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Heterogeneous microarchitectures trump voltage scaling for low-power cores

机译:异构微体系结构胜过低功耗内核的电压缩放

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Heterogeneous architectures offer many potential avenues for improving energy efficiency in today's low-power cores. Two common approaches are dynamic voltage/frequency scaling (DVFS) and heterogeneous microarchitectures (HMs). Traditionally both approaches have incurred large switching overheads, which limit their applicability to coarse-grain program phases. However, recent research has demonstrated low-overhead mechanisms that enable switching at granularities as low as 1K instructions. The question remains, in this fine-grained switching regime, which form of heterogeneity offers better energy efficiency for a given level of performance? The effectiveness of these techniques depend critically on both efficient architectural implementation and accurate scheduling to maximize energy efficiency for a given level of performance. Therefore, we develop PaTH, an offline analysis tool, to compute (near-)optimal schedules, allowing us to determine Pareto-optimal energy savings for a given architecture. We leverage PaTH to study the potential energy efficiency of fine-grained DVFS and HMs, as well as a hybrid approach. We show that HMs achieve higher energy savings than DVFS for a given level of performance. While at a coarse granularity the combination of DVFS and HMs still proves beneficial, for fine-grained scheduling their combination makes little sense as HMs alone provide the bulk of the energy efficiency.
机译:异构体系结构为提高当今低功耗内核的能源效率提供了许多潜在途径。两种常见的方法是动态电压/频率缩放(DVFS)和异构微体系结构(HM)。传统上,这两种方法都产生较大的切换开销,这限制了它们在粗粒度程序阶段的适用性。但是,最近的研究表明,低开销的机制可以以低至1K指令的粒度进行切换。在这种细粒度的切换机制下,对于给定的性能水平,哪种形式的异质性能提供更好的能源效率,问题仍然存在?这些技术的有效性主要取决于有效的体系结构实施和准确的调度,以在给定的性能水平下最大程度地提高能源效率。因此,我们开发了离线分析工具PaTH,以计算(接近)最佳计划,从而使我们能够确定给定架构的Pareto最佳节能方案。我们利用PaTH研究细粒度DVFS和HM的潜在能源效率,以及混合方法。我们证明,在给定的性能水平下,HMs可以比DVFS节省更多的能源。 DVFS和HM的组合虽然粗略证明仍然是有益的,但对于细粒度的调度,它们的组合几乎没有意义,因为仅HM可以提供大部分的能源效率。

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