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wind-speed-prediction
- 基于支持向量机的风速预测模型研究,即SVM,是一篇非常有用的论文-Wind speed prediction model based on support vector machine SVM, is a very useful paper
Wind-power-prediction-problem
- 利用新陈代谢灰色预测、样本自适应BP 神经网络和时间序列分析分别进行风电功率实时预测和日前预测,并采用熵值取权法确定组合权重,引入自控机制,构建反馈,提出组合预测法和基于时间序列的卡尔曼滤波法。研究结果表明,组合预测模型能减少各预测点较大误差的出现,而卡尔曼滤波能大幅消减原始序列的波动影响。-Use of metabolic gray forecast, sample adaptive BP neural network and time sequence analysis respective
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- The doubly fed induction generator (DFIG) is widely used in wind energy. This paper proposes a model-based predictive controller for a power control of DFIG. The control law is derived by optimization of an objective function that considers the
090619
- 这是一篇关于风电场功率预测的文章,对学习该领域的人有很大帮助。-this book is about wind power prediction paper,it is useful for researching in this area.
Wind-speed-prediction
- 基于最小二乘支持向量机理论,结合某风电场实测风速数据,建立了最小二乘支持向量机风速预测模型。对该风电场的风速进行了提前1h的预测,其预测的平均绝对百分比误差仅为8.55 ,预测效果比较理想。同时将文中的风速预测模型与神经网络理论、支持向量机(support vector machine,SVM)理论建立的风速预测模型进行了比较。仿真结果表明,文中所提模型在预测精度和运算速度上皆优于其他模型。 -Based on least squares support vector machine the
wing-power-prediction
- 关于风电场风速及发电功率预测的集中方法研究综述-A summary of the research on wind speed and generation power prediction of wind farm
prediction-of-wind-energy
- IT is about prediction of wind energy
wind power prediction
- 准确的风电功率预测有利于含大规模风电电力系统的安全可靠、持续稳定运行,掌握风电功率预测误差的分布特征,对风电大规模并网有重要意义。以吉林省某风电场的实测数据为例,对风电功率进行超短期预测,利用非参数估计对预测误差分布进行拟合,分析了非参数估计与预测方法、预测时间间隔、预测误差概率分布形态以及风电场装机容量的关系,验证了所提出方法的有效性。(Accurate wind power prediction is conducive to safe, reliable, continuous and s