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Fuzzy fault-detection filtering for uncertain stochastic time-delay systems with randomly missing data

机译:随机丢失数据的不确定随机时滞系统的模糊故障检测滤波

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This paper is concerned with the robust H fault-detection problem for a class of uncertain discrete stochastic Takagi-Sugeno fuzzy systems with time-varying delays, parameter uncertainties and randomly missing data in a network environment. We deal with the fault detection by designing fuzzy-rule-independent and fuzzy-rule-dependent fault detection filters, which guarantee the fault detection system is not only robustly stochastically stable, but also satisfies a prescribed H performance level for all admissible uncertainties. Lyapunov stability theory and the linear matrix inequality technique are utilized to derive novel conditions for the desired fault detection filters. The residual evaluation function and detection threshold are also discussed in order to detect the occurrence of faults. A numerical example and a nonlinear mass-spring-damper mechanical system are provided to demonstrate that our fault-detection system is sensitive to faults and simultaneously robust to disturbances.
机译:本文涉及网络环境中一类时变时滞,参数不确定和数据随机丢失的不确定离散随机Takagi-Sugeno模糊系统的鲁棒H故障检测问题。我们通过设计与模糊规则无关和与模糊规则有关的故障检测滤波器来处理故障检测,这保证了故障检测系统不仅鲁棒地随机稳定,而且对于所有可容许的不确定性都满足规定的H性能水平。利用李雅普诺夫稳定性理论和线性矩阵不等式技术来推导所需故障检测滤波器的新条件。还讨论了剩余评估函数和检测阈值,以便检测故障的发生。提供了一个数值示例和一个非线性质量弹簧-阻尼器机械系统,以证明我们的故障检测系统对故障敏感,同时对干扰具有鲁棒性。

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