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Performance Evaluation of Antlion Optimizer Based Regulator in Automatic Generation Control of Interconnected Power System

机译:基于抗性优化器的互联电力系统自动生成控制中的抗杉木优化器的性能评价

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摘要

This paper presents an application of the recently introduced Antlion Optimizer (ALO) to find the parameters of primary governor loop of thermal generators for successful Automatic Generation Control (AGC) of two-area interconnected power system. Two standard objective functions, Integral Square Error (ISE) and Integral Time Absolute Error (ITAE), have been employed to carry out this parameter estimation process. The problem is transformed in optimization problem to obtain integral gains, speed regulation, and frequency sensitivity coefficient for both areas. The comparison of the regulator performance obtained from ALO is carried out with Genetic Algorithm (GA), Particle Swarm Optimization (PSO), and Gravitational Search Algorithm (GSA) based regulators. Different types of perturbations and load changes are incorporated to establish the efficacy of the obtained design. It is observed that ALO outperforms all three optimization methods for this real problem. The optimization performance of ALO is compared with other algorithms on the basis of standard deviations in the values of parameters and objective functions.
机译:本文介绍了最近引入的抗华优化器(ALO)的应用,以找到两域互连电力系统的成功自动生成控制(AGC)的热发电机的主要调速器环路。已经采用了两个标准目标函数,积分方误差(ISE)和积分时间绝对误差(ITAE)来执行此参数估计过程。在优化问题中改变了问题,以获得两个区域的整体增益,速度和频率灵敏度系数。从ALO获得的调节器性能的比较是以遗传算法(GA),粒子群优化(PSO)和基于重力搜索算法(GSA)的调节器进行的。结合了不同类型的扰动和负载变化,以确定所获得的设计的功效。观察到alo优于这个真正问题的所有三种优化方法。基于参数和客观函数值的标准偏差,将ALO的优化性能与其他算法进行比较。

著录项

  • 作者

    Esha Gupta; Akash Saxena;

  • 作者单位
  • 年度 2016
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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