On the neural network approach for forecasting of nonstationary time series on the basis of the Hilbert-Huang transform

被引:0
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作者
V. G. Kurbatskii
D. N. Sidorov
V. A. Spiryaev
N. V. Tomin
机构
[1] Russian Academy of Sciences,Melentiev Energy Systems Institute, Siberian Branch
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关键词
Remote Control; Empirical Mode Decomposition; Neural Network Approach; Generalize Regression Neural Network; Intrinsic Mode Function;
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学科分类号
摘要
The two-stage adaptive approach for time series forecasting is proposed. The first stage involves the decomposition of the initial time series into basis functions and application to them of the Hilbert transform. At the second stage the obtained functions and their instantaneous amplitudes are used as input variables of neural network forecasting. The efficiency of the developed approach is displayed in real time series in the electric power problem of forecasting the sharply variable implementations of active power flows.
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页码:1405 / 1414
页数:9
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