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Ten Minutes Solar Irradiation Forecasting on Inclined Plane using Evolutionary Product Unit Neural Networks

机译:使用进化产品单位神经网络10分钟太阳辐照预测倾斜平面预测

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This work applies evolutionary product unit neural networks (EPUNNs) to estimate global inclined irradiation at real time and predict it 10 minutes in advance. Both tasks are accomplished simultaneously, by using one single model with two outputs. One advantage of our approach is that the predictions of inclined irradiation are obtained without the need of a series of historical data. In this way, the model only considers one measured input variable, which is the horizontal global irradiation at the previous instant. Besides, the evolutionary algorithm used to optimize the network allows us to obtain the best adapted topology of the model with respect to the number of hidden neurons and synaptic connections. Very promising results are obtained, where the inclined irradiation Iβ(t) is estimated with an accuracy of 5.10% of nRMSE, while it is predicted 10 minutes in advance with an accuracy of 16.97%.
机译:这项工作适用于进化产品单元神经网络(EPUNNS),以实时估算全球倾斜辐照,并提前预测10分钟。通过使用具有两个输出的单个模型,可以同时完成两个任务。我们的方法的一个优点是获得倾斜照射的预测,而无需一系列历史数据。以这种方式,该模型仅考虑一个测量的输入变量,这是前一瞬间的水平全局辐照。此外,用于优化网络的进化算法允许我们在隐藏的神经元和突触连接的数量上获得模型的最佳适应性拓扑。获得了非常有前途的结果,其中倾斜照射Iβ(t)估计,精度为5.10%的NRMSE,而预测预先预测10分钟,精度为16.97%。

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