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首页> 外文期刊>International journal of systems science >Minimum rational entropy fault tolerant control for non-Gaussian singular stochastic distribution control systems using T-S fuzzy modelling
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Minimum rational entropy fault tolerant control for non-Gaussian singular stochastic distribution control systems using T-S fuzzy modelling

机译:基于T-S模糊建模的非高斯奇异随机分布控制系统的最小有理熵容错控制

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摘要

In this paper, a new fault diagnosis (FD) and fault tolerant control (FTC) algorithm for a non-Gaussian nonlinear singular stochastic distribution control (SDC) system is studied. The rational square-root fuzzy logic model is used to approximate the output probability density function of non-Gaussian processes and a Takagi-Sugeno (T-S) fuzzy model is employed to transform the non-Gaussian nonlinear SDC system into a fuzzy SDC system. An adaptive fuzzy fault diagnosis observer is constructed to achieve reconstruction of system state and fault. Based on the estimated fault information, the controller is reconfigured by minimising the performance index with regard to the rational entropy subjected to mean constraint. Minimum rational entropy fault tolerant control is introduced to make the output of the past-fault SDC system still have the minimum uncertainty. Simulation results are provided to demonstrate the validity of the FD and minimum rational entropy FTC algorithm.
机译:本文研究了一种非高斯非线性奇异随机分布控制(SDC)系统的故障诊断(FD)和容错控制(FTC)算法。使用有理平方根模糊逻辑模型来近似非高斯过程的输出概率密度函数,并使用Takagi-Sugeno(T-S)模糊模型将非高斯非线性SDC系统转换为模糊SDC系统。构造了自适应模糊故障诊断观察器以实现系统状态和故障的重构。基于估计的故障信息,通过使受均值约束的有理熵的性能指标最小化来重新配置控制器。引入最小有理熵容错控制,使过去故障的SDC系统的输出仍具有最小的不确定性。仿真结果证明了FD和最小有理熵FTC算法的有效性。

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