Data mining and wind power prediction: A literature review

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dc.contributor.author Colak, Ilhami
dc.contributor.author Sagiroglu, Seref
dc.contributor.author Yeşilbudak, Mehmet
dc.date.accessioned 2021-08-24T06:30:22Z
dc.date.available 2021-08-24T06:30:22Z
dc.date.issued 2012
dc.identifier.uri http://hdl.handle.net/20.500.11787/4171
dc.description.abstract Wind power generated by wind turbines has a non-schedulable nature due to the stochastic nature of meteorological conditions. Hence, wind power predictions are required for few seconds to one week ahead in turbine control, load tracking, pre-load sharing, power system management and energy trading. In order to overcome problems in the predictions, many different wind power prediction models have been used to achieve in the literature. Data mining and its applications have more attention in recent years. This paper presents a review study banned on very short-term, short-term, medium-term and long-term wind power predictions. The studies available in the literature have been evaluated and criticized in consideration with their prediction accuracies and deficiencies. It is shown that adaptive neuro-fuzzy inference systems, neural networks and multilayer perceptrons give better results in wind power predictions. tr_TR
dc.language.iso eng tr_TR
dc.relation.isversionof 10.1016/j.renene.2012.02.015 tr_TR
dc.rights info:eu-repo/semantics/openAccess tr_TR
dc.subject Data mining tr_TR
dc.subject Data mining techniques tr_TR
dc.subject Wind power prediction tr_TR
dc.subject Prediction time scales and models tr_TR
dc.subject Literature evaluation tr_TR
dc.title Data mining and wind power prediction: A literature review tr_TR
dc.type article tr_TR
dc.relation.journal Renewable Energy tr_TR
dc.contributor.department Nevşehir Hacı Bektaş Veli Üniversitesi/mühendislik-mimarlık fakültesi/elektrik-elektronik mühendisliği bölümü/kontrol ve kumanda sistemleri anabilim dalı tr_TR
dc.contributor.authorID 10392 tr_TR
dc.contributor.authorID 10169 tr_TR
dc.contributor.authorID 52131 tr_TR
dc.identifier.volume 46 tr_TR
dc.identifier.startpage 241 tr_TR
dc.identifier.endpage 247 tr_TR


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