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A fault detection and isolation filter design method for Markov jump linear parameter-varying systems

机译:马尔可夫跳跃线性参数变化系统的故障检测与隔离滤波器设计方法

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摘要

A fault detection and isolation (FDI) filter design method is proposed for linear parameter-varying (LPV) systems, which are subject to abrupt changes in their structure. Such a phenomenon is modeled by a finite state Markov chain whose outcome is supposed to be directly available along with its rates transition matrix. The FDI filter is designed as a bank of H-/H_∞ Luenberger observers, derived by optimizing frequency conditions that ensure guaranteed levels of disturbance rejection, fault sensitivity and are capable to discriminate anomalous events belonging to different fault classes. It is proved that, by resorting to stochastic stability concepts, the design method can be recast as a linear matrix inequality programming program in the observer bank gains. The resulting residual generator is a jump parameter-dependent observer jointly exploiting the available measures on the deterministic plant parameter and on the instantaneous Markov chain realization. An FDI threshold logic is also proposed in order to reduce the generation of false alarms. The effectiveness of the design technique is illustrated via a numerical example.
机译:提出了一种线性变化的系统的故障检测与隔离(FDI)滤波器设计方法。这种现象是通过有限状态马尔可夫链建模的,其结果被认为可以与其速率转换矩阵一起直接获得。 FDI滤波器被设计为一组H- /H_∞Luenberger观测器,通过优化频率条件而得出,这些条件可确保保证的抗干扰性,故障敏感性并能够区分属于不同故障类别的异常事件。实践证明,利用随机稳定性的概念,可以将设计方法改写为线性矩阵不等式编程程序,从而提高观测者库的收益。产生的残差生成器是一个依赖于跳跃参数的观察者,共同利用确定性工厂参数和瞬时马尔可夫链实现上的可用度量。还提出了FDI阈值逻辑,以减少错误警报的产生。通过数值示例说明了设计技术的有效性。

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