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Development of Very-Short-Term Load Forecasting Based on Chaos Theory

机译:基于混沌理论的超短期负荷预测开发

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It is indispensable to accurately perform short-term load forecasting of 10 minutes ahead in order to avoid undesirable disturbances in power system operations. The authors have so far developed such a forecasting method based on conventional chaos theory. However, this approach cannot give accurate forecasting results when the loads consecutively exceed the historical maximum or are less than the minimum. Electric furnace loads with steep fluctuations are another factor degrading the forecast accuracy. This paper presents an improved forecasting method based on chaos theory. In particular, the potential of the Local Fuzzy Reconstruction Method, a variant of the localized reconstruction methods, is fully exploited to realize accurate forecasting as much as possible. To resolve the forecast deterioration due to suddenly changing loads such as by electric furnaces, they are separated from the rest and smoothing operations are carried out afterwards. The separated loads are forecasted independently from the remaining components. Several error correction methods are incorporated to enhance the proposed forecasting method. Furthermore, a consistent measure of obtaining the optimal combination of parameters to be used in the forecasting method is presented. The effectiveness of the proposed methods is verified by using real load data for 1 year.
机译:准确执行提前10分钟的短期负荷预测是必不可少的,以避免电力系统运行中的不良干扰。到目前为止,作者已经开发了基于常规混沌理论的这种预测方法。但是,当载荷连续超过历史最大值或小于最小值时,此方法无法给出准确的预测结果。具有急剧波动的电炉负荷是降低预测准确性的另一个因素。本文提出了一种基于混沌理论的改进预测方法。特别是,充分利用了局部重构方法的一种形式的局部模糊重构方法的潜力,以尽可能地实现准确的预测。为了解决由于突然变化的负载(例如电炉)导致的预测劣化,将它们与其余部分分开,然后进行平滑操作。独立于其余组件预测分开的负载。合并了几种纠错方法以增强建议的预测方法。此外,提出了一种用于获得预测方法中使用的参数的最佳组合的一致措施。通过使用一年的实际载荷数据验证了所提方法的有效性。

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