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Adaptive fault diagnosis for a class of linear discrete-time systems via ħλ-order analysis

机译:基于ħλ阶分析的一类线性离散时间系统自适应故障诊断

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In this paper, for a class of discrete-time linear time-varying systems, a method for fault detection and diagnosis (FDD) based on adaptive estimation is investigated, and its theoretical properties in detecting faults are established rigorously via the so-called ħλ-order analysis. The system model considered is fundamental in term that the majority of practical nonlinear systems can be approximated by linear time-varying systems and the fault model used in this contribution represents the popular nature that usually only limited different kinds of faults with known effects may happen simultaneously with additive effects. The known effect of each fault type is abstracted by a function with respect to time, control inputs and states, and hence the fault detection problem is equivalently converted to a problem of parameter estimation. With the novel approach of ħλ order analysis introduced in a companion paper, we are able to identify the conditions to guarantee the convergence or boundedness of parameter estimation errors, in different cases of noise disturbance such as zero noise, bounded noise and diminishing noise.
机译:本文针对一类离散时间线性时变系统,研究了一种基于自适应估计的故障检测与诊断方法,并通过所谓的ħ来严格建立其在故障检测中的理论特性。 λ顺序分析。所考虑的系统模型是基本的,因为大多数实际的非线性系统都可以通过线性时变系统来近似,并且在此贡献中使用的故障模型代表了一种普遍的性质,即通常只有有限数量的具有已知影响的故障才能同时发生具有累加效果。通过针对时间,控制输入和状态的函数抽象出每种故障类型的已知效果,因此,故障检测问题等效地转换为参数估计问题。通过伴随论文中介绍的in λ阶分析的新方法,我们能够确定条件,以确保在噪声干扰(例如零噪声)的不同情况下,参数估计误差的收敛性或有界性,边界噪音和减少噪音。

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