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A ROBUST ITERATIVE LEARNING OBSERVER-BASED FAULT DIAGNOSIS OF TIME DELAY NONLINEAR SYSTEMS

机译:基于鲁棒迭代学习的基于观测器的时滞非线性系统故障诊断

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An Iterative Learning Observer (ILO) updated successively and iteratively by immediate past system output error and ILO input is proposed for a class of time-delay nonlinear systems for the purpose of robust fault diagnosis. The proposed observer can estimate the system state as well as disturbances and actuator faults so that ILO can still track the post-fault system. In addition, the observer can attenuate slow varying output measurement disturbances. The ILO fault detection approach is then applied to automotive engine fault detection and estimation. Simulations show that the proposed ILO fault detection and estimation strategy is successful.
机译:针对一类时滞非线性系统,提出了一种鲁棒故障诊断的迭代学习观测器(ILO),该迭代学习器通过立即过去的系统输出误差和ILO输入来进行连续和迭代更新。提议的观察者可以估计系统状态以及干扰和执行器故障,以便ILO仍可以跟踪故障后系统。另外,观察者可以衰减缓慢变化的输出测量干扰。然后将ILO故障检测方法应用于汽车发动机故障检测和估计。仿真表明,所提出的ILO故障检测与估计策略是成功的。

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