Discrete-time backstepping induction motor control using a sensorless recurrent neural observer

Alma Y. Alanís, Edgar Nelson Sanchez, Alexander G. Loukianov · 2007

This paper deals with the problem of controlling the discrete-time induction motor model based on a sensorless observer with only currents measurements. First a recurrent high order neural observer for the unknown plant is designed, then a high order neural network is used to emulate a control law designed by the backstepping technique. The learning algorithm for both neural networks is based on an extended Kalman filter. The applicability of the proposed observer-controller scheme is tested via simulation.

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