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Published on: February 13, 2018
A hybrid approach for short-term forecasting of wind speed
Sivanagaraja Tatinati1, Kalyana C Veluvolu1
1School of Electronics Engineering, College of IT Engineering, Kyungpook National University, Daegu, Republic of Korea.
Abstract:
We propose a hybrid method for forecasting the wind speed. The wind speed data is first decomposed into intrinsic mode functions (IMFs) with empirical mode decomposition. Based on the partial autocorrelation factor of the individual IMFs, adaptive methods are then employed for the prediction of IMFs. Least squares-support vector machines are employed for IMFs with weak correlation factor, and autoregressive model with Kalman filter is employed for IMFs with high correlation factor. Multistep prediction with the proposed hybrid method resulted in improved forecasting. Results with wind speed data show that the proposed method provides better forecasting compared to the existing methods.
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