梦想工具链:混合临界系统的模型驱动工程

S. Barner, Alexander Diewald, J. Migge, Ali Syed, G. Fohler, Madeleine Faugère, D. G. Pérez
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引用次数: 13

摘要

混合关键系统(MCS)旨在提高安全关键系统的集成密度,从而形成高效的系统,同时提供更高的性能。DREAMS项目为基于分层资源管理器控制的网络化、虚拟化多核的MCS提供了一种跨域架构风格。然而,平台的可用性只是硬币的一面:将混合关键应用程序部署到共享资源通常需要设计时配置(例如,确保安全法规强制要求的实时约束或分离约束)。这些配置是复杂优化问题的结果,这些问题在手工过程中很难处理,而且很难保证所有可部署工件的一致性,也不能保证它们对需求的可跟踪性。然而,现有的工具链缺乏对MCS集成的支持,尤其是DREAMS的高级平台功能。我们提供了一个集成的模型驱动工具链和底层元模型,涵盖了MCS的所有相关方面,包括应用程序、定时、平台、部署、配置和额外功能属性(如安全性)的注释。该方法侧重于v循环的左分支,范围从产品线和设计空间探索到资源分配和配置生成。我们报告了勘探工具和重构图合成器的集成,并在两个用例中分别评估了由风电控制应用产品线和航空电子子系统组成的工具链。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
DREAMS Toolchain: Model-Driven Engineering of Mixed-Criticality Systems
Mixed-criticality systems (MCS) aim at boosting the integration density in safety-critical systems, resulting into efficient systems, while simultaneously providing increased performance. The DREAMS project provides a cross-domain architectural style for MCS based on networked, virtualized multi-cores controlled by hierarchical resource managers. However, the availability of a platform is only one side of the coin: deploying mixed-critical applications to shared resources typically requires design-time configurations (e.g., to ensure real-time constraints or separation constraints mandated by safety regulations). These configurations are the outcome of complex optimization problems which are intractable in a manual process that also hardly can guarantee the consistency of all deployable artefacts nor their traceability to the requirements. However, existing toolchains lack support for MCS integration, and particularly DREAMS' advanced platform capabilities. We present an integrated model-driven toolchain and the underlying metamodels covering all relevant aspects of MCS including applications, timing, platforms, deployments, configurations and annotations for extra-functional properties such as safety. The approach focuses on the left branch of the V-cycle, and ranges from product-line and design space exploration to resource allocation and configuration generation. We report on the integration of exploration tools and a reconfiguration graph synthesizer, and evaluate the resulting toolchains in two use cases consisting of a product-line of wind power control applications and an avionic subsystem respectively.
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