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Article type: Research Article
Authors: Chen, Der-Faa | Cheng, An-Banga | Chiu, Shen-Pao-Chia | Ting, Jung-Chua;
Affiliations: [a] Department of Industrial Education and Technology, National Changhua University of Education, Changhua, Taiwan
Correspondence: [*] Corresponding author: Jung-Chu Ting, Department of Industrial Education and Technology, National Changhua University of Education, Changhua, 500, Taiwan. Tel.: +886 4 7232105; E-mail: d0331019@gm.ncue.edu.tw
Abstract: The continuously variable transmission (CVT) clumped system with lots of nonlinear uncertainties operated by the six-phase induction motor (SIM) is lacking in good control performance for using the linear control. In light of good ability of learning for nonlinear uncertainties, the sage dynamic control system using mixed modified recurrent Rogers–Szego polynomials neural network (MMRRSPNN) control and revised grey wolf optimization (RGWO) with two adjusted factors is proposed to acquire better control performance. The MMRRSPNN control and RGWO with two adjusted factors can execute intendant control, modified recurrent Rogers–Szego polynomials neural network (MRRSPNN) control with a fitted learning rule, and repay control with an evaluated rule. In addition, in the light of the Lyapunov stability theorem, the fitted learning rule in the MRRSPNN and the evaluated rule of the repay control are founded. Besides, the RGWO with two adjusted factors yields two changeable learning rates for two weights parameters to find two optimal values and to speed-up convergence of two weights parameters. Experimental results in comparisons with those control systems are demonstrated to confirm that the proposed control system can achieve better control performance.
Keywords: Continuously variable transmission, six-phase induction motor, Rogers–Szego polynomials neural network, grey wolf optimization, Lyapunov stability theorem
DOI: 10.3233/JAE-201512
Journal: International Journal of Applied Electromagnetics and Mechanics, vol. 65, no. 3, pp. 579-608, 2021
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