Reinforcement Learning-based Adaptive Fuzzy Controller for Coupled-Tank Liquid System Optimized by Advanced Jaya Algorithm

Cao Van Kien, N. Dat, Nguyen Ngoc Son, Ho Pham Huy Anh
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Abstract

This paper proposes a new reinforcement learning-based Fuzzy controller optimized with an advanced Jaya algorithm used as a robust control approach applied in coupled-tank liquid system. First, the parameters of fuzzy controller are optimally identified using Jaya algorithm based on reinforcement learning. Second, an adaptive fuzzy-based sliding mode surface is innovatively designed to guarantee that the closed-loop system is asymptotically stable using Lyapunov stability principle. The proposed algorithm is applied to accurately and robustly control the liquid level of the coupled-tank system. The comparison results with inverse fuzzy controllers and adaptive fuzzy controllers are fully presented to demonstrate that the proposed controller ensures an efficient and robust approach to effectively control the highly nonlinear uncertain systems.
基于强化学习的先进Jaya算法优化的耦合罐液系统自适应模糊控制器
本文提出了一种新的基于强化学习的模糊控制器,该控制器采用先进的Jaya算法进行优化,作为一种鲁棒控制方法应用于耦合罐式液体系统。首先,采用基于强化学习的Jaya算法对模糊控制器参数进行最优辨识。其次,利用李雅普诺夫稳定性原理,创新地设计了基于自适应模糊的滑模曲面,保证了闭环系统的渐近稳定;应用该算法对耦合罐系统的液位进行了精确、鲁棒控制。与逆模糊控制器和自适应模糊控制器的比较结果充分表明,所提出的控制器能够有效地控制高度非线性不确定系统。
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