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Sequential quadratic programming based differential evolution algorithm for optimal power flow problem

机译:基于顺序二次规划的差分进化算法求解最优潮流问题

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摘要

This study proposes a hybrid algorithm combining sequential quadratic programming (SQP) and differential evolution (DE) algorithm for solving the optimal power flow (OPF) problem. In this hybrid method, SQP is used to generate an individual, which is a member of an initial population, for DE algorithm. Having generated an individual by SQP, which will be nearer to the optimal solution, DE algorithm can reach the optimal solution more effectively than the classical evolutionary algorithms can. The proposed method has been used to solve the OPF problem on the standard IEEE 30- and IEEE 118-bus test systems to validate the effectiveness. Two different objectives, namely fuel cost considering valve-point effects and the transmission line losses, have been considered. The simulation results obtained from the proposed hybrid method reveal that this algorithm gives better solution for the problem having more non-convexity.
机译:这项研究提出了一种混合算法,结合顺序二次规划(SQP)和差分进化(DE)算法来解决最佳潮流(OPF)问题。在这种混合方法中,SQP用于为DE算法生成一个个体,该个体是初始种群的成员。通过SQP生成了个体,该个体将更接近最优解,因此DE算法可以比传统进化算法更有效地达到最优解。所提出的方法已用于解决标准IEEE 30总线和IEEE 118总线测试系统上的OPF问题,以验证其有效性。已经考虑了两个不同的目标,即考虑阀点影响的燃料成本和传输线损耗。从提出的混合方法获得的仿真结果表明,该算法为具有更多非凸性的问题提供了更好的解决方案。

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