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Comparative Application of Multi-Objective Evolutionary Algorithms to the Voltage and Reactive Power Optimization Problem in Power Systems

机译:多目标进化算法在电力系统电压和无功优化问题中的比较应用

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This study investigates the applicability of two elitist multi-objective evolutionary algorithms (MOEAs), namely the Non-dominated Sorting Genetic Algorithm-II (NSGA-II) and an improved Strength Pareto Evolutionary Algorithm (SPEA2), in the voltage and reactive power optimization problem. The problem has been formulated mathematically as a nonlinear constrained multi-objective optimization problem where the real power loss, the load bus voltage deviations and the installation cost of additional reactive power (VAR) sources are to be minimized simultaneously. To assess the effectiveness of the proposed approach, different combinations of the objectives have been minimized simultaneously. The simulation results showed that the two algorithms were able to generate a whole set of well distributed Pareto-optimal solutions in a single run. Moreover, fuzzy logic theory is employed to extract the best compromise solution over the trade-off curves obtained. Furthermore, a performance analysis showed that SPEA2 found better convergence and spread of solutions than NSGA-II. However, NSGA-II found more extended trade-off curves in some cases and required less computational time than SPEA2.
机译:本研究调查了两种精英多目标进化算法(MOEA),即非主导排序遗传算法II(NSGA-II)和改进的强度帕累托进化算法(SPEA2)在电压和无功优化中的适用性问题。该问题已通过数学公式化为非线性约束的多目标优化问题,该问题将同时使实际功率损耗,负载总线电压偏差和附加无功功率(VAR)源的安装成本最小化。为了评估所提出方法的有效性,已同时将目标的不同组合最小化。仿真结果表明,两种算法都能在一次运行中生成整套分布良好的帕累托最优解。此外,模糊逻辑理论被用来在获得的折衷曲线上提取最佳折衷解决方案。此外,性能分析表明,SPEA2比NSGA-II具有更好的收敛性和扩展性。但是,与SPEA2相比,NSGA-II在某些情况下发现了更多的折衷曲线,并且所需的计算时间更少。

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