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A fuzzy-neural approach to electricity load and spot-price forecasting in a deregulated electricity market

机译:电力市场解除管制的模糊神经网络电力负荷和现货价格预测

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Accurate short term load forecasting is crucial to the efficient and economic operation of modem electrical power systems. With the recent effort by many governments in the development of open and deregulated power markets, research in forecasting methods is getting renewed attention. Although long term and short term electric load forecasting has been of interest to the practicing engineers and researchers for many years, spot-price prediction is a relatively new research area. This paper examines the use of a neural-fuzzy inference method for the prediction of 24 hourly load and spot price for the next day. Publicly available data of the electricity market of the state of New South Wales, Australia is used in a case study.
机译:准确的短期负荷预测对于现代电力系统的高效和经济运行至关重要。随着许多政府最近在开放和放松管制的电力市场发展中的努力,预测方法的研究受到了越来越多的关注。尽管长期和短期的电力负荷预测已经引起了实践工程师和研究人员的兴趣,但现货价格预测却是一个相对较新的研究领域。本文研究了使用神经模糊推理方法预测第二天的24小时负荷量和现货价格。案例研究使用了澳大利亚新南威尔士州电力市场的公开数据。

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