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dc.creatorSamardžić-Petrović, Mileva
dc.creatorKovačević, Miloš
dc.creatorBajat, Branislav
dc.creatorDragićević, Suzana
dc.date.accessioned2019-04-19T14:27:54Z
dc.date.available2019-04-19T14:27:54Z
dc.date.issued2017
dc.identifier.issn2220-9964
dc.identifier.urihttps://grafar.grf.bg.ac.rs/handle/123456789/865
dc.description.abstractThe representation of land use change (LUC) is often achieved by using data-driven methods that include machine learning (ML) techniques. The main objectives of this research study are to implement three ML techniques, Decision Trees (DT), Neural Networks (NN), and Support Vector Machines (SVM) for LUC modeling, in order to compare these three ML techniques and to find the appropriate data representation. The ML techniques are applied on the case study of LUC in three municipalities of the City of Belgrade, the Republic of Serbia, using historical geospatial data sets and considering nine land use classes. The ML models were built and assessed using two different time intervals. The information gain ranking technique and the recursive attribute elimination procedure were implemented to find the most informative attributes that were related to LUC in the study area. The results indicate that all three ML techniques can be used effectively for short-term forecasting of LUC, but the SVM achieved the highest agreement of predicted changes.en
dc.publisherMDPI AG
dc.relationinfo:eu-repo/grantAgreement/MESTD/Integrated and Interdisciplinary Research (IIR or III)/47014/RS//
dc.relationNatural Sciences and Engineering Research Council (NSERC) of Canada
dc.rightsopenAccess
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.sourceIsprs International Journal of Geo-Information
dc.subjectland use changeen
dc.subjectspatial modellingen
dc.subjectmachine learningen
dc.subjectneural networksen
dc.subjectDecision Treesen
dc.subjectSupport Vector Machinesen
dc.titleMachine Learning Techniques for Modelling Short Term Land-Use Changeen
dc.typearticle
dc.rights.licenseBY
dc.citation.issue12
dc.citation.other6(12): -
dc.citation.rankM22
dc.citation.volume6
dc.identifier.doi10.3390/ijgi6120387
dc.identifier.fulltexthttps://grafar.grf.bg.ac.rs//bitstream/id/4240/863.pdf
dc.identifier.scopus2-s2.0-85044600950
dc.identifier.wos000419217200009
dc.type.versionpublishedVersion


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