Mapping mixed-criticality applications on multi-core architectures

G. Giannopoulou, N. Stoimenov, Pengcheng Huang, L. Thiele
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引用次数: 48

Abstract

A common trend in real-time embedded systems is to integrate multiple applications on a single platform. Such systems are known as mixed-criticality (MC) systems when the applications are characterized by different criticality levels. Nowadays, multicore platforms are promoted due to cost and performance benefits. However, certification of multicore MC systems is challenging as concurrently executed applications of different criticalities may block each other when accessing shared platform resources. Most of the existing research on multicore MC scheduling ignores the effects of resource sharing on the response times of applications. Recently, a MC scheduling strategy was proposed, which explicitly accounts for these effects. This paper discusses how to combine this policy with an optimization method for the partitioning of tasks to cores as well as the static mapping of memory blocks, i.e., task data and communication buffers, to the banks of a shared memory architecture. Optimization is performed at design time targeting at minimizing the worst-case response times of tasks and achieving efficient resource utilization. The proposed optimization method is evaluated using an industrial application.
在多核架构上映射混合关键应用程序
实时嵌入式系统的一个共同趋势是在单个平台上集成多个应用程序。当应用程序具有不同临界水平的特征时,这种系统被称为混合临界系统。如今,由于成本和性能优势,多核平台得到了推广。然而,多核MC系统的认证具有挑战性,因为不同关键程度的并发执行应用程序在访问共享平台资源时可能会相互阻塞。现有的多核MC调度研究大多忽略了资源共享对应用程序响应时间的影响。最近,提出了一种MC调度策略,明确地考虑了这些影响。本文讨论了如何将该策略与一种优化方法相结合,以将任务划分到核心,以及将内存块(即任务数据和通信缓冲区)静态映射到共享内存体系结构的库。优化在设计时执行,目标是最小化任务的最坏情况响应时间,并实现有效的资源利用。通过工业应用对所提出的优化方法进行了评价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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