Spatio-Temporal Data Analytics for Wind Energy Integration
Produktnummer:
188e5265ba8bda42e0b3b7b067d4669966
Autor: | He, Miao Vittal, Vijay Yang, Lei Zhang, Junshan |
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Themengebiete: | Distributional forecast Economic dispatch Graphical learning Markov chains Point forecast Short-term wind power forecast Spatio-temporal analysis Stochastic optimization Support vector machines Wind farm |
Veröffentlichungsdatum: | 03.12.2014 |
EAN: | 9783319123189 |
Sprache: | Englisch |
Seitenzahl: | 80 |
Produktart: | Kartoniert / Broschiert |
Verlag: | Springer International Publishing |
Produktinformationen "Spatio-Temporal Data Analytics for Wind Energy Integration"
This SpringerBrief presents spatio-temporal data analytics for wind energy integration using stochastic modeling and optimization methods. It explores techniques for efficiently integrating renewable energy generation into bulk power grids. The operational challenges of wind, and its variability are carefully examined. A spatio-temporal analysis approach enables the authors to develop Markov-chain-based short-term forecasts of wind farm power generation. To deal with the wind ramp dynamics, a support vector machine enhanced Markov model is introduced. The stochastic optimization of economic dispatch (ED) and interruptible load management are investigated as well. Spatio-Temporal Data Analytics for Wind Energy Integration is valuable for researchers and professionals working towards renewable energy integration. Advanced-level students studying electrical, computer and energy engineering should also find the content useful.

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