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dc.contributor.authorChen, Hao
dc.contributor.authorZhang, Qixia
dc.contributor.authorBirkelund, Yngve
dc.date.accessioned2022-08-24T12:08:11Z
dc.date.available2022-08-24T12:08:11Z
dc.date.issued2022-08-22
dc.description.abstractThe quality of wind data from the numerical weather prediction significantly influences the accuracy of wind power forecasting systems for wind parks. Therefore, an in-depth investigation of these wind data themselves is essential to improve wind power generation efficiency and maintain grid reliability. This paper proposes a novel framework based on machine learning for concurrently analyzing and forecasting predictive errors, called residuals, of wind speed and direction from a numerical weather prediction model versus measurements over a while. The performance of the framework is testified by a wind farm inside the Arctic. It is demonstrated that the residuals still contain significant meteorological information and can be effectively predicted with machine learning and the linear autoregression works well for multi-timesteps predictions of overall, East-West, East–West,​ and North-South North–South wind speeds residuals by comparing the four forecast learning algorithms’ performance. The predictions may be applied to correct the NWP wind model, making quality feedback improvements for inputs for wind power forecasting systems. en_US
dc.identifier.citationChen, Zhang, Birkelund. Machine learning forecasts of Scandinavian numerical weather prediction wind model residuals with control theory for wind energy. Energy Reports. 2022en_US
dc.identifier.cristinIDFRIDAID 2045483
dc.identifier.doi10.1016/j.egyr.2022.08.105
dc.identifier.issn2352-4847
dc.identifier.urihttps://hdl.handle.net/10037/26391
dc.language.isoengen_US
dc.publisherElsevieren_US
dc.relation.journalEnergy Reports
dc.rights.accessRightsopenAccessen_US
dc.rights.holderCopyright 2022 The Author(s)en_US
dc.titleMachine learning forecasts of Scandinavian numerical weather prediction wind model residuals with control theory for wind energyen_US
dc.type.versionpublishedVersionen_US
dc.typeJournal articleen_US
dc.typeTidsskriftartikkelen_US
dc.typePeer revieweden_US


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