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Data-Driven Distributionally Robust Unit Commitment With Wasserstein Metric: Tractable Formulation and Efficient Solution Method

机译:数据驱动的分布稳健单位与Wassersein度量标准的承诺:易解配制和有效的解决方案方法

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摘要

In this letter, we propose a tractable formulation and an efficient solution method for the Wasserstein-metric-based distributionally robust unit commitment (DRUC-dW) problem. First, a distance-based data aggregation method is introduced to hedge against the dimensionality issue arising from a huge volume of data. Then, we propose a novel cutting plane algorithm to solve the DRUC-dW problem much more efficiently than state-of-the-art. The novel solution method is termed extremal distribution generation, which is an extension of the column-and-constraint generation method to the distributionally robust cases. The feasibility and cost efficiency of the model, and the efficiency of the solution method are numerically validated.
机译:在这封信中,我们提出了一种易用的制定和基于Wasserstein度量的分布鲁棒单元承诺(DRUC-DW)问题的有效解决方法。首先,将距离的数据聚合方法引入抵抗来自大量数据产生的维度问题的对冲。然后,我们提出了一种新颖的切割平面算法来解决DRUC-DW问题比最先进的更有效。新颖的解决方案方法被称为极值分布生成,其是柱子和约束生成方法的扩展到分布稳健的情况。模型的可行性和成本效率以及解决方案方法的效率是数值验证的。

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