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A corrected hybrid approach for wind speed prediction in Hexi Corridor of China

机译:中国河西走廊风速预测的混合修正方法

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摘要

Wind energy has been well recognized as a renewable resource in electricity generation, which is environmentally friendly, socially beneficial and economically competitive. For proper and efficient evaluation of wind energy, a hybrid Seasonal Auto-Regression Integrated Moving Average and Least Square Support Vector Machine (SARIMA-LSSVM) model is significantly developed to predict the mean monthly wind speed in Hexi Corridor. The design concept of combining the Seasonal Auto-Regression Integrated Moving Average (SARIMA) method with the Least Square Support Vector Machine (LSSVM) algorithm shows more powerful forecasting capacity for monthly wind speed prediction at wind parks, when compared with the single Auto-Regression Integrated Moving Average (ARIMA), SARIMA, LSSVM models and the hybrid Auto-Regression Integrated Moving Average and Support Vector Machine (ARIMA-SVM) model. To verify the developed approach, the monthly data from January 2001 to December 2006 in Mazong Mountain and Jiuquan are used for model construction and model testing. The simulation and hypothesis test results show that the developed method is simple and quite efficient.
机译:风能已被公认为发电中的可再生资源,它对环境友好,对社会有益并具有经济竞争力。为了正确有效地评估风能,开发了混合季节平均自动回归和最小二乘支持向量机(SARIMA-LSSVM)模型来预测河西走廊的月平均风速。与单一自回归相比,季节性自回归综合移动平均(SARIMA)方法与最小二乘支持向量机(LSSVM)算法相结合的设计概念显示了风电场每月风速预测的强大预测能力综合移动平均线(ARIMA),SARIMA,LSSVM模型以及混合自动回归综合移动平均线和支持向量机(ARIMA-SVM)模型。为了验证所开发的方法,将2001年1月至2006年12月在马宗山和酒泉的月度数据用于模型构建和模型测试。仿真和假设测试结果表明,该方法简单有效。

著录项

  • 来源
    《Energy》 |2011年第3期|p.1668-1679|共12页
  • 作者单位

    Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing 100029, China;

    School of Mathematics and Statistics, Lanzhou University, Tianshui Road 222, Lanzhou 730000, Cansu Province, China;

    College of Atmospheric Sciences, Lanzhou University, Lanzhou 730000, China;

    School of Mathematics and Statistics, Lanzhou University, Tianshui Road 222, Lanzhou 730000, Cansu Province, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    wind speed; hybrid sarima-lssvm model; hypothesis test;

    机译:风速混合sarima-lssvm模型假设检验;

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