DocumentCode :
315190
Title :
A new method for the analysis of neural reference model control
Author :
Wigbers, Michael ; Riedmiller, Martin
Author_Institution :
Neurotec Hochtechnol., Friedrichshafen, Germany
Volume :
2
fYear :
1997
fDate :
9-12 Jun 1997
Firstpage :
739
Abstract :
In recent years there has been much effort to develop the theoretical aspects of neural MRAC-control, that is to find conditions under which an unknown process can be identified by an input-output model and controllers can be trained by gradient descent. On the other hand, the application of neural network techniques to real world control of nonlinear dynamical systems has been of substantial interest. Since the theoretical conditions that ensure controllability and the applicability of indirect adaptive control are hard to verify in practice, the success of controller training is mostly shown by testing relevant situations. We trained a controller for a subsystem of a spark ignition engine by dynamic backpropagation and various truncated gradient algorithms. Afterwards we related the neural MRAC-approach to pole placement and linearization techniques in order to show the successful training by pole analysis of the completely trained loop. This is a new method to verify the plausibility of the adaptation process and the trained regulator
Keywords :
backpropagation; feedforward neural nets; internal combustion engines; linearisation techniques; model reference adaptive control systems; neurocontrollers; nonlinear dynamical systems; pole assignment; state feedback; MRAC; adaptive control; closed loop systems; controllability; dynamic backpropagation; feedforward neural nets; linearization techniques; neural reference model control; neurocontrol; nonlinear dynamical systems; pole placement; spark ignition engine; state feedback; truncated gradient algorithms; Adaptive control; Control systems; Controllability; Engines; Ignition; Neural networks; Nonlinear control systems; Nonlinear dynamical systems; Sparks; Testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks,1997., International Conference on
Conference_Location :
Houston, TX
Print_ISBN :
0-7803-4122-8
Type :
conf
DOI :
10.1109/ICNN.1997.616114
Filename :
616114
Link To Document :
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