直流电动机自适应神经模糊控制器的建模与仿真

Y. Al-Mashhadany
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引用次数: 19

摘要

经典控制器算法既简单又可靠,在过去的60年里已经应用于各种工业应用中的数千个控制回路(89%-90%的应用)。本文提出了将模糊逻辑算法与五层人工神经网络(ANN)结构相结合的神经模糊控制器。采用自适应神经模糊推理系统(ANFIS)代替传统控制器,将经典控制器数据库对ANFIS控制器的辨识过程作为该系统控制过程的初始条件。利用Matlab Ver. 2010a对设计进行了仿真。作为案例研究,我们将考虑直流电动机驱动(连续/离散)。得到的结果令人满意,说明了ANFIS控制器对动态高非线性系统的控制能力,并且通过调整模糊控制器可以获得很好的控制效果。
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Modeling and simulation of Adaptive Neuro-Fuzzy controller for Chopper-Fed DC Motor Drive
The classical controllers algorithm is both simple and reliable, and has been applied to thousands of control loops in various industrial applications over the past 60 years (89%-90% of applications). This paper presents the neuro-fuzzy controller incorporates fuzzy logic algorithm with a five-layer artificial neural network (ANN) structure. The conventional controller is replaced by Adaptive Neuro-Fuzzy Inference System (ANFIS) before that made the identification process of ANFIS controller by the data base of classical controller to be consider as initial condition for controlling process with this system. The simulation of the design is achieved by using Matlab Ver. 2010a. Chopper-Fed DC Motor Drive (Continuous / Discrete) are consider as case study. Satisfactory results are obtained explaining the ability of ANFIS controller to control with the dynamic high nonlinear system and can be get very good results by tunes the fuzzy controller.
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