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Adaptive fault compensation control for a class of nonlinear systems with unknown time-varying delayed faults

机译:一类具有未知时变时滞故障的非线性系统的自适应故障补偿控制

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摘要

An adaptive approximation design for the fault compensation (FC) control is addressed for a class of nonlinear systems with unknown multiple time-delayed nonlinear faults. The magnitude and occurrence time of the multiple faults with unknown time-varying delays are unknown. The function approximation technique using neural networks is employed to adaptively approximate the unknown nonlinear effects and changes in model dynamics due to the time-delayed faults. We design an adaptive memoryless FC control system with a prescribed performance bound to compensate the faults and to guarantee the transient performance of the tracking error from unexpected changes of system dynamics. The adaptive laws for neural networks and the bound of residual approximation errors are derived using the Lyapunov stability theorem, which are used for proving that the tracking error is preserved within the prescribed performance bound regardless of unknown multiple time-delayed nonlinear faults. Simulation examples are presented for illustrating the effectiveness of the proposed control methodology
机译:针对一类具有未知多重时滞非线性故障的非线性系统,提出了一种用于故障补偿(FC)控制的自适应近似设计。具有未知时变延迟的多个故障的大小和发生时间是未知的。利用神经网络的函数逼近技术被用来自适应地逼近未知的非线性效应和由于时延故障引起的模型动力学变化。我们设计了具有规定性能的自适应无记忆FC控制系统,以补偿故障并保证由于系统动态的意外变化而引起的跟踪误差的瞬态性能。利用Lyapunov稳定性定理推导了神经网络的自适应定律和残差近似误差的界线,该定理用于证明跟踪误差被保留在规定的性能范围内,而与未知的多个时滞非线性故障无关。仿真示例用于说明所提出的控制方法的有效性

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