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A Cost-effective and Energy-efficient Architecture for Die-stacked DRAM/NVM Memory Systems

机译:一种用于模具堆叠DRAM / NVM内存系统的经济高效且节能的架构

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Traditional DRAM-based memory systems are facing two major scalability issues. First, the memory wall problem becomes a major performance bottleneck. Second, conventional memory systems consume increasing power as the capacity increases, which could be as much as 40% of the total system power. These issues hinder the scaling of DRAM-based memory systems. Fortunately, emerging memory technologies, such as high bandwidth memory (HBM) and phase change memory (PCM), have the potential to solve these scalability issues. However, there is no single memory technology that can overcome these issues together. Therefore, a hybrid memory system could be a promising way to build a high-performance, large-capacity, and energy-efficient memory system. To achieve this goal, we propose a cost-effective and energy-efficient architecture for HBM/PCM memory systems, called Dual Role HBM (DR-HBM). In DR-HBM, the HBM plays two roles and is divided into two parts. A small portion of which, called HBM cache, is used as a cache for the PCM. The remaining HBM is used as a part of main memory. Furthermore, the HBM cache is also used to track page hotness without additional hardware support. Hot pages will be migrated to HBM when they are evicted from the HBM cache. The experimental results show DR-HBM outperforms two state-of-the-art hybrid memory systems, CAMEO and RaPP. Compared to the baseline in which both HBM and PCM are architected as a part of main memory without page migration, DR-HBM improves the performance by 63% on average.
机译:基于DRAM的传统存储系统所面临的两个主要可扩展性问题。首先,内存墙问题成为主要的性能瓶颈。第二,传统的存储器系统消耗增加功率作为容量增加,这可能是系统总功率的多达40%。这些问题阻碍了基于DRAM的存储系统的缩放。幸运的是,新兴的存储技术,如高带宽存储器(HBM)和相变存储器(PCM),要解决这些可扩展性问题的潜力。然而,没有一个单一的存储技术,可以克服这些问题放在一起。因此,混合存储系统可以构建一个高性能,大容量,高能效的存储系统有前途的方法。为了实现这一目标,我们提出了一个具有成本效益和节能架构HBM / PCM内存的系统,称为双重角色HBM(DR-HBM)。在DR-HBM中,HBM扮演两个角色,并分为两个部分。其中的一小部分,称为HBM高速缓存,则用作用于PCM的高速缓存。剩余的HBM被用作主存储器的一部分。此外,HBM缓存也用于跟踪页面热度,无需额外的硬件支持。当它们从HBM缓存驱逐热页面将被迁移到HBM。实验结果表明DR-HBM优于2状态的最先进的混合存储器系统,CAMEO和RAPP。相比于HBM和PCM两者架构作为主存储器的,而不页迁移的一部分基线,DR-HBM提高了平均63%的性能。

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