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CoolPIM: Thermal-Aware Source Throttling for Efficient PIM Instruction Offloading

机译:CoolPIM:热感知源节流,可实现高效的PIM指令卸载

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Processing-in-memory (PIM) is regaining attention as a promising technology for improving energy efficiency of computing systems. As such, many recent studies on 3D stacking-based PIM have investigated techniques for effectively offloading computation from the host to the PIM. However, the thermal impacts of such offloading have not been fully explored. This paper provides an understanding of thermal constraints of PIM in 3D-stacked designs and techniques to effectively utilize PIM. In our experiments with a real Hybrid Memory Cube (HMC) prototype, we observe that compared to conventional DRAM, HMC reaches a significantly higher operating temperature, which causes thermal shutdowns with a passive cooling solution. In addition, we find that even with a commodity-server cooling solution, when in-memory processing is highly utilized, HMC fails to maintain the temperature of the memory dies within the normal operating range, which results in higher energy consumption and performance overhead. Thus, we propose CoolPIM, a collection of thermal-aware software-and hardware-based source throttling mechanisms that effectively utilize PIM by controlling the intensity of PIM offloading in runtime. Our evaluation results demonstrate that CoolPIM achieves up to 1.4X and 1.37X speedups compared to non-offloading and naive offloading scenarios.
机译:内存处理(PIM)作为提高计算系统能效的一种有前途的技术正受到越来越多的关注。这样,许多基于3D堆栈的PIM的最新研究都研究了有效地将计算从主机转移到PIM的技术。但是,尚未充分研究这种卸载的热影响。本文提供了对3D堆叠设计中PIM的热约束和有效利用PIM的技术的理解。在我们使用真实的混合内存多维数据集(HMC)原型进行的实验中,我们观察到与传统DRAM相比,HMC达到了明显更高的工作温度,这导致了采用被动冷却解决方案的热停机。此外,我们发现即使使用商品服务器冷却解决方案,当内存处理效率得到充分利用时,HMC仍无法将内存管芯的温度保持在正常工作范围内,这导致更高的能耗和性能开销。因此,我们提出了CoolPIM,这是基于热感知软件和硬件的源节流机制的集合,可以通过在运行时控制PIM卸载的强度来有效利用PIM。我们的评估结果表明,与非卸载和幼稚的卸载方案相比,CoolPIM可以实现高达1.4倍和1.37倍的加速。

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