPartOf.nameAgriculture (Switzerland)
dcterms.isPartOf.issn2077-0472
dcterms.isPartOf.journalYear2022
dcterms.isPartOf.journalVolume12
dcterms.isPartOf.journalIssue12
uk.faculty.primaryId115
uk.faculty.primaryNamePřírodovědecká fakultacs
uk.faculty.primaryNameFaculty of Scienceen
uk.department.primaryId1058
uk.department.primaryNameKatedra aplikované geoinformatiky a kartografiecs
uk.department.primaryNameDepartment of Applied Geoinformatics and Cartographyen
dc.type.obdHierarchyCsČLÁNEK V ČASOPISU::článek v časopisu::původní článekcs
dc.type.obdHierarchyEnJOURNAL ARTICLE::journal article::original articleen
dc.type.obdHierarchyCode73::152::206en
uk.displayTitleRetrieval of Harmonized LAI Product of Agricultural Crops from Landsat OLI and Sentinel-2 MSI Time Seriesen


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