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An experimental investigation of three new hybrid wind speed forecasting models using multi-decomposing strategy and ELM algorithm

机译:基于多重分解策略和ELM算法的三种新型混合风速预报模型的实验研究

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The wind speed forecasting is important for the wind power industry to achieve the intelligent management. Three new hybrid methods using the WPD (Wavelet Packet Decomposition), the EMD (Empirical Mode Decomposition) and the ELM (Extreme Learning Machine) are presented for wind speed multi-step predictions. In the proposed architectures, the WPD is chosen to decompose the actual wind speed series into several sub-layers, while the EMD is adopted to further decompose the obtained LF (Low Frequency) sub-layers, the obtained HF (High Frequency) sub-layers and all the obtained sub-layers into a number of IMFs (Intrinsic Mode Functions), respectively. Finally, the ELM is used to complete the wind speed predicting computation for these decomposed wind speed sub-layers. To investigate the performance of the proposed hybrid models in the wind speed multi-step forecasting and find which kind of signal decomposing approach is the most suitable for the ELM based wind speed forecasting, the PM (Persistent Model), the ARIMA model, the SVM model, the ELM model, the WPD-ELM model, the WPD-EMD (LF)ELM model, the WPD-EMD (HF)-ELM model and the WPD-EMD-ELM model are all included in the forecasting performance comparisons. The results of the two real experiments indicate that among all the involved models, the WPD-EMD (LF)-ELM model has the best predicting performance. (C) 2018 Elsevier Ltd. All rights reserved.
机译:风速预测对于风电行业实现智能化管理至关重要。提出了使用WPD(小波包分解),EMD(经验模式分解)和ELM(极限学习机)的三种新的混合方法,用于风速多步预测。在建议的架构中,选择WPD将实际风速序列分解为几个子层,而采用EMD进一步分解获得的LF(低频)子层,获得的HF(高频)子层。层和所有获得的子层分别进入多个IMF(本征函数)。最后,ELM用于完成这些分解后的风速子层的风速预测计算。为了研究所提出的混合模型在风速多步预测中的性能,并找出哪种信号分解方法最适合基于ELM的风速预测,PM(持久性模型),ARIMA模型,SVM模型,ELM模型,WPD-ELM模型,WPD-EMD(LF)ELM模型,WPD-EMD(HF)-ELM模型和WPD-EMD-ELM模型都包括在预测性能比较中。两次真实实验的结果表明,在所有涉及的模型中,WPD-EMD(LF)-ELM模型具有最佳的预测性能。 (C)2018 Elsevier Ltd.保留所有权利。

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