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Attacking the One-Out-Of-m Multicore Problem by Combining Hardware Management with Mixed-Criticality Provisioning

机译:通过将硬件管理与混合关键性资源调配相结合来解决单出一核的多核问题

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The multicore revolution is having limited impact in safety-critical application domains. A key reason is the "one-out-of-m" problem: when validating real-time constraints on an m-core platform, excessive analysis pessimism can effectively negate the processing capacity of the additional m-1 cores so that only "one core's worth" of capacity is available. Two approaches have been investigated previously to address this problem: mixed-criticality allocation techniques, which provision less-critical software components less pessimistically, and hardware-management techniques, which make the underlying platform itself more predictable. A better way forward may be to combine both approaches, but to show this, fundamentally new criticality-cognizant hardware-management tradeoffs must be explored. Such tradeoffs are investigated herein in the context of a large-scale, overhead-aware schedulability study. This study was guided by extensive trace data obtained by executing benchmark tasks on a new variant of the MC^2 framework that supports configurable criticality-based hardware management. This study shows that the two approaches mentioned above can be much more effective when applied together instead of alone.
机译:多核革命对安全性至关重要的应用领域的影响有限。一个关键原因是“ one-out-m”问题:在验证m核平台上的实时约束时,过度的分析悲观情绪会有效地否定其他m-1核的处理能力,因此只有“一个”核心的价值”是可用的。以前已经研究了两种方法来解决此问题:混合关键度分配技术(较不悲观地提供不太关键的软件组件)和硬件管理技术(使底层平台本身更可预测)。更好的前进方法可能是将这两种方法结合起来,但是要证明这一点,必须从根本上探索新的识别关键性的硬件管理权衡。本文在大规模的,可感知开销的可调度性研究的背景下研究了这种折衷方案。这项研究是通过在支持可配置的基于关键性的硬件管理的MC ^ 2框架的新变体上执行基准测试任务而获得的大量跟踪数据指导的。这项研究表明,上述两种方法一起使用而不是单独使用时,可能会更加有效。

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