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Adaptive Control of Nonlinear Systems Using Multiple Models with Second-Level Adaptation

机译:二级适应多种型号的非线性系统自适应控制

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Adaptive control of a class of single-input single-output (SISO) nonlinear systems with large parametric uncertainties has been investigated in this paper. Control of nonlinear systems using adaptive schemes suffers from the drawback of poor transient responses in parametrically uncertain environment. The use of multiple models presents a solution to this problem. In this paper, state transformation and feedback linearization have been used to algebraically transform nonlinear system dynamics to linear ones. The unknown parameter vector for the plant is assumed to be bounded within a set of compact parameter space. Indirect adaptive control using multiple identification models has been used to improve transient response and convergence time. The observer-based identifier model is used for all these models. Lyapunov stability analysis is used to obtain tuning laws for estimator parameters. Further, second-level adaptation using combination of all the adaptive estimator models is used. Simulations have demonstrated that multiple models with second-level adaptation yield better transient performance with faster convergence.
机译:本文研究了一类单输入单输出(SISO)非线性系统的自适应控制,本文已经研究了具有大的参数不确定性的大型参数不确定性。使用自适应方案的非线性系统控制在参数不确定环境中缺乏瞬态响应的缺点。使用多种型号对此问题提供了解决方案。在本文中,状态转换和反馈线性化已被用于代数将非线性系统动态转换为线性系统。假设工厂的未知参数向量被界定在一组紧凑的参数空间内。使用多种识别模型的间接自适应控制已被用于改善瞬态响应和收敛时间。基于观察者的标识符模型用于所有这些模型。 Lyapunov稳定性分析用于获得估算器参数的调整规律。此外,使用使用所有自适应估计模型的组合的第二级适应。模拟已经证明,具有第二级适应的多种型号产生更好的瞬态性能,更快的收敛性。

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