A State-based Extension to STPA for Safety-Critical System-of-Systems

Stephan Baumgart, Joakim Fröberg, S. Punnekkat
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引用次数: 1

Abstract

Automation of earth moving machinery enables improving existing production workflows in various applications like surface mines, material handling operations or material transporting. Such connected and collaborating autonomous machines can be seen as a system-of-systems. It is not yet clear how to consider safety during the development of such system-of-systems (SoS). One potentially useful approach to analyze the safety for complex systems is the System Theoretic Process Analysis (STPA). However, STPA is essentially suitable to static monolithic systems and lacks the ability to deal with emergent and dysfunctional behaviors in the case of SoS. These behaviors if not identified could potentially lead to hazards and it is important to provide mechanisms for SoS developers/integrators to capture such critical situations. In this paper, we present an approach for enriching STPA to provide the ability to check whether the distributed constituent systems of a SoS have a consistent perspective of the global state which is necessary to ensure safety. In other words, these checks must be capable at least to identify and highlight inconsistencies that can lead to critical situations. We describe the above approach by taking a specific case of state change related issues that could potentially be missed by STPA by looking at an industrial case. By applying Petri nets, we show that possible critical situations related to state changes are not identified by STPA. In this context we also propose a model-based extension to STPA and show how our new process could function in tandem with STPA.
安全关键系统的基于状态的STPA扩展
土方机械的自动化可以改善各种应用中的现有生产工作流程,如露天矿山,物料搬运操作或物料运输。这种相互连接和协作的自主机器可以被视为一个系统的系统。在这种系统的系统(SoS)的开发过程中,如何考虑安全性尚不清楚。系统理论过程分析(STPA)是分析复杂系统安全性的一种潜在的有用方法。然而,STPA基本上适用于静态单片系统,缺乏处理SoS情况下的紧急和功能失调行为的能力。如果不识别这些行为,可能会潜在地导致危险,因此为SoS开发人员/集成商提供捕捉此类危急情况的机制非常重要。在本文中,我们提出了一种丰富STPA的方法,以提供检查系统的分布式组成系统是否具有全局状态的一致视角的能力,这是确保安全所必需的。换句话说,这些检查必须至少能够识别并突出可能导致危急情况的不一致。我们通过一个特定的州变化相关问题的案例来描述上述方法,这些问题可能会被STPA通过查看工业案例而忽略。通过应用Petri网,我们发现STPA不能识别与状态变化相关的可能的临界情况。在这种情况下,我们还提出了一个基于模型的STPA扩展,并展示了我们的新流程如何与STPA协同工作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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