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Load forecasting, the importance of the probability “tails” in the definition of the input vector

dc.contributor.authorSantos, P. J.
dc.contributor.authorRafael, Silviano
dc.contributor.authorPires, A. J.
dc.date.accessioned2013-11-13T15:38:43Z
dc.date.available2013-11-13T15:38:43Z
dc.date.issued2013-05
dc.description.abstractThe load forecast is part of the global management of the electrical networks, namely at the transport and distribution levels. This type of methodologies allows to the system operator, to establish and take some important decisions concerning to the mix production and network management, with the minimum of discretionarity. The load forecast in particularly the peak load forecast, represents an important economic improvement in the global electrical systems. Also in certain circumstances, allow reducing the contribution of the non-renewable units, in the daily mixing production. The regressive methodologies specially the artificial neural networks, are normally used in this type of approaches, with satisfactory results. In this paper is proposed a careful analysis in order to define the best-input vector in order to feed the regressive methodology. It was establish careful analyses of the load consumption series. It makes use of a procedural sequence for the pre-processing phase that allows capturing certain predominant relations among certain different sets of available data, providing a more solid basis to decisions regarding the composition of the input vector to ANN. The methodological approach is discussed and a real life case study is used for illustrating the defined steps, the ANN and the quality level of the results.por
dc.identifier.issn2155-5516
dc.identifier.urihttp://hdl.handle.net/10400.26/4884
dc.language.isoengpor
dc.peerreviewedyespor
dc.publisherIEEEpor
dc.relation.publisherversion10.1109/PowerEng.2013.6635685por
dc.subjectTransport and distribution electrical networkpor
dc.subjectLoad forecastingpor
dc.subjectSmart-Gridspor
dc.subjectInput vectorpor
dc.subjectRegressive methodspor
dc.subjectLoad behaviourpor
dc.titleLoad forecasting, the importance of the probability “tails” in the definition of the input vectorpor
dc.typeconference object
dspace.entity.typePublication
oaire.citation.conferencePlaceIstanbul, Turkeypor
oaire.citation.endPage649por
oaire.citation.startPage646por
oaire.citation.titlePower Engineering, Energy and Electrical Drives (POWERENG), 2013 Fourth International Conferencepor
person.familyNameRafael
person.familyNamePinheiro Marques Pires
person.givenNameSilviano
person.givenNameArmando José
person.identifier.ciencia-id1017-5C10-A485
person.identifier.ciencia-idDF15-7E08-AAB6
rcaap.rightsopenAccesspor
rcaap.typeconferenceObjectpor
relation.isAuthorOfPublication54c6ea50-8711-4f91-aa53-7b1bbb12709c
relation.isAuthorOfPublication1ce097fa-4155-4618-8b38-3c4341dffca1
relation.isAuthorOfPublication.latestForDiscovery54c6ea50-8711-4f91-aa53-7b1bbb12709c

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