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Intelligent fault-tolerant control using adaptive and learning methods

机译:使用自适应和学习方法的智能容错控制

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Stimulated by the growing demand for improving system performance and reliability, fault-tolerant system design has been receiving significant attention. This paper proposes a new fault-tolerant control methodology using adaptive estimation and control approaches based on the learning capabilities of neural networks or fuzzy systems. On-line approximation-based stable adaptive neural/fuzzy control is studied for a class of input-output feedback linearizable time-varying nonlinear systems. This class of systems is large enough so that it is not only of theoretical interest but also of practical applicability. Moreover, the fault-tolerance ability of the adaptive controller has been further improved by exploiting information estimated from a fault-diagnosis unit designed by interfacing multiple models with an expert supervisory scheme. Simulation examples for a fault-tolerant jet engine control problem are given to demonstrate the effectiveness of the proposed scheme.
机译:由于对提高系统性能和可靠性的需求不断增长,容错系统设计受到了广泛的关注。本文基于神经网络或模糊系统的学习能力,提出了一种采用自适应估计和控制方法的新型容错控制方法。针对一类输入输出反馈线性化时变非线性系统,研究了基于在线逼近的稳定自适应神经/模糊控制。这类系统足够大,因此不仅具有理论意义,而且具有实用性。此外,通过利用从故障诊断单元中估算的信息,进一步提高了自适应控制器的容错能力,该故障诊断单元是通过将多个模型与专家监管方案对接而设计的。给出了容错喷气发动机控制问题的仿真实例,以证明所提方案的有效性。

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