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Temporal and Spatial Partitioning of a Time-Triggered Operating System based on Real-Time Linux

机译:基于实时Linux的时间触发操作系统的时间和空间分区

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Real-time Linux variants are becoming prominent solutions for the development of embedded systems. Compared to traditional real-time operating systems, embedded system engineers can leverage solutions and knowhow from the Linux development community (e.g., development tools, applications, drivers). Due to the availability of implementations of Internet protocols and network drivers, Linux also facilitates the implementation of embedded systems connected to the Internet. The goal of this paper is to evaluate experimentally the capabilities of the Real-time Linux variant RTAI/LXRT with respect to partitioning between different application software modules. Partitioning ensures that a failure caused by a design fault in one application software module cannot propagate to cause a failure in other application software modules, e.g., by blocking access to the CPU or by overwriting memory. Partitioning is important when building mixed-criticality systems comprising both non safety-critical software modules and safety-related ones. Even at the same level of criticality, partitioning improves the robustness of an embedded system. The experimental results described in this paper point out several limitations of RTAI/LXRT Linux concerning fault isolation. Based on these results, we propose modifications to improve the partitioning with respect to temporal and spatial interference.
机译:实时Linux版本正在成为嵌入式系统的发展中的突出解决方案。相比于传统的实时操作系统,嵌入式系统工程师可以充分利用解决方案,并从Linux开发社区(例如,开发工具,应用程序,驱动程序)专有技术。由于互联网的协议和网络驱动程序实现的可用性,Linux还方便连接到互联网的嵌入式系统的实施。本文的目标是通过实验的实时Linux变种RTAI / LXRT对于能力评估不同的应用软件模块之间分配。分区确保了由在一个应用程序软件模块设计的故障的故障不能传播引起其他应用软件模块,例如一故障时,通过阻止访问CPU或通过重写存储器。分区建设,包括两个非安全关键软件模块和安全相关的那些混合临界系统时是很重要的。即使在临界的同一水平,分区提高嵌入式系统的鲁棒性。实验结果本文点进行描述RTAI / Linux的LXRT关于故障隔离一些局限性。基于这些结果,我们提出修改,完善关于时间和空间的干扰分区。

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