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Enforcing Timeliness and Safety in Mission-Critical Systems

机译:在关键任务系统中加强及时性和安全性

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Advances in sensor, microprocessor and communication technologies have been fostering new applications of cyber-physical systems, often involving complex interactions between distributed autonomous components and the operation in harsh or uncertain contexts. This has led to new concerns regarding performance, safety and security, while ensuring timeliness requirements are met. To conciliate uncertainty with the required predictability, hybrid system architectures have been proposed, which separate the system in two parts: one that behaves in a best-effort way, depending on the context, and another that behaves as predictably as needed, providing critical services for a safe and secure operation. In this paper we address the problem of verifying the correct provisioning of critical functions at runtime in such hybrid architectures. We consider, in particular, the KARYON hybrid architecture and its Safety Kernel. We also consider a hardware-based non-intrusive runtime verification approach, describing how it is applied to verify Safety Kernel software functions. Finally, we experimentally evaluate the performance of two distinct Safety Kernel implementations and discuss the feasibility issues to incorporate non-intrusive runtime verification.
机译:传感器,微处理器和通信技术的进步一直在促进网络物理系统的新应用,通常涉及分布式自治组件与恶劣或不确定环境中的操作之间的复杂交互。在确保满足及时性要求的同时,这引起了对性能,安全性和安全性的新关注。为了使不确定性与所需的可预测性保持一致,已提出了混合系统体系结构,该体系结构将系统分为两个部分:一个部分根据上下文以尽力而为的方式运行,另一部分则根据需要以可预测的方式运行,从而提供关键服务确保安全可靠的操作。在本文中,我们解决了在此类混合体系结构中在运行时验证关键功能的正确配置的问题。我们特别考虑KARYON混合架构及其安全内核。我们还考虑了基于硬件的非侵入式运行时验证方法,描述了如何将其应用于验证安全内核软件功能。最后,我们通过实验评估两种不同的安全内核实现的性能,并讨论了合并非侵入式运行时验证的可行性问题。

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