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dc.creatorDragović, Snežana D.
dc.creatorOnjia, Antonije
dc.creatorDragović, Ranko M.
dc.creatorBacić, Goran
dc.date.accessioned2021-03-10T10:43:34Z
dc.date.available2021-03-10T10:43:34Z
dc.date.issued2007
dc.identifier.issn0167-6369
dc.identifier.urihttp://TechnoRep.tmf.bg.ac.rs/handle/123456789/1095
dc.description.abstractMosses and lichens have an important role in biomonitoring. The objective of this study is to develop a neural network model to classify these plants according to geographical origin. A three-layer feed-forward neural network was used. The activities of radionuclides (Ra-226, U-238, U-235, K-40, Th-232, Cs-134, Cs-137 and Be-7) detected in plant samples by gamma-ray spectrometry were used as inputs for neural network. Five different training algorithms with different number of samples in training sets were tested and compared, in order to find the one with the minimum root mean square error. The best predictive power for the classification of plants from 12 regions was achieved using a network with 5 hidden layer nodes and 3,000 training epochs, using the online back-propagation randomized training algorithm. Implementation of this model to experimental data resulted in satisfactory classification of moss and lichen samples in terms of their geographical origin. The average classification rate obtained in this study was (90.7 +/- 4.8)%.en
dc.publisherSpringer, Dordrecht
dc.relationinfo:eu-repo/grantAgreement/MESTD/MPN2006-2010/142039/RS//
dc.rightsrestrictedAccess
dc.sourceEnvironmental Monitoring and Assessment
dc.subjectbiomonitoringen
dc.subjectfeed-forward neural networken
dc.subjectgeographical originen
dc.subjectlichensen
dc.subjectmossesen
dc.subjectradionuclidesen
dc.titleImplementation of neural networks for classification of moss and lichen samples on the basis of gamma-ray spectrometric analysisen
dc.typearticle
dc.rights.licenseARR
dc.citation.epage253
dc.citation.issue1-3
dc.citation.other130(1-3): 245-253
dc.citation.rankM23
dc.citation.spage245
dc.citation.volume130
dc.identifier.doi10.1007/s10661-006-9393-4
dc.identifier.pmid17057958
dc.identifier.scopus2-s2.0-34249878734
dc.identifier.wos000246732600022
dc.type.versionpublishedVersion


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