Publication | Closed Access
A Computational Framework for Uncertainty Quantification and Stochastic Optimization in Unit Commitment With Wind Power Generation
259
Citations
21
References
2010
Year
Mathematical ProgrammingEngineeringData ScienceUncertainty QuantificationEnergy OptimizationComputational FrameworkSystems EngineeringRobust OptimizationPower SystemsWind Power GenerationSimulated Power SystemEnergy ForecastingComputer EngineeringPower System OptimizationForecastingEnergy PredictionUnit CommitmentWind Power UncertaintySmart GridStochastic OptimizationEnergy ManagementParallel Programming
We present a computational framework for integrating a state-of-the-art numerical weather prediction (NWP) model in stochastic unit commitment/economic dispatch formulations that account for wind power uncertainty. We first enhance the NWP model with an ensemble-based uncertainty quantification strategy implemented in a distributed-memory parallel computing architecture. We discuss computational issues arising in the implementation of the framework and validate the model using real wind-speed data obtained from a set of meteorological stations. We build a simulated power system to demonstrate the developments.
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