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Adaptive Distributionally Robust Unit Commitment Based on Non-parametric Statisticas

机译:基于非参数统计量的自适应分布鲁棒单元承诺

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Aiming at the large-scale random power supply being integrated into the power grid, this paper builds an adaptive distributionally robust unit commitment model (ADRUC) to solve the optimal scheduling problem of the power system under uncertain operating conditions. First, the ambiguity set is built based on confidence bands for cumulative distribution function (CDF) from non-parametric statistics, and the interval of acceptable wind power output is obtained, then a polyhedral uncertainty set is constructed considering both the range and temporal domains. Then, in view of the flexibility and economy of fully adjustable robust optimization (FARO), the primal problem is divided into day-ahead UC master problem and the sub-problem of economic dispatch under the worst-case scenario. The strong duality theorem and the Big-M method are employed to transform the sub-problem into a MILP problem, the column and constraint generation (C & CG) algorithm is iterated repeatedly to obtain the target solution. Finally, the ADUC model is analyzed and validated by a ten-machine system.
机译:针对大规模随机电源集成到电网中的问题,本文建立了一种自适应分布式鲁棒机组承诺模型(ADRUC),以解决不确定运行条件下电力系统的最优调度问题。首先,基于来自非参数统计的累积分布函数(CDF)的置信带构建歧义集,并获得可接受的风力输出间隔,然后考虑范围和时域,构造多面体不确定性集。然后,鉴于完全可调鲁棒优化(FARO)的灵活性和经济性,将最主要问题分为最坏情况下的日前UC主问题和经济调度的子问题。采用强对偶定理和Big-M方法将子问题转换为MILP问题,反复迭代列和约束生成(C&CG)算法以获得目标解。最后,通过十台计算机系统分析并验证了ADUC模型。

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