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A robust fault detection and isolation method via sliding mode observer

机译:通过滑模观测器的鲁棒故障检测和隔离方法

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A robust fault detection and isolation (FDI) approach for a class of nonlinear systems with uncertainty was presented. The FDI scheme was based on sliding mode observer, which was robust against system uncertainty. Fault detection can be realized by use of sliding boundary size. When the fault had been detected, the estimate part in the observer for the fault can be enabled. A radial basis function (RBF) neural network was used to approximate the fault, so making the fault isolation a simple task. The theoretic analysis guaranteed the convergence of the observer. Simulation results show the feasibility of the proposed approach.
机译:针对一类具有不确定性的非线性系统,提出了一种鲁棒的故障检测与隔离(FDI)方法。 FDI方案基于滑模观测器,对系统不确定性具有鲁棒性。可以通过使用滑动边界大小来实现故障检测。当检测到故障时,可以启用故障观察器中的估计部分。使用径向基函数(RBF)神经网络来近似故障,因此使故障隔离成为一项简单的任务。理论分析保证了观察者的收敛。仿真结果表明了该方法的可行性。

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