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Optimal Prediction Intervals of Wind Power Generation

Engineering and Technology

Optimal Prediction Intervals of Wind Power Generation

C. Wan, Z. Xu, et al.

Discover a groundbreaking approach to wind power forecasting that directly optimizes prediction intervals without the need for statistical assumptions. This innovative research by Can Wan, Zhao Xu, Pierre Pinson, Zhao Yang Dong, and Kit Po Wong promises to revolutionize the reliability and flexibility of wind energy in power systems.... show more
Abstract
Accurate and reliable wind power forecasting is essential to power system operation. Given significant uncertainties involved in wind generation, probabilistic interval forecasting provides a unique solution to estimate and quantify the potential impacts and risks facing system operation with wind penetration beforehand. This paper proposes a novel hybrid intelligent algorithm approach to directly formulate optimal prediction intervals of wind power generation based on extreme learning machine and particle swarm optimization. Prediction intervals with associated confidence levels are generated through direct optimization of both the coverage probability and sharpness to ensure the quality. The proposed method does not involve the statistical inference or distribution assumption of forecasting errors needed in most existing methods. Case studies using real wind farm data from Australia have been conducted. Comparing with benchmarks applied, experimental results demonstrate the high efficiency and reliability of the developed approach. It is therefore convinced that the proposed method provides a new generalized framework for probabilistic wind power forecasting with high reliability and flexibility and has a high potential of practical applications in power systems.
Publisher
IEEE Transactions on Power Systems
Published On
Jan 14, 2014
Authors
Can Wan, Zhao Xu, Pierre Pinson, Zhao Yang Dong, Kit Po Wong
Tags
wind power forecasting
probabilistic interval forecasting
extreme learning machine
particle swarm optimization
coverage probability
sharpness
real wind farm data
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