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Short term load forecasting for power exchange between Brasil and Paraguay

机译:巴西和巴拉圭之间电力交换的短期负荷预测

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This work presents a case study of short term load forecasting to assist in the power exchange real time dispatch operation between Brazil and Paraguay at Itaipu Dam. A classical method with statistical approach, Seasonal Autoregressive Moving Average, is compared with an artificial intelligence method based on Artificial Neural Networks. The methods are tested using a time series representing the average hourly power exchange. The results were compared with the current forecast methods used to define the daily program of operation of Itaipu using the Mean Absolute Percentage Error method. The results of the analysis showed that the model based on the Seasonal Autoregressive Moving Average present a lower error index among the methods tested.
机译:这项工作提供了一个短期负荷预测的案例研究,以帮助巴西和巴拉圭伊泰普水坝之间的电力交换实时调度操作。将具有统计方法的经典方法季节性自回归移动平均与基于人工神经网络的人工智能方法进行了比较。使用代表平均每小时功率交换的时间序列对方法进行测试。将结果与使用平均绝对百分比误差法定义Itaipu日常运营的当前预测方法进行比较。分析结果表明,基于季节性自回归移动平均值的模型在所测试的方法中呈现出较低的误差指数。

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