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Application of imperialist competitive algorithm with its modified techniques for multi-objective optimal power flow problem: A comparative study

机译:帝国主义竞争算法及其改进技术在多目标最优潮流问题中的应用:比较研究

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摘要

One of the major tools for power system operators is Optimal Power Flow (OPF) problem which is designed to optimize a certain objective over power network variables under certain constraints. One of the simplest but most powerful optimization algorithms is imperialist competitive algorithm (ICA) outperforming many of the already existing optimization techniques. The original ICA method often converges to local optima. Therefore, in order to avoid this shortcoming, the interaction effects of colonies on each other are modeled to improve local search near the global optima. Also, a series of modifications is purposed to the assimilation policy rule of ICA method in order to further enhance algorithm's rate of convergence for achieving a better solution quality. This article investigates the possibility of using recently emerged evolutionary-based approach as a solution for the OPF problems which is based on ICA method with its modified techniques for optimal settings of OPF control variables. The performance of this approach is studied and evaluated on the standard IEEE 57-bus test system with different objective functions and is compared to methods reported in the literature recently. The proposed modified techniques for ICA method provide better results compared to the original ICA and other methods recently reported in the literature as demonstrated by simulation results.
机译:电力系统运营商的主要工具之一是最优潮流(OPF)问题,该问题旨在在某些约束条件下针对电网变量优化某个目标。帝国主义竞争算法(ICA)是最简单但功能最强大的优化算法,其性能优于许多现有优化技术。最初的ICA方法通常收敛于局部最优。因此,为了避免这种缺点,对菌落彼此之间的相互作用进行了建模,以改善全局最优值附近的局部搜索。此外,针对ICA方法的同化策略规则进行了一系列修改,以进一步提高算法的收敛速度,从而获得更好的解决方案质量。本文研究了使用最新出现的基于进化的方法作为OPF问题的解决方案的可能性,该方法基于ICA方法及其经过修改的技术来优化OPF控制变量的设置。在具有不同目标功能的标准IEEE 57总线测试系统上研究和评估了该方法的性能,并将其与最近文献中报道的方法进行了比较。仿真结果表明,与原始ICA和其他最近在文献中报道的方法相比,针对ICA方法的改进技术提供了更好的结果。

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