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dc.creatorKouvelas V., Moschakis M.en
dc.date.accessioned2023-01-31T08:46:33Z
dc.date.available2023-01-31T08:46:33Z
dc.date.issued2022
dc.identifier10.1109/SyNERGYMED55767.2022.9941467
dc.identifier.isbn9781665461078
dc.identifier.urihttp://hdl.handle.net/11615/75449
dc.description.abstractLoad forecasting in the energy sector is an integral part of the electrical system as it is a criterion for its smooth and sustainable operation. The liberalization of electricity, the entry of RES into production and the digitization of supervisory means have brought more complexity to the system which translates into more variables. Machine learning models have the ability to process large numbers of parameters and this makes them attractive to researchers. In the context of this article, through the literature review, the prediction of electric load will be studied using artificial intelligence and specifically machine learning and deep learning which constitute the State of the Art in algorithms. © 2022 IEEE.en
dc.language.isoenen
dc.sourceSyNERGY MED 2022 - 2nd International Conference on Energy Transition in the Mediterranean Area, Proceedingsen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85142891090&doi=10.1109%2fSyNERGYMED55767.2022.9941467&partnerID=40&md5=b26ffd3dea4f2d1a90b27edee3bc1c50
dc.subjectDeep learningen
dc.subjectElectric load forecastingen
dc.subjectLearning systemsen
dc.subjectNeural networksen
dc.subjectDeep learningen
dc.subjectElectric load predictionsen
dc.subjectEnergy sectoren
dc.subjectIntegral parten
dc.subjectLearning techniquesen
dc.subjectLoad forecastingen
dc.subjectMachine-learningen
dc.subjectNeural-networksen
dc.subjectShort-term electric load forecastingen
dc.subjectTimes seriesen
dc.subjectElectric power plant loadsen
dc.subjectInstitute of Electrical and Electronics Engineers Inc.en
dc.titleShort-term Electric Load Forecasting using Engineering and Deep Learning techniquesen
dc.typeconferenceItemen


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