Chaos Engineering for Enhanced Resilience of Cyber-Physical Systems

Charalambos Konstantinou, G. Stergiopoulos, M. Parvania, P. Veríssimo
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引用次数: 3

Abstract

Cyber-physical systems (CPS) incorporate the complex and large-scale engineered systems behind critical infrastructure operations, such as water distribution networks, energy delivery systems, healthcare services, manufacturing systems, and transportation networks. Industrial CPS in particular need to simultaneously satisfy requirements of available, secure, safe and reliable system operation against diverse threats, in an adaptive and sustainable way. These adverse events can be of accidental or malicious nature and may include natural disasters, hardware or software faults, cyberattacks, or even infrastructure design and implementation faults. They may drastically affect the results of CPS algorithms and mechanisms, and subsequently the operations of industrial control systems (ICS) deployed in those critical infrastructures. Such a demanding combination of properties and threats calls for resilience-enhancement methodologies and techniques, working in real-time operation. However, the analysis of CPS resilience is a difficult task as it involves evaluation of various interdependent layers with heterogeneous computing equipment, physical components, network technologies, and data analytics. In this paper, we apply the principles of chaos engineering (CE) to industrial CPS, in order to demonstrate the benefits of such practices on system resilience. The systemic uncertainty of adverse events can be tamed by applying runtime CE-based analyses to CPS in production, in order to predict environment changes and thus apply mitigation measures limiting the range and severity of the event, and minimizing its blast radius.
增强信息物理系统弹性的混沌工程
信息物理系统(CPS)包含了关键基础设施运营背后复杂的大规模工程系统,如配水网络、能源输送系统、医疗服务、制造系统和运输网络。工业CPS尤其需要同时满足可用、安全、安全、可靠的系统运行要求,以适应和可持续的方式应对各种威胁。这些不良事件可能是偶然的或恶意的,可能包括自然灾害、硬件或软件故障、网络攻击,甚至基础设施设计和实现错误。它们可能会极大地影响CPS算法和机制的结果,并随后影响部署在这些关键基础设施中的工业控制系统(ICS)的操作。如此苛刻的属性和威胁组合要求弹性增强方法和技术,在实时操作中工作。然而,CPS弹性分析是一项艰巨的任务,因为它涉及到评估各种相互依赖的层,包括异构计算设备、物理组件、网络技术和数据分析。在本文中,我们将混沌工程(CE)的原理应用于工业CPS,以证明这种实践对系统弹性的好处。通过对生产中的CPS应用基于运行时ce的分析,可以控制不良事件的系统性不确定性,从而预测环境变化,从而采取缓解措施,限制事件的范围和严重程度,并最大限度地减少其爆炸半径。
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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