Fault diagnosis and fault tolerant control for the non-Gaussian time-delayed stochastic distribution control system

L. Yao, Bo Peng
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引用次数: 26

Abstract

The main feature of the stochastic distribution control system is the output probability density function rather than the real value. The effectiveness of the fault detection, diagnosis and fault tolerant control will be reduced when time delay exists in control systems. In this paper, the rational square-root B-spline is used to approach the output probability density function. In order to diagnose the fault in the dynamic part of such systems, it is then followed by the novel design of a nonlinear neural network observer-based fault diagnosis algorithm. Based on the fault diagnosis information, a new fault tolerant control based on PI tracking control scheme is designed to make the post-fault probability density function still track the given distribution. Finally, simulations for the particle distribution control problem are given to show the effectiveness of the proposed approach.
非高斯时滞随机分布控制系统的故障诊断与容错控制
随机分布控制系统的主要特征是输出概率密度函数而不是实值。当控制系统中存在时滞时,会降低故障检测、诊断和容错控制的有效性。本文采用有理平方根b样条逼近输出概率密度函数。为了对系统的动态部分进行故障诊断,设计了一种基于非线性神经网络观测器的故障诊断算法。基于故障诊断信息,设计了一种新的基于PI跟踪的容错控制方案,使故障后概率密度函数仍然跟踪给定的分布。最后,对粒子分布控制问题进行了仿真,验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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