Affiliation:
1. Department of Mechanical and Electrical Engineering, Shandong University of Science and Technology, Tai’an 271019, China
Abstract
An adaptive control based on a new Multiscale Chebyshev Neural Network (MSCNN) identification is proposed for the backlash-like hysteresis nonlinearity system in this paper. Firstly, a MSCNN is introduced to approximate the backlash-like nonlinearity of the system, and then, the Lyapunov theorem assures the identification approach is effective. Afterward, to simplify the control design, tracking error is transformed into a scalar error with Laplace transformation. Therefore, an adaptive control strategy based on the transformed scalar error is proposed, and all the signals of the closed-loop system are uniformly ultimately bounded (UUB). Finally, simulation results have demonstrated the performance of the proposed control scheme.
Funder
Tai’an Science and Technology development program
Subject
Multidisciplinary,General Computer Science
Cited by
4 articles.
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