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Adaptive fuzzy synchronization for a class of fractional-order neural networks

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【作者】 刘恒李生刚王宏兴李冠军

【Author】 Heng Liu;Sheng-Gang Li;Hong-Xing Wang;Guan-Jun Li;College of Mathematics and Information Science,Shaanxi Normal Universtiy;Department of Applied Mathematics, Huainan Normal University;

【机构】 College of Mathematics and Information Science,Shaanxi Normal UniverstiyDepartment of Applied Mathematics, Huainan Normal University

【摘要】 In this paper, synchronization for a class of uncertain fractional-order neural networks with external disturbances is discussed by means of adaptive fuzzy control. Fuzzy logic systems, whose inputs are chosen as synchronization errors,are employed to approximate the unknown nonlinear functions. Based on the fractional Lyapunov stability criterion, an adaptive fuzzy synchronization controller is designed, and the stability of the closed-loop system, the convergence of the synchronization error, as well as the boundedness of all signals involved can be guaranteed. To update the fuzzy parameters,fractional-order adaptations laws are proposed. Just like the stability analysis in integer-order systems, a quadratic Lyapunov function is used in this paper. Finally, simulation examples are given to show the effectiveness of the proposed method.

【Abstract】 In this paper, synchronization for a class of uncertain fractional-order neural networks with external disturbances is discussed by means of adaptive fuzzy control. Fuzzy logic systems, whose inputs are chosen as synchronization errors,are employed to approximate the unknown nonlinear functions. Based on the fractional Lyapunov stability criterion, an adaptive fuzzy synchronization controller is designed, and the stability of the closed-loop system, the convergence of the synchronization error, as well as the boundedness of all signals involved can be guaranteed. To update the fuzzy parameters,fractional-order adaptations laws are proposed. Just like the stability analysis in integer-order systems, a quadratic Lyapunov function is used in this paper. Finally, simulation examples are given to show the effectiveness of the proposed method.

【基金】 Project supported by the National Natural Science Foundation of China(Grant Nos.11401243 and 61403157);the Foundation for Distinguished Young Talents in Higher Education of Anhui Province,China(Grant No.GXYQZD2016257);the Fundamental Research Funds for the Central Universities of China(Grant No.GK201504002);the Natural Science Foundation for the Higher Education Institutions of Anhui Province of China(Grant Nos.KJ2015A256 and KJ2016A665);the Natural Science Foundation of Anhui Province,China(Grant No.1508085QA16);the Innovation Funds of Graduate Programs of Shaanxi Normal University,China(Grant No.2015CXB008)
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2017年03期
  • 【分类号】TP183;TP13
  • 【被引频次】5
  • 【下载频次】46
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