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Fault detection for LPV systems using Set-Valued Observers: A coprime factorization approach

机译:使用集价值观察员的LPV系统故障检测:协调性分解方法

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This paper addresses the problem of fault detection for linear parameter-varying systems in the presence of measurement noise and exogenous disturbances using Set-Valued Observers (SVOs). The applicability of current methods is limited in the sense that, to increase accuracy, the detection requires a large number of past measurements and the boundedness of the set-valued estimates is only guaranteed for stable systems. In order to widen the class of systems to be modeled and also to reduce the associated computational cost, the aforementioned issues must be addressed. A solution involving left-coprime factorization and deadbeat observers is proposed that reduces the required number of past measurements without compromising accuracy and allowing the design of SVOs for fault detection of unstable systems by using the resulting coprime factorization stable subsystems. The algorithm is shown to produce bounded set-valued estimates and an example is provided. Performance is assessed through simulations, illustrating, in particular that small-magnitude faults (compared to exogenous disturbances) can be detected under mild assumptions. (C) 2017 Elsevier B.V. All rights reserved.
机译:本文解决了使用设定值观察者(SVOS)存在测量噪声和外源干扰的线性参数变化系统的故障检测问题。当前方法的适用性在意义上有限,为了提高精度,检测需要大量的过去测量,并且仅保证稳定系统的设定值估计的界限。为了扩大要建模的系统等级,还可以降低相关的计算成本,必须解决上述问题。提出了一种涉及左组合分解和止血观察者的解决方案,从而减少了过去测量所需的数量,而不会损害精度,并通过使用由此产生的CopRime分解稳定的子系统来设计SVOS进行故障检测不稳定系统。该算法显示为产生有界设定值的估计,并且提供示例。通过仿真评估性能,特别是在温和的假设下可以检测到小幅度故障(与外源干扰相比)。 (c)2017 Elsevier B.v.保留所有权利。

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