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A refined parametric model for short term load forecasting

机译:完善的短期负荷预测参数模型

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We present a refined parametric model for forecasting electricity demand which performed particularly well in the recent Global Energy Forecasting Competition (GEFCom 2012). We begin by motivating and presenting a simple parametric model, treating the electricity demand as a function of the temperature and day of the data. We then set out a series of refinements of the model, explaining the rationale for each, and using the competition scores to demonstrate that each successive refinement step increases the accuracy of the model's predictions. These refinements include combining models from multiple weather stations, removing outliers from the historical data, and special treatments of public holidays.
机译:我们提出了一种精确的参数模型来预测电力需求,该模型在最近的全球能源预测竞赛中表现尤其出色(GEFCom 2012)。我们首先激励并提出一个简单的参数模型,将电力需求作为温度和数据日的函数进行处理。然后,我们对模型进行了一系列改进,解释了每种模型的基本原理,并使用竞争得分证明了每个连续的改进步骤都会提高模型预测的准确性。这些改进包括合并来自多个气象站的模型,从历史数据中删除异常值以及对公共假日进行特殊处理。

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