Interactive artificial ecosystem algorithm for solving power management optimizations

B. Mahdad, K. Srairi
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引用次数: 3

Abstract

Introduction. Power planning and management of practical power systems considering the integration and coordination of various FACTS devices is a vital research area. Recently, several metaheuristic methods have been developed and applied to solve various optimization problems. Among these methods, an artificial ecosystem based optimization has been successfully proposed and applied to solve various industrial and planning problems. The novelty of the work consists in creating an interactive process search between diversification and intensification within the standard artificial ecosystem based optimization. The concept of the introduced variant is based on creating dynamic interaction between production operator and consumer operator during search process. Purpose. This paper introduces an interactive artificial ecosystem based optimization to solve with accuracy the multi objective power management optimization problems. Methods. The solution of the problem was carried out using MATLAB program and the developed package is based on combining the proposed metaheuristic method and the power flow tool based Newton-Raphson algorithm. Results. Obtained results confirmed that the proposed optimizer tool may be suitable to solve individually and simultaneously various objective functions such as the total fuel cost, the power losses and the voltage deviation. Practical value. The efficiency of the proposed variant in terms of solution quality and convergence behavior has been validated on two practical electric test systems: the IEEE-30-bus, and the IEEE-57-bus. A statistical comparative study with critical review is elaborated and intensively compared to various recent metaheuristic techniques confirm the competitive aspect and particularity of the proposed optimizer tool in solving with accuracy the power management considering various objective functions.
求解电源管理优化的交互式人工生态系统算法
介绍。考虑到各种FACTS器件的集成和协调,对实际电力系统进行电源规划和管理是一个重要的研究领域。近年来,一些元启发式方法被开发并应用于解决各种优化问题。其中,基于人工生态系统的优化方法已被成功地提出并应用于解决各种产业和规划问题。这项工作的新颖之处在于在基于优化的标准人工生态系统中创建多样化和集约化之间的交互式过程搜索。引入的变体概念是基于在搜索过程中创建生产操作者和消费者操作者之间的动态交互。目的。本文介绍了一种基于交互式人工生态系统的优化方法,以精确地解决多目标电源管理优化问题。方法。利用MATLAB程序对该问题进行求解,开发的软件包是将所提出的元启发式方法与基于牛顿-拉夫森算法的潮流工具相结合。结果。结果表明,所提出的优化工具可以单独或同时求解各种目标函数,如总燃料成本、功率损耗和电压偏差。实用价值。在两个实际的电气测试系统(ieee -30总线和ieee -57总线)上验证了所提出的变体在求解质量和收敛行为方面的效率。一项具有批判性评论的统计比较研究被详细阐述,并与各种最近的元启发式技术进行了深入比较,证实了所提出的优化器工具在考虑各种目标函数的情况下准确解决电源管理问题的竞争方面和特殊性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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