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A Random Spatial lbest PSO-Based Hybrid Strategy for Designing Adaptive Fuzzy Controllers for a Class of Nonlinear Systems

机译:基于随机空间最优PSO的一类非线性系统设计自适应模糊控制器的混合策略

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摘要

In this paper, a new variant of particle swarm optimization (PSO), called random spatial lbest PSO model, is proposed and implemented for designing a newly devised stable adaptive hybrid fuzzy controller. The newly developed concurrent hybrid strategy for designing fuzzy controllers utilizes the conventional Lyapunov theory and the proposed PSO-based stochastic approach. The objective is to design a self-adaptive fuzzy controller online, optimizing both its structures and free parameters such that the designed controller can guarantee the desired stability and simultaneously provide satisfactory transients performance. The global version and two different lbest variants of PSO schemes and the proposed random spatial lbest model of PSO are employed for three popular, challenging, and nonlinear processes, and the proposed controller emerges as the superior algorithm in terms of tracking performance overall. These results aptly demonstrate the usefulness of the proposed approach.
机译:本文提出了一种新的粒子群优化算法(PSO),称为随机空间最优PSO模型,并用于设计新设计的稳定自适应混合模糊控制器。用于设计模糊控制器的新开发的并发混合策略利用了传统的Lyapunov理论和提出的基于PSO的随机方法。目的是在线设计自适应模糊控制器,同时优化其结构和自由参数,以使所设计的控制器能够保证所需的稳定性并同时提供令人满意的瞬态性能。 PSO方案的全局版本和两个不同的最理想变体以及拟议的PSO随机空间最理想模型被用于三种流行,挑战性和非线性过程,并且就整体跟踪性能而言,所提出的控制器成为一种出色的算法。这些结果恰当地证明了所提出方法的有效性。

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