可预测的动态嵌入式数据处理

M. Geilen, S. Stuijk, T. Basten
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引用次数: 10

摘要

网络物理系统与其物理环境相互作用。在这种交互中,非功能方面(最明显的是计时)对于正确操作至关重要。在现代系统中,动力以许多不同的方式被引入。额外的复杂性威胁到及时开发和可靠运行。应用程序通常具有不同的操作模式,具有不同的资源需求和不同级别的所需服务质量。此外,动态变化组合中的多个应用程序共享一个平台及其资源。为了保持这种系统的有效开发,需要将动态性作为主要关注点来考虑,而不是在设计完成后进行验证或调整。这需要一种模型驱动的设计方法,其中考虑到与物理环境交互的时间;正式模型捕获物理环境中的应用程序及其平台。此外,需要具有资源和资源仲裁的平台来实现可预测和可靠的行为。进一步需要运行时管理来处理运行时遇到的动态用例和动态权衡。在本文中,我们提出了一种模型驱动的方法,它将基于模型的设计和综合与支持可预测、可重复、可组合实现的平台的开发相结合,并采用运行时管理方法在运行时处理动态用例。一个正式的组合模型被用来利用系统使用中的帕累托最优权衡。该方法通过具有动态应用程序场景的数据流模型、可预测的平台架构和运行时资源管理来说明,运行时资源管理通过有效的背包启发式确定最佳权衡。
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Predictable dynamic embedded data processing
Cyber-physical systems interact with their physical environment. In this interaction, non-functional aspects, most notably timing, are essential to correct operation. In modern systems, dynamism is introduced in many different ways. The additional complexity threatens timely development and reliable operation. Applications often have different modes of operation with different resource requirements and different levels of required quality-of-service. Moreover, multiple applications in dynamically changing combinations share a platform and its resources. To preserve efficient development of such systems, dynamism needs to be taken into account as a primary concern, not as a verification or tuning effort after the design is done. This requires a model-driven design approach in which timing of interaction with the physical environment is taken into consideration; formal models capture applications and their platforms in the physical environment. Moreover, platforms with resources and resource arbitration are needed that allow for predictable and reliable behavior to be realized. Run-time management is further required to deal with dynamic use-cases and dynamic trade-offs encountered at run-time. In this paper, we present a model-driven approach that combines model-based design and synthesis with development of platforms that support predictable, repeatable, composable realizations and a run-time management approach to deal with dynamic use-cases at run-time. A formal, compositional model is used to exploit Pareto-optimal trade-offs in the system use. The approach is illustrated with dataflow models with dynamic application scenarios, a predictable platform architecture and run-time resource management that determines optimal trade-offs through an efficient knapsack heuristic.
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