故障和状态估计的模糊增强状态卡尔曼观测器

I. Maalej, D. B. H. Abid, C. Rekik, N. Derbel
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引用次数: 3

摘要

研究了非线性随机时变系统的同时状态估计和故障估计问题。提出了一种基于模糊增广状态卡尔曼观测器(FASKO)的方法来解决上述问题。它由模糊高木Sugeno动态模型与卡尔曼滤波理论相结合而成。在模糊模型的每个局部线性模型上,都使用了卡尔曼滤波方程。并将其性能与经典增广状态卡尔曼滤波进行了比较。对三罐系统进行了仿真,验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fuzzy augmented state kalman observer for fault and state estimation
The paper studies the problem of simultaneously state and fault estimation of the non linear stochastic time varying system. An approach based on fuzzy augmented state kalman observer (FASKO) is developed to solve the problem stated above. It consist of combining fuzzy Takagi Sugeno dynamic model with the kalman filter theory. At each local linear model of the fuzzy model, Kalman filter equations are used.The performance of the FASKO have been compared to the classical augmented state kalman filter. Simulation results performed on three tank system, illustrate the effeciency of the proposed approach.
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