4.6 Article

Robust State/Fault Estimation and Fault-Tolerant Control in Discrete-Time T-S Fuzzy Systems: An Embedded Smoothing Signal Model Approach

Journal

IEEE TRANSACTIONS ON CYBERNETICS
Volume 52, Issue 7, Pages 6886-6900

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TCYB.2020.3042984

Keywords

Estimation; Observers; Smoothing methods; Mathematical model; Fuzzy systems; Linear matrix inequalities; Extrapolation; Discrete-time Takagi-Sugeno (T-S) fuzzy systems; fault-tolerant control; fuzzy Luenberger observer; robust H∞ control; smoothing signal model; state; fault estimation

Funding

  1. Ministry of Science and Technology of Taiwan [MOST 1082221-E-007-099-MY3]

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This study proposes a simple design method for robust state/fault estimation and fault-tolerant control of discrete-time Takagi-Sugeno fuzzy systems. By embedding novel smoothing signal models, the study achieves robust H infinity state/fault estimation of nonlinear systems, and utilizes Luenberger-type observers for simultaneous estimation of state/fault signals. Additionally, the design is transformed into a linear matrix inequality-constrained optimization problem for efficient implementation.
This study investigates a simple design method of the robust state/fault estimation and fault-tolerant control (FTC) of discrete-time Takagi-Sugeno (T-S) fuzzy systems. To avoid the corruption of the fault signal on state estimation, a novel smoothing signal model of fault signal is embedded in the T-S fuzzy model for the robust H infinity state/fault estimation of the discrete-time nonlinear system with external disturbance by the traditional fuzzy observer. When the component and sensor faults are generated from different fault sources, two smoothing signal models for component and sensor faults are both embedded in the T-S fuzzy system for robust state/fault estimation. Since the nonsingular smoothing signal model and T-S fuzzy model are augmented together for signal reconstruction, the traditional fuzzy Luenberger-type observer can be employed to robustly estimate state/fault signal simultaneously from the H infinity estimation perspective. By utilizing the estimated state and fault signal, a traditional H infinity observer-based controller is also introduced for the FTC with powerful disturbance attenuation capability of the effect caused by the smoothing model error and external disturbance. Moreover, the robust H infinity observer-based FTC design is transformed into a linear matrix inequality (LMI) -constrained optimization problem by the proposed two-step design procedure. With the help of LMI TOOLBOX in MATLAB, we can easily design the fuzzy Luenberger-type observer for efficient robust H infinity state/fault estimation and solve the H infinity observer-based FTC design problem of discrete nonlinear systems. Two simulation examples are given to validate the performance of state/fault estimation and FTC of the proposed methods.\enlargethispage-8pt

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