DocumentCode :
1764593
Title :
Fault Diagnosis and Tolerant Control for Discrete Stochastic Distribution Collaborative Control Systems
Author :
Yuwei Ren ; Aiping Wang ; Hong Wang
Author_Institution :
Dept. of Inf. Sci. & Eng., Shandong Normal Univ., Jinan, China
Volume :
45
Issue :
3
fYear :
2015
fDate :
42064
Firstpage :
462
Lastpage :
471
Abstract :
This paper presents a novel fault-tolerant control method for a class of discrete-time and nonGaussian stochastic systems, where two subsystems are connected in series so as to operate in a collaborative way. For such systems, the output probability density function of the second subsystem is taken as the output of the whole system. The proposed method includes the design of a fault diagnosis (FD) algorithm for the first subsystem and the establishment of a fault-tolerant control algorithm for the second subsystem. At first, linear matrix inequality techniques are used to construct the FD algorithm for the first subsystem. Once the fault is diagnosed, a fault-tolerant control algorithm is designed using the well-known optimal norm-based iterative learning control approach. Different from the existing fault tolerant controller methods, the proposed fault-tolerant control is designed not for the faulty subsystem but for the healthy subsystem. As a result, when a fault occurs in the first subsystem, the reconfigured controller for the healthy second subsystem can accommodate the fault and guarantee that the whole system will still exhibit good operational performance. A simulated example is used to demonstrate the collaborative fault-tolerant control effect and desired results have been obtained.
Keywords :
discrete time systems; distributed control; fault tolerant control; iterative learning control; linear matrix inequalities; optimal control; stochastic systems; FD algorithm design; LMI; discrete stochastic distribution collaborative control systems; discrete-time systems; fault diagnosis; fault-tolerant control method; faulty subsystem; healthy second subsystem; linear matrix inequality techniques; nonGaussian stochastic systems; operational performance; optimal norm-based iterative learning control approach; probability density function; Algorithm design and analysis; Collaboration; Control systems; Fault tolerance; Splines (mathematics); Stochastic processes; Vectors; Collaborative fault-tolerant control; fault diagnosis (FD); iterative learning control (ILC); linear matrix inequality (LMI); output probability density function; stochastic distribution control (SDC);
fLanguage :
English
Journal_Title :
Systems, Man, and Cybernetics: Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
2168-2216
Type :
jour
DOI :
10.1109/TSMC.2014.2358635
Filename :
6918446
Link To Document :
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