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Mitigating the Impact of Hardware Variability for GPGPUs Register File

机译:减轻硬件可变性对GPGPU寄存器文件的影响

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As technology keeps scaling down, hardware variability, such as process variations (PV) and negative bias temperature instability (NBTI), emerges as a growing challenge in the modern GPGPUs (general-purpose computing on graphics processing units). PV induces significant delay variations statically, while NBTI dynamically slows down the GPGPUs. Each computing core (i.e., streaming multiprocessor) in GPGPUs supports thousands of simultaneously active threads, and requires a large register file. Such a sizable register file is very sensitive to the hardware variability, and becomes one of the major units in determining the core frequency. In this study, we propose a set of techniques that mitigate both the PV and NBTI impacts on GPGPUs register file. In order to mitigate the susceptibility to PV, we first develop a novel mechanism that classifies registers into fast and slow categories in the highly-banked register architecture to maximize the frequency improvement. We then leverage the unique features in GPGPU applications to effectively tolerate the extra access delay to the slow registers. Moreover, we propose to dynamically balance the utilization across registers to further tolerate the NBTI degradation. Our experimental results show that our proposed techniques optimize GPGPUs performance by 22 percent on average under both PV and NBTI effects.
机译:随着技术的不断缩小,诸如工艺变化(PV)和负偏压温度不稳定性(NBTI)之类的硬件可变性在现代GPGPU(图形处理单元上的通用计算)中正面临着日益严峻的挑战。 PV静态地引起明显的延迟变化,而NBTI动态降低GPGPU的速度。 GPGPU中的每个计算核心(即流式多处理器)都支持数千个同时活动的线程,并且需要一个大的寄存器文件。这种相当大的寄存器文件对硬件可变性非常敏感,并成为确定核心频率的主要单元之一。在这项研究中,我们提出了一套减轻PV和NBTI对GPGPU寄存器文件影响的技术。为了减轻对PV的敏感性,我们首先开发了一种新颖的机制,该机制在高度存储的寄存器体系结构中将寄存器分为快速和慢速类别,以最大程度地提高频率。然后,我们利用GPGPU应用程序中的独特功能来有效容忍对慢速寄存器的额外访问延迟。此外,我们建议动态平衡寄存器之间的利用率,以进一步容忍NBTI降级。我们的实验结果表明,在PV和NBTI效应下,我们提出的技术可使GPGPU的性能平均提高22%。

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