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Workload- and process-variation aware voltage/frequency tuning for energy efficient performance sustainability of NTC manycores

机译:可感知工作负载和过程变化的电压/频率调整,可实现NTC核能的高效能效可持续性

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摘要

The power-wall raised by the stagnation of supply voltage in deep-submicron technology nodes, is now the major scaling barrier for moving towards the manycore era. At the same time, the adoption of manycore architectures is considered to be crucial for satisfying the increasing computational power demands and throughput requirements imposed by the explosion in software complexity and volume. The rise of the so-called Dark Silicon, caused by the power budget violations that allow only a small portion of the available computational resources to be simultaneously exploited, points to the direction of energy efficient platforms. Near-Threshold voltage Computing (NTC) has emerged as a promising approach to overcome the manycore power-wall, at the expense of higher sensitivity to process variation and reduced performance which can be compensated with massive parallelization. Given that several application domains operate over specific performance constraints, the performance sustainability is considered a major issue for the wide adoption of NTC. In this work, assuming a feasible, low overhead Power Delivery Network (PDN) for NTC, we investigate how performance guarantees can be ensured when moving towards NTC manycores through a variability-aware voltage and frequency allocation methodology, showing that performance can be efficiently sustained at the NT region while reducing energy dramatically. Additionally, we propose an algorithm for balancing throughput under process (and workload) variation that sustains performance while providing significant energy savings.
机译:深亚微米技术节点中电源电压的停滞增加了电源壁,现在是迈向多核时代的主要扩展壁垒。同时,为了满足软件复杂性和数量激增带来的不断增长的计算能力要求和吞吐量要求,采用许多核心体系结构至关重要。功率预算违规导致仅允许一小部分可用计算资源被同时利用的所谓“暗硅”(Dark Silicon)的兴起指向了节能平台的方向。近阈值电压计算(NTC)已经成为克服多核功率壁的一种有前途的方法,但其代价是对过程变化的敏感性更高,而性能却降低了,可以通过大规模并行化来弥补。鉴于几个应用程序域在特定的性能约束下运行,因此性能可持续性被视为NTC广泛采用的主要问题。在这项工作中,假设适用于NTC的可行的,低开销的电力传输网络(PDN),我们研究了通过可变性感知电压和频率分配方法向NTC多核移动时如何确保性能保证,表明可以有效地维持性能在北领地地区,同时大大减少了能源。此外,我们提出了一种在过程(和工作负载)变化下平衡吞吐量的算法,该算法在保持性能的同时还可以节省大量能源。

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