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Short-term solar irradiation forecasting based on dynamic harmonic regression

机译:基于动态谐波回归的短期太阳辐射预报

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摘要

Solar power generation is a crucial research area for countries that have high dependency on fossil energy sources and is gaining prominence with the current shift to renewable sources of energy. In order to integrate the electricity generated by solar energy into the grid, solar irradiation must be reasonably well forecasted, where deviations of the forecasted value from the actual measured value involve significant costs. The present paper proposes a univariate Dynamic Harmonic Regression model set up in a State Space framework for short-term (1 to 24 hours) solar irradiation forecasting. Time series hourly aggregated as the Global Horizontal Irradiation and the Direct Normal Irradiation will be used to illustrate the proposed approach. This method provides a fast automatic identification and estimation procedure based on the frequency domain. Furthermore, the recursive algorithms applied offer adaptive predictions. The good forecasting performance is illustrated with solar irradiance measurements collected from ground-based weather stations located in Spain. The results show that the Dynamic Harmonic Regression achieves the lowest relative Root Mean Squared Error; about 30% and 47% for the Global and Direct irradiation components, respectively, for a forecast horizon of 24 hours ahead.
机译:对于高度依赖化石能源的国家来说,太阳能发电是至关重要的研究领域,并且随着当前向可再生能源的转移,太阳能发电正日益受到重视。为了将太阳能产生的电能整合到电网中,必须合理合理地预测太阳辐射,因为预测值与实际测量值之间的偏差会带来大量成本。本文提出了在状态空间框架中建立的单变量动态谐波回归模型,用于短期(1至24小时)太阳辐射预测。以小时为单位的时间序列汇总为全局水平辐射和直接正常辐射,将用于说明所建议的方法。该方法提供了基于频域的快速自动识别和估计过程。此外,所应用的递归算法提供了自适应预测。从西班牙地面气象站收集的太阳辐照度测量值可以很好地说明预报性能。结果表明,动态谐波回归实现了最低的相对均方根误差。全球和直接辐照分量分别约为30%和47%,预计在未来24小时内会出现。

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