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Fuzzy rules emulated networks with adaptive controller for nonaffine discrete-time systems

机译:非仿射离散系统的自适应控制器模糊规则仿真网络

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摘要

An adaptive controller for a class of nonaffine discrete-time systems is developed as the main contribution of this article. With the system's properties obtained by the second-order Taylor expansion, muti-input fuzzy rules emulated networks or MIFRENs are implemented to approximate the unknown plant under control. The closed-loop performance is guaranteed by an on-line learning algorithm developed to tune the parameters inside MIFRENs. According to the computation management, only linear parameters are adjusted with the constraints issued by the main theorem. Furthermore, the suitable learning rate can be determined with the information provided by the MIFREN approximation. The computer simulation system demonstrates the validation of the proposed controller. Moreover, the system robustness is described both nominal system and uncertain system.
机译:一类非仿射离散时间系统的自适应控制器是本文的主要贡献。利用通过二阶泰勒展开获得的系统特性,实施了多输入模糊规则仿真网络或MIFREN,以近似控制下的未知植物。通过对MIFREN内部参数进行开发的在线学习算法,可以保证闭环性能。根据计算管理,只有线性参数会根据主定理发布的约束条件进行调整。此外,可以通过MIFREN逼近提供的信息确定合适的学习率。计算机仿真系统演示了所提出控制器的有效性。此外,系统的鲁棒性被描述为标称系统和不确定系统。

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