2022
DOI: 10.1007/s00500-021-06725-x
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Short-term prediction of wind power based on BiLSTM–CNN–WGAN-GP

Abstract: A short-term wind power prediction model based on BiLSTM–CNN–WGAN-GP (LCWGAN-GP) is proposed in this paper, aiming at the problems of instability and low prediction accuracy of short-term wind power prediction. Firstly, the original wind energy data are decomposed into subsequences of natural mode functions with different frequencies by using the variational mode decomposition (VMD) algorithm. The VMD algorithm relies on a decision support system for the decomposition of the data into natural mode functions. O… Show more

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Cited by 17 publications
(27 citation statements)
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“…In this paper, the performance evaluation of proposed HPMI-DQR, and existing various algorithms such as EEMD-CSO-LSTMEFG [1], VMD-K means-LSTM [2], EALSTM-QR [22], and LCWGAN-GP [28] are compared.…”
Section: Resultsmentioning
confidence: 99%
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“…In this paper, the performance evaluation of proposed HPMI-DQR, and existing various algorithms such as EEMD-CSO-LSTMEFG [1], VMD-K means-LSTM [2], EALSTM-QR [22], and LCWGAN-GP [28] are compared.…”
Section: Resultsmentioning
confidence: 99%
“…Next, with the resultant features selected and provided as input to the deep learning model, robust wind power prediction is made. Te wind power prediction is employed for evaluating the expected production of one or more wind turbines and the proposed HPMI-DQR method has two existing methods such as EEMD-CSO-LSTMEFG [1], VMD-K means-LSTM [2], EALSTM-QR [22], and LCWGAN-GP [28] with the dataset of 10 minutes interval gap. From other methods and existing methods, a 10 minutes interval gap is applied.…”
Section: Methodsmentioning
confidence: 99%
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“…When choosing the options for increasing the power generation, the renewable energy source dominates others [1,2]. Renewable energy forecasting mainly solar and wind energies have gained a lot of attention currently due to its vital impact on taking proper operational and managerial decisions in power systems [3,4]. The permanency, grid reliability, reduction of cost and risk level in the energy market is contingent on the accuracy of wind energy prediction [5].…”
Section: Introductionmentioning
confidence: 99%