DocumentCode :
3492570
Title :
Neuron Adaptive and Neural Network Based on Gradient Descent Searching Algorithm for Diagonalization of Relative Gain Sensitivity Matrix Decouple Control for MIMO System
Author :
Liang, Geng
Author_Institution :
North China Electr. Power Univ., Beijing
fYear :
2008
fDate :
6-8 April 2008
Firstpage :
368
Lastpage :
373
Abstract :
Some currently used algorithms for decoupling and control based on neural network are very complicated and massive online computations and operations are necessary, which causes problems in real-time control and practical implementation. A kind of fault-tolerant decouple and control algorithms for non-linear and time-varying MIMO systems based on neuron adaptive PID and neural network is proposed. Online control is implemented by neuron adaptive PID controller and online decouple is implemented by two-layered neural network based on gradient descent searching algorithms for diagonalization of relative gain sensitivity matrix. Decouple and control is implemented in parallel. Adaptive and self-organizing functions of neuron adaptive PID control is implemented with tuning of weight factors which are modified online with gradient descend algorithm. Stability analysis for the close loop system with neuron adaptive PID controller, online optimization algorithms for proportional factors and self-learning rates in neuron adaptive PID controller are given. A two-layered neural network decoupler is constructed. Self-learning algorithm based on diagonalization of relative gain sensitivity matrix is used in decouple network and gradient descent algorithm is used in self-learning process Real-time simulation results with the proposed decouple and control algorithm and other strategies, are given, analyzed and compared. Simulation results show the proposed algorithms are effective in improving dynamic performance of system and reducing couples between variables greatly. Meanwhile, strong fault-tolerant performance and satisfactory control effects are achieved.
Keywords :
MIMO systems; adaptive control; closed loop systems; fault tolerance; gradient methods; learning systems; matrix algebra; neurocontrollers; nonlinear control systems; optimisation; search problems; sensitivity analysis; three-term control; time-varying systems; close loop system; fault-tolerant decouple algorithm; gradient descent search algorithm; neural network; neuron adaptive PID control; nonlinear control system; online optimization algorithm; relative gain sensitivity matrix decouple control; self-learning process; stability analysis; time-varying MIMO system; Adaptive control; Adaptive systems; Computer networks; Control systems; MIMO; Neural networks; Neurons; Programmable control; Proportional control; Three-term control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Networking, Sensing and Control, 2008. ICNSC 2008. IEEE International Conference on
Conference_Location :
Sanya
Print_ISBN :
978-1-4244-1685-1
Electronic_ISBN :
978-1-4244-1686-8
Type :
conf
DOI :
10.1109/ICNSC.2008.4525242
Filename :
4525242
Link To Document :
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