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Design of fractional order PID controller for automatic regulator voltage system based on multi-objective extremal optimization

机译:基于多目标极值优化的自动调节器电压系统分数阶PID控制器设计

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摘要

Design of an effective and efficient fractional order PID (FOND) controller, as a generalization of a standard PID controller based on fractional order calculus, for an industrial control system to obtain high-quality performances is of great theoretical and practical significance. From the perspective of multi-objective optimization, this paper presents a novel FOPID controller design method based on an improved multi-objective extremal optimization (MOEO) algorithm for an automatic regulator voltage (AVR) system. The problem of designing FOND controller for AVR is firstly formulated as a multi-objective optimization problem with three objective functions including minimization of integral of absolute error (IAE), absolute steady-state error, and settling time. Then, an improved MOEO algorithm is proposed to solve this problem by adopting individual-based iterated optimization mechanism and polynomial mutation (PLM). From the perspective of algorithm design, the proposed MOEO algorithm is relatively simpler than NSGA-II and single-objective evolutionary algorithms, such as genetic algorithm (GA), particle swarm optimization (PSO), chaotic anti swarm (CAS) due to its fewer adjustable parameters. Furthermore, the superiority of proposed MOEO-FOPID condoner to NSGA-II-based FOPID, single-objective evolutionary algorithms-based FOPID controllers, MOEO-based and NSGA-II-based PID controllers is demonstrated by extensive experimental results on an AVR system in terms of accuracy and robustness. (C) 2015 Elsevier B.V. All rights reserved.
机译:作为基于分数阶微积分的标准PID控制器的推广,设计一种有效的分数阶PID(FOND)控制器对于工业控制系统获得高质量的性能具有重要的理论和现实意义。从多目标优化的角度出发,提出了一种基于改进的多目标极值优化(MOEO)算法的自动调节器电压(AVR)系统FOPID控制器设计方法。首先将AVR的FOND控制器设计问题表述为具有三个目标函数的多目标优化问题,包括最小化绝对误差(IAE)积分,绝对稳态误差和建立时间。然后,提出了一种改进的MOEO算法,通过采用基于个体的迭代优化机制和多项式变异(PLM)来解决该问题。从算法设计的角度来看,提出的MOEO算法比NSGA-II和遗传算法(GA),粒子群优化(PSO),混沌反群(CAS)等单目标进化算法相对简单。可调参数。此外,通过在AVR系统上的大量实验结果证明了拟议的MOEO-FOPID密码子优于基于NSGA-II的FOPID,基于单目标进化算法的FOPID控制器,基于MOEO和基于NSGA-II的PID控制器。准确性和鲁棒性。 (C)2015 Elsevier B.V.保留所有权利。

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