Scenario Reduction With Submodular Optimization

IEEE Transactions on Power Systems(2017)

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摘要
Stochastic programming methods have been proven to deal effectively with the uncertainty and variability of renewable generation resources. However, the quality of the solution that they provide (as measured by cost and reliability metrics) depends on the accuracy and the number of scenarios used to model this uncertainty and variability. Scenario reduction techniques are used to manage the comput...
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关键词
Optimization,Linear programming,Greedy algorithms,Uncertainty,Acceleration,Programming,Stochastic processes
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