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      Hybrid Wind Speed Forecasting Model Study Based on SSA and Intelligent Optimized Algorithm

      , , , ,
      Abstract and Applied Analysis
      Hindawi Limited

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          Abstract

          Accurate wind speed forecasting is important for the reliable and efficient operation of the wind power system. The present study investigated singular spectrum analysis (SSA) with a reduced parameter algorithm in three time series models, the autoregressive integrated moving average (ARIMA) model, the support vector machine (SVM) model, and the artificial neural network (ANN) model, to forecast the wind speed in Shandong province, China. In the proposed model, the weather research and forecasting model (WRF) is first employed as a physical background to provide the elements of weather data. To reduce these noises, SSA is used to develop a self-adapting parameter selection algorithm that is fully data-driven. After optimization, the SSA-based forecasting models are applied to forecasting the immediate short-term wind speed and are adopted at ten wind farms in China. Finally, the performance of the proposed approach is evaluated using observed data according to three error calculation methods. The simulation results from ten cases show that the proposed method has better forecasting performance than the traditional methods.

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          Most cited references49

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          A review on the forecasting of wind speed and generated power

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            On comparing three artificial neural networks for wind speed forecasting

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              Multi-step forecasting for wind speed using a modified EMD-based artificial neural network model

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                Author and article information

                Journal
                Abstract and Applied Analysis
                Abstract and Applied Analysis
                Hindawi Limited
                1085-3375
                1687-0409
                2014
                2014
                : 2014
                :
                : 1-14
                Article
                10.1155/2014/693205
                085dd081-52b4-4f42-b713-d480ac98ac8a
                © 2014

                http://creativecommons.org/licenses/by/3.0/

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