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Short term load forecasting using Interval Type-2 Fuzzy Logic Systems

机译:使用区间2型模糊逻辑系统的短期负荷预测

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Accurate Short Term Load Forecasting (STLF) is essential for a variety of decision making processes. However, forecasting accuracy may drop due to presence of uncertainty in the operation of energy systems or unexpected behavior of exogenous variables. This paper proposes the application of Interval Type-2 Fuzzy Logic Systems (IT2 FLSs) for the problem of STLF. IT2 FLSs, with extra degrees of freedom, are an excellent tool for handling prevailing uncertainties and improving the prediction accuracy. Experiments conducted with real datasets show that IT2 FLS models appropriately approximate future load demands with an acceptable accuracy. Furthermore, they demonstrate an encouraging degree of accuracy superior to feedforward neural networks used in this study.
机译:准确的短期负荷预测(STLF)对于各种决策过程至关重要。但是,由于能源系统运行中存在不确定性或外生变量的意外行为,预测准确性可能会下降。本文提出了区间2型模糊逻辑系统(IT2 FLSs)在STLF问题中的应用。 IT2 FLS具有额外的自由度,是处理主要不确定性和提高预测准确性的出色工具。使用实际数据集进行的实验表明,IT2 FLS模型可以以可接受的精度适当地近似未来的负载需求。此外,他们证明了优于本研究中使用的前馈神经网络的准确度令人鼓舞。

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