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A penalty function for reactive power optimization with discrete variables

机译:带离散变量的无功优化的惩罚函数

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In this paper, a penalty based model for solving the Reactive Power Optimization (RPO) problem formulated as a Nonlinear Programming (NLP) problem with continuous and discrete variables is proposed. The discrete control variables of the RPO problem are treated as continuous variables and solved with the aid of a penalty polynomial function. The resulting problem is an NLP problem with only continuous variables which solution is equivalent to the solution of the original problem. Efficiency and robustness of the proposed approach have been checked with IEEE 14, 30, 57, 118 and 300-bus test systems. The test results show the viability of the method with good solutions and it successfully attains discrete values for the original discrete variables.
机译:本文提出了一种基于惩罚的模型,用于求解无功优化(RPO)问题,该模型被构造为具有连续变量和离散变量的非线性规划(NLP)问题。 RPO问题的离散控制变量被视为连续变量,并借助罚多项式函数求解。产生的问题是只有连续变量的NLP问题,其解决方案等同于原始问题的解决方案。已通过IEEE 14、30、57、118和300总线测试系统检查了所提出方法的效率和鲁棒性。测试结果表明该方法具有良好的解决方案,并且可以成功地获得原始离散变量的离散值。

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