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New Design Of Robust Kalman Filters For Fault Detection And Isolation

机译:用于故障检测和隔离的强大卡尔曼滤波器的新设计

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The results obtained recently using the reduced order observer (Koenig, 1998) are derived to obtain a fault detection and isolation (FDI) algorithm applicable to uncertain stochastic linearly discrete-time systems. The approach consists ofdecomposing the original system into several sub-systems, each being sensitive to a sub-set of faults defined beforehand, whilst remaining insensitive to the unknown inputs and other faults. Thereby the problem is reduced as the substate estimation of anunknown inputs-free reduced system (stochastic), which can be easily dealt with following the well-known Kalman filter theory (Graham, et al., 1984; Mehra, and Peschon, 1971). An extension of the chi-square test is proposed for FDI in dynamic systems with unknown inputs. A straightforward algorithm is developed, and the necessary and sufficient conditions for the convergence and stability of filters are established. The method developed has been applied to an illustrative example which shows that theoptimal filters can give an excellent state and fault estimation with minimum variance.
机译:终止使用减少的订单观察者(Koenig,1998)获得的结果以获得适用于不确定随机线性离散时间系统的故障检测和隔离(FDI)算法。该方法包括将原始系统分解为多个子系统,每个子系统都对事先定义的故障组敏感,同时剩余对未知输入和其他故障不敏感。因此,问题随着南京无输入的减少系统(随机)的变化估计而减少,这可以很容易地处理众所周知的卡尔曼滤波理论(Graham,等,1984; Mehra,1971年,1971年) 。在具有未知输入的动态系统中提出了CHI-Square测试的延伸。开发了一种直接的算法,建立了滤波器的收敛性和稳定性的必要和充分条件。已经开发的方法应用于说明性示例,示出了优化滤波器可以具有最小方差的优异状态和故障估计。

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