基于模型的SIMO神经网络控制系统设计体系结构

S. Valeev, N. Kondratyeva
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引用次数: 0

摘要

将基于模型的体系结构方法应用于非线性控制对象的控制系统设计中,考虑了设计问题。讨论了神经网络的应用,神经网络的一个特点是具有单输入多输出的结构。考虑了在构造动态多模控制对象的控制系统的体系结构方法框架中使用这类神经网络作为砖块的可能性。讨论了一个针对非线性控制对象的容错控制系统的开发实例。作为控制系统故障的一种模型,提出了一种决策树模型,利用决策树对故障图像在模态空间和控制误差的行为进行逼近
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Model-Based Architecture for Control System Design with Application of SIMO Neural Network
The design problem is considered built on the model-based architecture approach as applied to the design of control systems for nonlinear control objects. The application of a neural network is discussed, a feature of which is the structure presented in the single input multiple output class. The possibility of using this class of a neural network as a brick in the framework of an architectural approach for constructing control systems for dynamic multi-mode control objects is considered. An example of developing a fault-tolerant control system for a nonlinear control object is discussed. As a model of control system fault, it is proposed to use a decision tree, with the help of which the approximation of the fault image presented in the space of modes and behavior of the control error is performed
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