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Please use this identifier to cite or link to this item: http://142.54.178.187:9060/xmlui/handle/123456789/13325
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dc.contributor.authorul Islam, Badar-
dc.contributor.authorArain, Salman-
dc.contributor.authorQuudus, Asim-
dc.date.accessioned2022-10-19T07:04:19Z-
dc.date.available2022-10-19T07:04:19Z-
dc.date.issued2018-12-17-
dc.identifier.citationul Islam, B., Arain, S., & Quudus, A. (2018). An Emotional Neural Network for Electrical Load Demand Forecast. NFC IEFR Journal of Engineering and Scientific Research, 6, 155-159.en_US
dc.identifier.urihttp://142.54.178.187:9060/xmlui/handle/123456789/13325-
dc.description.abstractEmotional neural network (EmNN) is a new approach that implements the virtual emotions to support the learning process of neural networks. The inspiration of EmNN is adopted from neurophysiological studies of the human brain behaviors under emotional circumstances. In this research, EmNN based models are designed and experimented for electrical load forecasting application. The numerical parameters are fine-tuned by applying genetic algorithm as an optimization tool. Two case studies are developed with different data sets for the training and testing of the proposed model.A hybrid input variable selection method is proposed for identifying and implementing the most appropriate input variables in the learning process. A couple of conventional training algorithms of ANN are employed for the same datasets and the outcomesare compared with EmNN model. The results of the proposed model show that the suggested techniqueperformed better as compared to conventional ANN with respect to prediction accuracy and generalizationen_US
dc.language.isoenen_US
dc.publisherFaisalabad:NFC Institute of Engineering and Fertilizer Research Jaranwala Road, Faisalabaden_US
dc.subjectArtificial neural networken_US
dc.subjectEmotional neural networken_US
dc.subjectShort term load forecastingen_US
dc.subjectCorrelation analysisen_US
dc.subjectGenetic Algorithmen_US
dc.titleAn Emotional Neural Network for Electrical Load Demand Forecasten_US
dc.typeArticleen_US
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