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Observer-based diagnosis modeling using stochastic activity networks for the dependability assessment purpose

机译:使用随机活动网络进行基于观察者的诊断建模,以进行可靠性评估

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摘要

Nowadays, architectures with increasing complexity are designed to meet the productivity and safety requirements in industrial systems. These architectures include subsystems and procedures that allow fault detection, diagnosis and accommodation, completed by some system's maintenance and reconfiguration policies. These components work together and interact with each other to improve the system's dependability. Thus, it is more judicious to consider them explicitly in the system's dependability analysis models. This paper proposes a modular and systematic approach to model diagnosis procedure based on Luenberger observer using stochastic activity networks (SANs). Combined with Monte Carlo simulation, this approach allows studying diagnosis performances and its impact on some dependability factors like the availability.
机译:如今,设计复杂性不断提高的体系结构以满足工业系统中的生产率和安全性要求。这些体系结构包括允许进行故障检测,诊断和处理的子系统和过程,这些子系统和过程由某些系统的维护和重新配置策略完成。这些组件可以协同工作并相互交互以提高系统的可靠性。因此,明智的做法是在系统的可靠性分析模型中明确考虑它们。本文提出了一种基于Luenberger观测器的使用随机活动网络(SAN)的模块化系统诊断方法。结合蒙特卡洛模拟,这种方法可以研究诊断性能及其对某些可靠性因素(如可用性)的影响。

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