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Short-Term Wind Power Forecast for Wind Farm Base on Artificial Neural Network

机译:人工神经网络的风电场基地短期风电预测

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Wind power forecasting is a critical method in minimizing the impact caused by integrated power grids. Firstly, the general steps of the establishment of neural network based load forecasting model for wind farm are presented and the principles are introduced. Next, in an example of a wind farm, the paper focuses on the relationship of weather data and output power by analyzing this relationship. A number of factors having significant impact on the output power are selected and used as network input. This network is an excellent predictive model which has been proved high prediction accuracy in experiments.
机译:风力预测是最小化集成电网造成的影响的关键方法。首先,提出了建立了用于风电场的神经网络负荷预测模型的一般步骤,介绍了原理。接下来,在风电场的一个例子中,本文通过分析这种关系来侧重于天气数据和输出功率的关系。选择对输出功率产生重大影响的一些因素并用作网络输入。该网络是一种优异的预测模型,其在实验中被证明是高预测准确性。

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