학술논문

H-/L∞ UIO-Based Robust Fault Diagnosis Design in Finite Frequency Domain for Discrete-Time Systems
Document Type
Conference
Source
2022 41st Chinese Control Conference (CCC) Chinese Control Conference, 2022 41st. :3978-3983 Jul, 2022
Subject
Computing and Processing
Robotics and Control Systems
Signal Processing and Analysis
Transportation
Fault diagnosis
Discrete-time systems
Actuators
Sufficient conditions
Sensitivity
Frequency-domain analysis
Observers
Unknown input observer (UIO)
Discrete-time System
Finite frequency domain
Linear matrix inequality (LMI)
Language
ISSN
1934-1768
Abstract
This study investigates the problem of robust fault diagnosis for discrete-time systems subjected to actuator faults and unknown input disturbances. A novel $H-/L_{\infty}$ unknown input observer (UIO) based on the generalized Kalman-Yakubovich-Popov (GKYP) lemma is presented by decoupling the partial unknown input disturbances and attenuating the unknown input disturbances that cannot be decoupled. Then, the H- performance index in the finite frequency domain is used to measure the fault sensitivity and the $L_{\infty}$ performance index is used to reduce the influence of unknown input disturbances on fault diagnosis results and ensure the robustness performance. A residual evaluation function and a time-varying threshold are presented based on the $L_{\alpha}$ performance index. In addition, sufficient conditions for designing the $H-/L_{\infty}$ UIO are proposed and transformed into linear matrix inequalities (LMIs) that can be easily solved. Finally, simulations of a simple discrete-time system are used to validate the effectiveness of the developed $H-/L_{\infty}$ UIO.