Electricity Price Curve Modeling and Forecasting by Manifold Learning

This paper proposes a novel nonparametric approach for the modeling and analysis of electricity price curves by applying the manifold learning methodology-locally linear embedding (LLE). The prediction method based on manifold learning and reconstruction is employed to make short-term and medium-ter...

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Veröffentlicht in:IEEE transactions on power systems 2008-08, Vol.23 (3), p.877-888
Hauptverfasser: Jie Chen, Jie Chen, Shi-Jie Deng, Shi-Jie Deng, Xiaoming Huo, Xiaoming Huo
Format: Artikel
Sprache:eng
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Zusammenfassung:This paper proposes a novel nonparametric approach for the modeling and analysis of electricity price curves by applying the manifold learning methodology-locally linear embedding (LLE). The prediction method based on manifold learning and reconstruction is employed to make short-term and medium-term price forecasts. Our method not only performs accurately in forecasting one-day-ahead prices, but also has a great advantage in predicting one-week-ahead and one-month-ahead prices over other methods. The forecast accuracy is demonstrated by numerical results using historical price data taken from the Eastern U.S. electric power markets.
ISSN:0885-8950
1558-0679
DOI:10.1109/TPWRS.2008.926091