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Direct-inverse modeling control based on interval type-2 fuzzy neural network

机译:基于区间2型模糊神经网络的直接逆建模控制

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This paper presents direct-inverse modeling control method based on interval type-2 fuzzy neural networks. This control method includes two phases, i.e., structure identification and parameters learning. In structure identification phase, hierarchical fuzzy clustering method is used to identify the initial structure of interval type-2 fuzzy neural network at first. Then, the uncertain parameters of Gauss membership functions of interval type-2 fuzzy sets are decided. In parameters learning phases, BP algorithm of interval type-2 fuzzy neural networks is adopted to adjust the free parameters of precondition and consequence. At last, inverse model of controlled plant is identified in the off-line manner as the controller. The simulation experiment of a single-input and single-output nonlinear system shows that this proposed control method is effective.
机译:提出了一种基于区间2型模糊神经网络的直接逆建模控制方法。该控制方法包括两个阶段,即结构识别和参数学习。在结构识别阶段,首先采用层次模糊聚类方法识别区间2型模糊神经网络的初始结构。然后,确定区间类型为2的模糊集的高斯隶属函数的不确定参数。在参数学习阶段,采用区间2型模糊神经网络的BP算法来调整前提和结果的自由参数。最后,以离线方式将受控工厂的逆模型识别为控制器。单输入单输出非线性系统的仿真实验表明,该控制方法是有效的。

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