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A Novel Wind Speed Interval Prediction Based on Error Prediction Method

机译:基于误差预测方法的新型风速间隔预测

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Wind speed interval prediction plays an important role in wind power generation. In this article, a new interval construction model based on error prediction is proposed. The variational mode decomposition is used to decompose the complex wind speed time series into simplified modes. Two types of GRU models are built for wind speed prediction and error prediction. Prediction error for each mode is given a weight and accumulated to obtain the width of the prediction interval. The particle swarm optimization algorithm is applied to search for the optimal weights of the prediction errors. Experiments considering eight cases from two wind fields are conducted by using methods of interval construction in the literature for comparison with the proposed model. The result shows that the proposed model can obtain prediction intervals with higher quality.
机译:风速间隔预测在风力发电中起着重要作用。在本文中,提出了一种基于误差预测的新区间施工模型。变分模式分解用于将复杂的风速时间序列分解成简化模式。为风速预测和误差预测构建了两种类型的GRU模型。对每个模式的预测误差被赋予重量并累积以获得预测间隔的宽度。应用粒子群优化算法用于搜索预测误差的最佳权重。考虑到两个风电场的八种情况的实验是通过使用文献中的间隔结构进行比较,以与所提出的模型进行比较。结果表明,所提出的模型可以获得更高质量的预测间隔。

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