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Modeling for chaotic time series based on linear and nonlinear framework: Application to wind speed forecasting

机译:基于线性和非线性框架的混沌时间序列建模:风速预测应用

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Wind-speed forecasting plays a crucial part in improving the operational efficiency of wind power generation. However, accurate forecasts are difficult owing to the uncertainty of the wind speed. Although numerous investigations of wind-speed forecasting have been performed, many of the previous studies used wind-speed data directly to make forecasts, which were rarely based on the structural characteristics of the data. Therefore, in this study, a hybrid linear-nonlinear modeling method based on the chaos theory was successfully employed to capture the linear and nonlinear factors hidden in chaotic time series. Before the forecast, the noise in the data was removed using a decomposition algorithm. Then, through the phase-space reconstruction, the one-dimensional time series were extended to the multi-dimensional space to determine the utilization form of the data. Finally, Holt's exponential smoothing based on the firefly optimization algorithm and support vector regression were combined to predict the wind speed. The experimental results show that the proposed model is not only better than the comparison models but also has great application potential in the wind power generation system. (C) 2019 Elsevier Ltd. All rights reserved.
机译:风速预测在提高风力发电的运行效率方面发挥了重要作用。然而,由于风速的不确定性,准确的预测难以。虽然已经进行了许多对风速预测的调查,但是前一项以前的许多研究用来直接使用风速数据来进行预测,这很少基于数据的结构特征。因此,在本研究中,成功​​地采用了一种基于混沌理论的混合线性非线性建模方法来捕获混沌时间序列中隐藏的线性和非线性因素。在预测之前,使用分解算法去除数据中的噪声。然后,通过相位空间重建,一维时间序列扩展到多维空间以确定数据的利用形式。最后,基于Firefly优化算法和支持向量回归的Holt的指数平滑被组合以预测风速。实验结果表明,所提出的模型不仅优于比较模型,而且在风力发电系统中也具有很大的应用潜力。 (c)2019 Elsevier Ltd.保留所有权利。

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