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Fault detection and diagnosis for a class of nonlinear MIMO uncertain stochastic systems with output PDFs

机译:一类带有输出PDF的非线性MIMO不确定随机系统的故障检测与诊断

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In this paper, a high-gain nonlinear observer based fault detection and diagnosis (FDD) approach is proposed for a general class of nonlinear uncertain systems with measured output probability density functions (PDFs). The objective of the presented FDD algorithm is to use the measured output probability density functions (PDFs) and the input of the system to construct a exponential observer-based residual generator such that the fault can be detected and diagnosed. The main result is given in a constructive manner by developing a novel nonlinear observer, without resort to any linearization. By a coordinates transformation, the design of the proposed observer does not necessitate the resolution of kind of linear matrix inequalities (LMIs) and its expression is explicitly given. The exponential convergence of the errors in the presence of parameters uncertainties is proved to guarantee the fastness of the proposed fault diagnosis scheme. Furthermore, the bound of the estimation errors in the presence the faults is minimized by appropriately choosing the parameters of the presented observer. Finally a simulation example is given to illustrate the efficiency of the proposed fault detection and diagnosis method.
机译:本文针对具有测量的输出概率密度函数(PDF)的一类通用非线性不确定系统,提出了一种基于高增益非线性观测器的故障检测与诊断(FDD)方法。提出的FDD算法的目的是使用测得的输出概率密度函数(PDF)和系统的输入来构建基于指数观测器的残差生成器,以便可以检测和诊断故障。通过开发一种新颖的非线性观测器而无需任何线性化,以建设性的方式给出了主要结果。通过坐标变换,提出的观测器的设计不需要解析线性矩阵不等式(LMI)的类型,并且明确给出了它的表达式。在参数不确定的情况下,误差的指数收敛被证明可以保证所提出的故障诊断方案的快速性。此外,通过适当地选择所呈现的观察者的参数,将在存在故障的情况下的估计误差的范围最小化。最后给出了一个仿真实例,说明了所提出的故障检测与诊断方法的有效性。

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