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Recent trends on artificial neural networks for prediction of wind energy

机译:人工神经网络用于风能预测的最新趋势

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A variety of Artificial Neural Network models for prediction of hourly wind speed (which a few hours in advance is required to ensure efficient utilization of wind energy systems) is studied and the results are compared. Results in terms of simulation and prediction are obtained with Feed Forward Back Propagation Neural Networks (FFBPNN) which shows its performance better than other neural networks. Empirical relationship is developed which shows the Gaussian profile for the number of neurons which varies with lag inputs, that is, nn= k exp(-il2) where nnshows the number of neurons, ilthe lag inputs, and k the sloping ratio. Feed Forward Neural Networks (FFNNs) can be corrected with optimization of our suggested relationship for simulators followed by back propagation technique.
机译:研究了多种人工神经网络模型,用于预测每小时风速(需要提前几个小时才能确保有效利用风能系统),并对结果进行了比较。通过前馈神经网络(FFBPNN)获得了仿真和预测方面的结果,该结果表明其性能优于其他神经网络。建立了经验关系,该关系显示了随滞后输入而变化的神经元数量的高斯分布,即nn = k exp(-il2),其中nn显示了滞后输入的神经元数量,而k显示斜率。前馈神经网络(FFNN)可以通过优化我们建议的模拟器关系,然后采用反向传播技术来进行校正。

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