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Decentralized adaptive fuzzy output feedback control of stochastic nonlinear large-scale systems with dynamic uncertainties

机译:具有动态不确定性的随机非线性大系统的分散自适应模糊输出反馈控制

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摘要

In this paper, centralized and decentralized adaptive fuzzy output feedback control schemes are investigated for a class of stochastic nonlinear interconnected large-scale systems with dynamic uncertainties and unmeasured states. Fuzzy systems are used to approximate the unknown nonlinear functions. Decentralized K-filters are designed to estimate the unmeasured states. An available dynamic signal is introduced to dominate the unmodeled dynamics. By combining dynamic surface control (DSC) technique with backstepping design, the condition in which the approximation errors are assumed to be bounded is avoided. Using the defined compact set in the stability analysis, the unknown smooth interconnections and black box functions are effectively dealt with. Using Ito formula and Chebyshev's inequality, it is shown that all the signals in the closed-loop system are bounded in probability, and the error signals are semi-globally uniformly ultimately bounded in mean square or the sense of four-moment. Simulation results demonstrate the effectiveness of the proposed approach. (C) 2015 Elsevier Inc. All rights reserved.
机译:针对一类具有动态不确定性和不可测状态的随机非线性互联大系统,研究了集中式和分散式自适应模糊输出反馈控制方案。模糊系统用于近似未知的非线性函数。分散式K滤波器用于估计未测状态。引入可用的动态信号来支配未建模的动态。通过将动态表面控制(DSC)技术与后推设计相结合,可以避免假定近似误差有界的情况。通过在稳定性分析中使用定义的紧定集,可以有效处理未知的平滑互连和黑盒函数。利用伊藤公式和切比雪夫不等式,证明了闭环系统中的所有信号都以概率为界,误差信号最终以均方或四矩的意义为半全局统一界。仿真结果证明了该方法的有效性。 (C)2015 Elsevier Inc.保留所有权利。

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