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2026 (English)In: 2026: Proceedings of the 26th Brazilian Symposium on Cybersecurity, 2026, p. 754-769Conference paper, Published paper (Refereed)
Abstract [en]
Cyber-physical systems (CPSs) in critical domains such as self-driven cars and unmanned aerial vehicles involve complex interactions between safety and security concerns. Failures in CPSs such as self-driven cars are caused either by hardware/software component faults or attacks. The identification of hazards, their risks, and root causes is addressed by Safety Engineering, e.g., using Fault Tree Analysis. On the other hand, Security Engineering addresses the identification of asset vulnerabilities, their associated external threats, risks, and causes, using Attack Tree Analysis. Although both disciplines use separate terminology, processes, and tools, they rely on a common system architecture and in the use models such as Component Fault Trees and Attack Trees to support their analyses. In the automotive domain, such analyses should be performed in alignment with guidance defined in assurance standards, e.g., ISO 26262 for functional safety, and ISO 21434 for cybersecurity. However, existing techniques that integrate safety and security models are not fully aligned with the ISO 21434. In this paper, we introduce a novel Component Attack Fault Trees (CAFT) modelling language, built upon Component Fault Trees and ISO 21434 concepts, for integrating safety and security analysis models. Since CAFT was built in alignment with traditional safety and security analysis formalisms and standards, it has the potential to guide engineers in the development of multi-concern analysis model-driven engineering tools. We illustrate the use of our CAFT language to support safety and security co-analysis of an automotive headlamp system.
National Category
Computer Systems
Identifiers
urn:nbn:se:mdh:diva-78939 (URN)10.5753/sbseg.2026.27039 (DOI)
Conference
26º Simpósio Brasileiro de Cibersegurança (SBSeg 2026),
2026-09-042026-09-042026-09-04Bibliographically approved