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Data-driven model for solar irradiation based on satellite observations

机译:基于卫星观测的数据驱动的太阳辐射模型

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We construct a data-driven model for solar irradiation based on satellite observations. The model yields probabilistic estimates of the irradiation field every thirty minutes starting from two consecutive satellite measurements. The probabilistic nature of the model captures prediction uncertainties and can therefore be used by solar energy producers to quantify the operation risks. The model is simple to implement and can make predictions in realtime with minimal computational resources. To deal with the high-dimensionality of the satellite data, we construct a reduced representation using factor analysis. Then, we model the dynamics of the reduced representation as a discrete (30-min interval) dynamical system. In order to convey information about the movement of the irradiation field, the dynamical system has a two-step delay. The dynamics are represented in a nonlinear, nonparametric way by a recursive Gaussian process. The predictions of the model are compared with observed satellite data as well as with a similar model that uses only ground observations at the prediction site. We conclude that using satellite data in an area including the prediction site significantly improves the prediction compared with models using only ground observation site data. (C) 2014 Elsevier Ltd. All rights reserved.
机译:我们基于卫星观测结果构建了一个数据驱动的太阳辐射模型。从两次连续的卫星测量开始,该模型每30分钟产生一次辐射场的概率估计。该模型的概率性质捕获了预测的不确定性,因此可以被太阳能生产商用来量化运营风险。该模型易于实现,并且可以使用最少的计算资源进行实时预测。为了处理卫星数据的高维性,我们使用因子分析构造了简化的表示形式。然后,我们将简化表示的动力学建模为离散的(30分钟间隔)动力学系统。为了传达有关辐照场运动的信息,动力学系统具有两步延迟。动力学通过递归高斯过程以非线性,非参数的方式表示。将模型的预测与观测到的卫星数据以及仅在预测站点使用地面观测的类似模型进行比较。我们得出的结论是,与仅使用地面观测站点数据的模型相比,在包括预测站点的区域中使用卫星数据可以显着改善预测。 (C)2014 Elsevier Ltd.保留所有权利。

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