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dc.creatorMéndez Garabetti, Miguel
dc.creatorBianchini, Germán
dc.creatorTardivo, María
dc.creatorCaymes Scutari, Paola
dc.creatorGil Costa, Verónica
dc.date.accessioned2023-06-06T15:02:10Z
dc.date.available2023-06-06T15:02:10Z
dc.date.issued2017-04-01
dc.identifier.citationJournal of Computer Science & Technologyes_ES
dc.identifier.issn1666-6046
dc.identifier.urihttp://hdl.handle.net/20.500.12272/7956
dc.description.abstractFire behavior prediction can be a fundamental tool to reduce losses and damages in mergency situations. However, this process is often complex and affected by the existence of ncertainty. For this reason, from different areas of science, several methods and systems are developed and refined to reduce the effects of uncertainty In this paper we present the Hybrid Evolutionary-Statistical System with Island Model (HESS-IM). It is a hybrid uncertainty reduction method applied to forest fire spread prediction that combines the advantages of two evolutionary population metaheuristics: Evolutionary Algorithms and Differential Evolution. We evaluate the HESS-IM with three controlled fires scenarios, and we obtained favorable results compared to the previous methods in the literaturees_ES
dc.formatpdfes_ES
dc.language.isoenges_ES
dc.language.isoenges_ES
dc.rightsopenAccesses_ES
dc.rights.urihttp://creativecommons.org/publicdomain/zero/1.0/*
dc.rights.uriCC0 1.0 Universal*
dc.sourceJournal of Computer Science & Technology (JCS&T) 17(1), 12-19. (2017)es_ES
dc.subjectHybrid Metaheuristics, Differential Evolution, Evolutionary Algorithms, Fire Prediction, Uncertainty Reductiones_ES
dc.titleHybrid-Parallel Uncertainty Reduction Method Applied to Forest Fire Spread Predictiones_ES
dc.typeinfo:eu-repo/semantics/articlees_ES
dc.rights.holderFacultad Regional Mendoza. Universidad Tecnológica Nacionales_ES
dc.description.affiliationUniversidad Tecnológica Nacional. Facultad Regional Mendoza; Argentinaes_ES
dc.description.peerreviewedPeer Reviewedes_ES
dc.type.versionacceptedVersiones_ES
dc.rights.useAtribuciónes_ES


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