ARGO:老化感知的GPGPU寄存器文件分配

Majid Namaki-Shoushtari, Abbas Rahimi, N. Dutt, Puneet Gupta, Rajesh K. Gupta
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引用次数: 36

摘要

采用纳米级CMOS技术实现的最先进的通用图形处理单元(gpgpu)为使用数百个集成片上资源的高度并行应用提供了非常高的计算吞吐量。这些资源在应用程序执行过程中受到压力,使它们受到诸如负偏置温度不稳定性(NBTI)等退化机制的影响,从而对其可靠性产生不利影响。为了支持高度并行执行,GPGPU包含大型寄存器文件(RFs),这是GPGPU组件中压力最大的;然而,我们观察到对于典型的通用内核,RFs的利用率严重不足(平均只有46%)。我们提出了ARGO,一个老化感知的GPGPU RF分配器,它通过在整个RF中分配压力来机会地利用这种RF利用率不足。ARGO通过对压力银行进行功率门控来实现射频银行的适当水平。我们在AMD Evergreen GPGPU架构上展示了我们的技术,并表明ARGO将nbti诱导的阈值电压退化提高了43%(平均27%),从而使rf静态噪声裕度提高了46%(平均30%)。此外,我们估计通过为未使用的电池提供睡眠状态,可以同时减少54%的泄漏功率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ARGO: Aging-aware GPGPU register file allocation
State-of-the-art general-purpose graphic processing units (GPGPUs) implemented in nanoscale CMOS technologies offer very high computational throughput for highly-parallel applications using hundreds of integrated on-chip resources. These resources are stressed during application execution, subjecting them to degradation mechanisms such as negative bias temperature instability (NBTI) that adversely affect their reliability. To support highly parallel execution, GPGPUs contain large register files (RFs) that are among the most highly stressed GPGPU components; however we observe heavy underutilization of RFs (on average only 46%) for typical general-purpose kernels. We present ARGO, an Aging-awaRe GPGPU RF allOcator that opportunistically exploits this RF underutilization by distributing the stress throughout RF. ARGO achieves proper leveling of RF banks through deliberated power-gating of stressful banks. We demonstrate our technique on the AMD Evergreen GPGPU architecture and show that ARGO improves the NBTI-induced threshold voltage degradation by up to 43% (on average 27%), that yields improving RFs static noise margin up to 46% (on average 30%). Furthermore, we estimate a simultaneous reduction in leakage power of 54% by providing sleep states for unused banks.
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