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dc.contributor.authorMartínez-Estudillo, Francisco Josées_ES
dc.contributor.authorHervás-Martínez, Césares_ES
dc.contributor.authorGarcía-Pedrajas, Nicoláses_ES
dc.date.accessioned2010-12-28T11:49:05Z
dc.date.available2010-12-28T11:49:05Z
dc.date.issued2006
dc.identifier.issn1083-4419
dc.identifier.urihttp://hdl.handle.net/10396/3946
dc.description.abstractThis paper presents a hybrid evolutionary algorithm (EA) to solve nonlinear-regression problems. Although EAs have proven their ability to explore large search spaces, they are comparatively inefficient in fine tuning the solution. This drawback is usually avoided by means of local optimization algorithms that are applied to the individuals of the population. The algorithms that use local optimization procedures are usually called hybrid algorithms. On the other hand, it is well known that the clustering process enables the creation of groups (clusters) with mutually close points that hopefully correspond to relevant regions of attraction. Local-search procedures can then be started once in every such region. This paper proposes the combination of an EA, a clustering process, and a local-search procedure to the evolutionary design of product-units neural networks. In the methodology presented, only a few individuals are subject to local optimization. Moreover, the local optimization algorithm is only applied at specific stages of the evolutionary process. Our results show a favorable performance when the regression method proposed is compared to other standard methods.en
dc.format.mimetypeapplication/pdfes_ES
dc.language.isoenges_ES
dc.publisherIEEEen
dc.rightshttps://creativecommons.org/licenses/by-nc-nd/4.0/es_ES
dc.sourceIeee Transactions on Systems Man and Cybernetics Part B-Cybernetics 36 (3), 534-545 (2006)es_ES
dc.subjectRecurrent Neural-Networksen
dc.subjectHybridizationen
dc.subjectGlobal Optimization Methodsen
dc.subjectGenetic Algorithmsen
dc.subjectEvolutionary Algorithms (Eas)en
dc.subjectClusteringen
dc.titleHybridization of evolutionary algorithms and local search by means of a clustering methoden
dc.typeinfo:eu-repo/semantics/articlees_ES
dc.rights.accessRightsinfo:eu-repo/semantics/openAccesses_ES


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