Combination of Component Fault Trees and Markov Chains to Analyze Complex, Software-Controlled Systems

M. Zeller, F. Montrone
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引用次数: 7

Abstract

Fault Tree analysis is a widely used failure analysis methodology to assess a system in terms of safety or reliability in many industrial application domains. However, with Fault Tree methodology there is no possibility to express a temporal sequence of events or state-dependent behavior of software-controlled systems. In contrast to this, Markov Chains are a state-based analysis technique based on a stochastic model. But the use of Markov Chains for failure analysis of complex safety-critical systems is limited due to exponential explosion of the size of the model. In this paper, we present a concept to integrate Markov Chains in Component Fault Tree models. Based on a component concept for Markov Chains, which enables the association of Markov Chains to system development elements such as components, complex or software-controlled systems can be analyzed w.r.t. safety or reliability in a modular and compositional way. We illustrate this approach using a case study from the automotive domain.
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结合组件故障树和马尔可夫链分析复杂的软件控制系统
故障树分析是一种广泛使用的故障分析方法,用于在许多工业应用领域评估系统的安全性或可靠性。然而,故障树方法不可能表示事件的时间序列或软件控制系统的状态依赖行为。与此相反,马尔可夫链是一种基于随机模型的状态分析技术。但由于模型尺寸呈指数爆炸,马尔可夫链在复杂安全关键系统失效分析中的应用受到了限制。本文提出了在部件故障树模型中集成马尔可夫链的概念。基于马尔可夫链的组件概念,它使马尔可夫链与系统开发元素(如组件)相关联,可以以模块化和组合方式分析复杂或软件控制的系统的安全性或可靠性。我们使用汽车领域的一个案例研究来说明这种方法。
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