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dc.contributor.authorVelastegui Sandoval, Ronny Xavier
dc.contributor.authorPedersen, Marius
dc.date.accessioned2022-02-16T13:13:46Z
dc.date.available2022-02-16T13:13:46Z
dc.date.created2022-01-05T08:25:50Z
dc.date.issued2021
dc.identifier.citationLondon Imaging Meeting (LIM). 2021, 73-77.en_US
dc.identifier.issn2694-118X
dc.identifier.urihttps://hdl.handle.net/11250/2979398
dc.description.abstractIn this work four different machine learning approaches have been implemented to perform the color space transformation between CMYK and CIELAB color spaces. We have explored the performance of Support-Vector Regression (SVR), Artificial Neural Networks (ANN), Deep Neural Networks (DNN), and Radial Basis Function (RBF) models to achieve this color space transformation, both AToB and BToA direction. The data set used for this work was FOGRA53 which is composed of 1617 color samples represented both in CMYK and CIELAB color space values. The accuracy of the transformation models was measured in terms of ΔE* color difference. Moreover, the proposed models were compared, in practical terms, with the performance of the standard ICC profile for this color space transformation. The results showed that, for the forward transformation (CMYK to CIELAB), the highest accuracy was obtained using RBF. While, for the backward transformation (CIELAB to CMYK), the highest accuracy was obtained with DNN.en_US
dc.language.isoengen_US
dc.publisherSociety for Imaging Science and Technologyen_US
dc.rightsNavngivelse 4.0 Internasjonal*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/deed.no*
dc.titleCMYK-CIELAB Color Space Transformation Using Machine Learning Techniquesen_US
dc.typePeer revieweden_US
dc.typeJournal articleen_US
dc.description.versionpublishedVersionen_US
dc.source.pagenumber73-77en_US
dc.source.journalLondon Imaging Meeting (LIM)en_US
dc.identifier.doi10.2352/issn.2694-118X.2021.LIM-73
dc.identifier.cristin1974827
cristin.ispublishedtrue
cristin.fulltextoriginal
cristin.qualitycode1


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