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Enhanced Adaptive Fuzzy Control With Optimal Approximation Error Convergence

机译:具有最佳逼近误差收敛的增强型自适应模糊控制

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摘要

In this paper, an enhanced adaptive fuzzy control (AFC) strategy with guaranteed convergence of an optimal fuzzy approximation error (FAE) is presented for a class of uncertain nonlinear systems in the general Brunovsky form. Based on the fuzzy logic system (FLS) with variable universes of discourse, relaxed sufficient conditions that guarantee the optimal FAE being convergent are given, and the upper bound of the optimal FAE is obtained. The control singularity problem resulting from the unknown affine term is resolved by a novel fuzzy approximation equation, and the parameter adaptive law of the FLS is derived by the Lyapunov synthesis. By means of the optimal FAE bound result, it is proved that the closed-loop system achieves partially asymptotic stability under a certain selection of control parameters. The proposed approach retains all advantages of a previous similar approach under relaxed constraint conditions. Thus, it provides a more flexible solution to the AFC with optimal FAE convergence. Simulation studies have demonstrated high-precision tracking performance with smooth control input of the proposed approach.
机译:本文针对一类不确定的非线性系统,提出了一种具有最优模糊逼近误差(FAE)收敛性的增强自适应模糊控制(AFC)策略。基于具有可变话语范围的模糊逻辑系统(FLS),给出了保证最优FAE收敛的宽松充分条件,并获得了最优FAE的上限。通过一个新的模糊逼近方程解决了未知仿射项引起的控制奇异性问题,并通过Lyapunov综合推导了FLS的参数自适应律。通过最优FAE约束结果,证明了闭环系统在一定控制参数选择下达到了部分渐近稳定性。所提出的方法在宽松的约束条件下保留了以前类似方法的所有优点。因此,它为具有最佳FAE收敛的AFC提供了更灵活的解决方案。仿真研究表明,采用所提出方法的平滑控制输入可以实现高精度的跟踪性能。

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