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Nonfragile H ∞ fault detection for fuzzy discrete systems under stochastic communication protocol
Author(s) -
Ren Weijian,
Sun Shibo,
Huo Fengcai,
Lu Yang
Publication year - 2020
Publication title -
optimal control applications and methods
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.458
H-Index - 44
eISSN - 1099-1514
pISSN - 0143-2087
DOI - 10.1002/oca.2674
Subject(s) - control theory (sociology) , linear matrix inequality , fuzzy logic , fault detection and isolation , filter (signal processing) , fuzzy control system , markov chain , lyapunov function , computer science , discrete time and continuous time , fault (geology) , mathematics , mathematical optimization , nonlinear system , control (management) , actuator , artificial intelligence , statistics , physics , quantum mechanics , seismology , geology , computer vision , machine learning
Summary In this article, considering one type of fuzzy discrete‐time networked control systems (NCSs) under stochastic communication protocol (SCP), a fuzzy‐based nonfragile H ∞ filter is developed to detect the subsistent fault signal. The Takagi‐Sugeno (T‐S) mathematical model is employed to approximate the nonlinearities in the concerned fuzzy NCSs. The SCP is adopted to decide which sensor gets the access to the communication network at certain time instant, and the scheduling model of which is constructed as a Markov chain. Taking into account that the filter gain parameters in real practice may suffer fluctuations during the implementation, a modified nonfragile fuzzy filter is designed to detect the fault occurred in the signal transmission. By using the strong centralized stochastic analysis technique and the matrix calculation method, a Lyapunov function is adopted to derive sufficient conditions under which the filtering error dynamics is stochastically stable and the H ∞ performance is satisfied. Then, the desired nonfragile fuzzy fault detection filter is realized by solving a certain linear matrix inequality. Finally, the effectiveness of the develop fault detection scheme is verified in the simulation example.