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An Analysis of Efficient Multi-Core Global Power Management Policies

机译:高效的多核全球电源管理策略分析

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Chip-level power and thermal implications will continue to rule as one of the primary design constraints and performance limiters. The gap between average and peak power actually widens with increased levels of core integration. As such, if per-core control of power levels (modes) is possible, a global power manager should be able to dynamically set the modes suitably. This would be done in tune with the workload characteristics, in order to always maintain a chip-level power that is below the specified budget. Furthermore, this should be possible without significant degradation of chip-level throughput performance. We analyze and validate this concept in detail in this paper. We assume a per-core DVFS (dynamic voltage and frequency scaling) knob to be available to such a conceptual global power manager. We evaluate several different policies for global multi-core power management. In this analysis, we consider various different objectives such as prioritization and optimized throughput. Overall,our results show that in the context of a workload comprised of SPEC benchmark threads, our best architected policies can come within 1% of the performance of an ideal oracle, while meeting a given chip-level power budget. Furthermore, we show that these global dynamic management policies perform significantly better than static management, even if static scheduling is given oracular knowledge.
机译:芯片级功率和热影响将继续成为主要设计约束和性能限制因素之一。实际上,平均功率和峰值功率之间的差距随着核心集成水平的提高而扩大。这样,如果可以对功率水平(模式)进行每核控制,则全局功率管理器应该能够适当地动态设置模式。为了始终保持芯片级功耗低于指定的预算,可以根据工作负载的特性来完成此操作。此外,这应该是可能的,而不会严重降低芯片级吞吐性能。我们在本文中详细分析并验证了此概念。我们假设每核DVFS(动态电压和频率缩放)旋钮可用于这种概念性的全局电源管理器。我们为全球多核电源管理评估了几种不同的策略。在此分析中,我们考虑了各种不同的目标,例如确定优先级和优化吞吐量。总体而言,我们的结果表明,在包含SPEC基准线程的工作负载的情况下,我们的最佳体系结构策略可以满足理想oracle的性能的1%之内,同时还能满足给定的芯片级功耗预算。此外,我们表明,即使给定了静态计划的口头知识,这些全局动态管理策略的性能也明显好于静态管理。

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