Robust adaptive control for complex systems employing ANN emulation of nonlinear functions

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IEEE

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info:eu-repo/semantics/closedAccess

Özet

A new robust adaptive control design synthesis, which employs both high-order neural networks and mathanalytical results, for a class (if complex nonlinear mechatronic systems possessing similarity property has been derived. This approach makes in adequate use of the structural feature of composite similarity systems and neural networks to resolve the representation issue of uncertainty interconnections and subsystem gains by on-line updating the weights. This synthesis (foes guarantee the real stability in closed-loop but requires skills to obtain larger attraction domains. Mechatronic example of an axis-tray drive system, possessing uncertainties, is used to illustrate the proposed technique.

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Adaptive Control, Complex Systems, Function Emulation, Neural Networks, Stability, Superposition, Theorem

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8th Seminar on Neural Network Applications in Electrical Engineering

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DIMIROVSKI, G. M., JING, Y. W., ZHANG, Y., VUKOBRATOVIC, M. K. (2006). Robust adaptive control for complex systems employing ANN emulation of nonlinear functions. 8th Seminar on Neural Network Applications in Electrical Engineering, pp. 87-92.

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