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Achieving Fair or Differentiated Cache Sharing in Power-Constrained Chip Multiprocessors

机译:在功率约束芯片多处理器中实现公允或差异化缓存共享

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Limiting the peak power consumption of chip multiprocessors (CMPs) has recently received a lot of attention. In order to enable chip-level power capping, the peak power consumption of on-chip L2 caches in a CMP often needs to be constrained by dynamically transitioning selected cache banks into low-power modes. However, dynamic cache resizing for power capping may cause undesired long cache access latencies, and even thread starving and thrashing, for the applications running on the CMP. In this paper, we propose a novel cache management strategy that can limit the peak power consumption of L2 caches and provide fairness guarantees, such that the cache access latencies of the application threads co-scheduled on the CMP are impacted more uniformly. Our strategy is also extended to provide differentiated cache latency guarantees that can help the OS to enforce the desired thread priorities at the architectural level and achieve desired rates of thread progress for co-scheduled applications. Our solution features a two-tier control architecture rigorously designed based on advanced feedback control theory for guaranteed control accuracy and system stability. Extensive experimental results demonstrate that our solution can achieve the desired cache power capping, fair or differentiated cache sharing, and power-performance tradeoffs for many applications.
机译:限制芯片多处理器(CMP)的峰值功耗最近收到了很多关注。为了使芯片级功率覆盖,CMP中片上L2高速缓存的峰值功耗通常需要通过将所选择的高速缓存库流入低功率模式来限制。但是,调整电力覆盖的动态高速缓存可能会导致UND期望的长缓存访问延迟,甚至是线程匮乏,删除CMP上的应用程序。在本文中,我们提出了一种新的缓存管理策略,可以限制L2高速缓存的峰值功耗并提供公平保证,使得CMP上共同调度的应用程序线程的高速缓存访​​问延迟更加均匀地影响。我们的策略还扩展以提供差异化​​的缓存延迟保证,可以帮助操作系统在架构级别强制执行所需的线程优先级,并达到共同计划应用程序的所需线程进度率。我们的解决方案采用了基于高级反馈控制理论严格设计了双层控制架构,以获得保证控制精度和系统稳定性。广泛的实验结果表明,我们的解决方案可以实现所需的高速缓存电力盖,公平或差异化的缓存共享以及许多应用程序的电源性能权衡。

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