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dc.creatorAlamaniotis, M.en
dc.creatorIkonomopoulos, A.en
dc.creatorAlamaniotis, A.en
dc.creatorBargiotas, D.en
dc.creatorTsoukalas, L. H.en
dc.date.accessioned2015-11-23T10:21:55Z
dc.date.available2015-11-23T10:21:55Z
dc.date.issued2012
dc.identifier10.1049/cp.2012.2023
dc.identifier.isbn9781849197151
dc.identifier.urihttp://hdl.handle.net/11615/25429
dc.description.abstractIn deregulated, auction-based, electricity markets price forecasting is an essential participant tool for developing bidding strategies. In this paper, a day-ahead intelligent forecasting method for electricity prices is presented. The proposed approach is comprised of two steps. In the first step, a set of two relevance vector machines (RVM) is employed where each one provides next day predictions for the price evolution. In the second step, a multiple regression model comprised of the two relevance vector machines is built and the regression coefficients are computed using genetic based optimization. The performance of the proposed approach is tested on a set of electricity price hourly data from four different seasons and compared to those obtained by each of the relevance vector machines. The results clearly demonstrate, in terms of mean square error, the superiority of the proposed method over each individual RVM.en
dc.source.urihttp://www.scopus.com/inward/record.url?eid=2-s2.0-84879613042&partnerID=40&md5=b792625f6f512a32d1b7f2f50faf9e6a
dc.subjectElectricity price forecastingen
dc.subjectMultiple-regressionen
dc.subjectRelevance vector machinesen
dc.subjectElectricity marketen
dc.subjectElectricity pricesen
dc.subjectIntelligent forecastingen
dc.subjectMultiple regression modelen
dc.subjectRegression coefficienten
dc.subjectRelevance Vector Machineen
dc.subjectCostsen
dc.subjectElectric load forecastingen
dc.subjectElectric power generationen
dc.subjectEnergy conversionen
dc.subjectOptimizationen
dc.subjectRegression analysisen
dc.titleDay-ahead electricity price forecasting using optimized multiple-regression of relevance vector machinesen
dc.typeconferenceItemen


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