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Dynamic Modeling and Very Short-term Prediction of Wind Power Output Using Box-Cox Transformation

机译:使用BOX-COX转换的动态建模与风力输出的短期预测

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We propose a statistical modeling method of wind power output for very short-term prediction. The modeling method with a nonlinear model has cascade structure composed of two parts. One is a linear dynamic part that is driven by a Gaussian white noise and described by an autoregressive model. The other is a nonlinear static part that is driven by the output of the linear part. This nonlinear part is designed for output distribution matching: we shape the distribution of the model output to match with that of the wind power output. The constructed model is utilized for one-step ahead prediction of the wind power output. Furthermore, we study the relation between the prediction accuracy and the prediction horizon.
机译:我们提出了一种用于非常短期预测的风力输出统计建模方法。具有非线性模型的建模方法具有由两部分组成的级联结构。一个是由高斯白噪声驱动的线性动态部分,并由自回归模型描述。另一个是由线性部分的输出驱动的非线性静态部分。该非线性部件设计用于输出分配匹配:我们塑造了模型输出的分布,与风力输出的模型输出匹配。构造模型用于对风力输出的一步预测。此外,我们研究了预测准确性与预测地平线之间的关系。

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