Please use this identifier to cite or link to this item: http://hdl.handle.net/1893/34107
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dc.contributor.authorSimis, Stefanen_UK
dc.contributor.authorHunter, Peteren_UK
dc.contributor.authorMatthews, Marken_UK
dc.contributor.authorSpyrakos, Evangelosen_UK
dc.contributor.authorTyler, Andrewen_UK
dc.contributor.authorVaiciute, Dianaen_UK
dc.date.accessioned2022-04-02T00:14:03Z-
dc.date.available2022-04-02T00:14:03Z-
dc.date.issued2022-03-14en_UK
dc.identifier.urihttp://hdl.handle.net/1893/34107-
dc.description.abstractEstimating the concentration of water constituents by optical remote sensing assumes absorption and scattering processes to be uniform over the observation depth. Using hyperspectral reflectance, we present a method to direct the retrieval of the backscattering coefficient (bb(λ)) from reflectance (> 600 nm) towards wavebands where absorption by water dominates the reflectance curve. Two experiments demonstrate the impact of hyperspectral inversion in the selected band set. First, optical simulations show that the resulting distribution of bb(λ) is sensitive to particle mixing conditions, although a robust indicator of non-uniformity was not found for all scenarios of stratification. Second, in the absence of spectral backscattering profiles from in situ data sets, it is shown how substituting the median of bb(λ) into a near infra-red / red band ratio algorithm improved chlorophyll-a estimates (root mean square error 75.45 mg m−3 became 44.13 mg m−3). This approach also allows propagation of the uncertainty in bb estimates to water constituent concentrations.en_UK
dc.language.isoenen_UK
dc.publisherOptica Publishing Groupen_UK
dc.relationSimis S, Hunter P, Matthews M, Spyrakos E, Tyler A & Vaiciute D (2022) Improved hyperspectral inversion of aquatic reflectance under non-uniform vertical mixing. Optics Express, 30 (6), pp. 9655-9673. https://doi.org/10.1364/oe.450374en_UK
dc.rightsPublished by Optica Publishing Group under the terms of the Creative Commons Attribution 4.0 License (https://creativecommons.org/licenses/by/4.0/). Further distribution of this work must maintain attribution to the author(s) and the published article’s title, journal citation, and DOI.en_UK
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/en_UK
dc.subjectAtomic and Molecular Physics, and Opticsen_UK
dc.titleImproved hyperspectral inversion of aquatic reflectance under non-uniform vertical mixingen_UK
dc.typeJournal Articleen_UK
dc.identifier.doi10.1364/oe.450374en_UK
dc.identifier.pmid35299387en_UK
dc.citation.jtitleOptics Expressen_UK
dc.citation.issn1094-4087en_UK
dc.citation.volume30en_UK
dc.citation.issue6en_UK
dc.citation.spage9655en_UK
dc.citation.epage9673en_UK
dc.citation.publicationstatusPublisheden_UK
dc.citation.peerreviewedRefereeden_UK
dc.type.statusVoR - Version of Recorden_UK
dc.contributor.funderEuropean Commission (Horizon 2020)en_UK
dc.contributor.funderNERC Natural Environment Research Councilen_UK
dc.contributor.funderNERC Natural Environment Research Councilen_UK
dc.citation.date09/03/2022en_UK
dc.contributor.affiliationBiological and Environmental Sciencesen_UK
dc.contributor.affiliationBiological and Environmental Sciencesen_UK
dc.contributor.affiliationCyanoLakes (Pty) Ltden_UK
dc.contributor.affiliationBiological and Environmental Sciencesen_UK
dc.contributor.affiliationBiological and Environmental Sciencesen_UK
dc.contributor.affiliationKlaipeda Universityen_UK
dc.identifier.isiWOS:000768611900112en_UK
dc.identifier.scopusid2-s2.0-85126334189en_UK
dc.identifier.wtid1801671en_UK
dc.contributor.orcid0000-0001-7269-795Xen_UK
dc.contributor.orcid0000-0003-0604-5827en_UK
dc.date.accepted2022-03-02en_UK
dcterms.dateAccepted2022-03-02en_UK
dc.date.filedepositdate2022-04-01en_UK
dc.relation.funderprojectGlobal Observatory of Lake responses to Environmental change (Globolakes)en_UK
dc.relation.funderprojectInternational cooperation in the context of Sentinel-3 Ocean and Land Colour Imager (OLCI) validation studies over lakeen_UK
dc.relation.funderprojectMultiscale Observation Networks for Optical Monitoring of Coastal Waters, Lakes and Estuariesen_UK
dc.relation.funderrefNE/J024279/1en_UK
dc.relation.funderrefNE/l013312/1en_UK
dc.relation.funderref776480en_UK
rioxxterms.apcnot requireden_UK
rioxxterms.typeJournal Article/Reviewen_UK
rioxxterms.versionVoRen_UK
local.rioxx.authorSimis, Stefan|en_UK
local.rioxx.authorHunter, Peter|0000-0001-7269-795Xen_UK
local.rioxx.authorMatthews, Mark|en_UK
local.rioxx.authorSpyrakos, Evangelos|en_UK
local.rioxx.authorTyler, Andrew|0000-0003-0604-5827en_UK
local.rioxx.authorVaiciute, Diana|en_UK
local.rioxx.projectNE/J024279/1|Natural Environment Research Council|http://dx.doi.org/10.13039/501100000270en_UK
local.rioxx.projectNE/l013312/1|Natural Environment Research Council|http://dx.doi.org/10.13039/501100000270en_UK
local.rioxx.project776480|European Commission (Horizon 2020)|en_UK
local.rioxx.freetoreaddate2022-04-01en_UK
local.rioxx.licencehttp://creativecommons.org/licenses/by/4.0/|2022-04-01|en_UK
local.rioxx.filenameoe-30-6-9655.pdfen_UK
local.rioxx.filecount1en_UK
local.rioxx.source1094-4087en_UK
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