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Classification of day-ahead prices in Asia's first liberalized electricity market using PNN

机译:使用PNN对亚洲首个自由化电力市场中的日前价格进行分类

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A number of factors determined the outcome of electricity prices and exhibits a very complicated and irregular fluctuation. The accurate forecasting of various approaches is high in forecasting errors. In this work an application of probabilistic neural networks (PNN) mode is applied to national electricity market of Singapore (NEMS), i.e. Asia's first liberalized electricity market. All market participants expect electricity price classifications than the forecasting prices for making decisions. Various price thresholds are used to classify the electricity prices. The proposed PNN model results show a better and efficient performance for classification of electricity market prices.
机译:许多因素决定了电价的结果,并且呈现出非常复杂和不规则的波动。各种方法的准确预测具有很高的预测误差。在这项工作中,将概率神经网络(PNN)模式的应用应用于新加坡的国家电力市场(NEMS),即亚洲第一个开放的电力市场。所有市场参与者都期望电价分类高于做出决策的预测价格。使用各种价格阈值对电价进行分类。提出的PNN模型结果显示了对电力市场价格进行分类的更好,更有效的性能。

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