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Optimal reactive power planning using evolutionary algorithms: a comparative study for evolutionary programming, evolutionary strategy, genetic algorithm, and linear programming

机译:使用进化算法的无功优化计划:进化规划,进化策略,遗传算法和线性规划的比较研究

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摘要

This paper presents a comparative study for three evolutionary algorithms (EAs) to the optimal reactive power planning (ORPP) problem: evolutionary programming, evolutionary strategy, and genetic algorithm. The ORPP problem is decomposed into P- and Q-optimization modules, and each module is optimized by the EAs in an iterative manner to obtain the global solution. The EA methods for the ORPP problem are evaluated against the IEEE 30-bus system as a common testbed, and the results are compared against each other and with those of linear programming.
机译:本文针对最优无功规划(ORPP)问题的三种进化算法(EA)进行了比较研究:进化规划,进化策略和遗传算法。 ORPP问题被分解为P和Q优化模块,并且每个模块都由EA以迭代方式进行优化以获得全局解决方案。针对ORPP问题的EA方法针对作为通用测试平台的IEEE 30总线系统进行了评估,并将结果与​​线性编程的结果进行了比较。

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