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Kalman filter for parametric fault detection: an internal model principle-based approach

机译:用于参数故障检测的卡尔曼滤波器:基于内部模型原理的方法

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The paramount importance of fault detection (FD) in complex engineering systems has undoubtedly been the main driver behind the development of a plethora of techniques in the FD area. In this study, the authors propose an internal model principle-based Kalman filter (IMP-KF) structure for use in the detection of parametric faults. The authors show that the closed-loop structure of the IMP-KF is indeed a necessary and sufficient condition for generating residuals upon which the FD process hinges. They advocate a residual generator structure similar to that used in the standard Kalman filtering (KF), and judiciously exploit the non-robustness to model mismatch of the proposed IMP-KF scheme to detect faults in the presence of noise and disturbances. With no model mismatch, the KF residual's whiteness is exploited to derive a composite hypothesis testing that accounts for a low probability for false alarm and a high probability of correct decision for various reference inputs. The proposed scheme was successfully evaluated on both simulated and physical systems.
机译:毫无疑问,故障检测(FD)在复杂工程系统中的重要性一直是FD领域中众多技术发展的主要推动力。在这项研究中,作者提出了一种基于内部模型原理的卡尔曼滤波器(IMP-KF)结构,用于检测参数性故障。作者表明,IMP-KF的闭环结构确实是产生FD过程所依赖的残差的必要和充分条件。他们提倡一种类似于标准卡尔曼滤波(KF)中使用的残差发生器结构,并明智地利用非稳健性来对提出的IMP-KF方案的失配进行建模,以在存在噪声和干扰的情况下检测故障。在没有模型失配的情况下,利用KF残差的白度来得出复合假设检验,该假设解释了针对各种参考输入的低错误警报概率和高正确决策概率。所提出的方案已在模拟系统和物理系统上成功评估。

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