Characterizing emerging heterogeneous memory

Du Shen, Xu Liu, F. Lin
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引用次数: 25

Abstract

Heterogeneous memory (HM, also known as hybrid memory) has become popular in emerging parallel architectures due to its programming flexibility and energy efficiency. Unlike the traditional memory subsystem, HM consists of fast and slow components. Usually, the fast memory lacks hardware support, which puts extra burdens on programmers and compilers for explicit data placement. Thus, HM provides both opportunities and challenges with programming parallel codes. It is important to understand how to utilize HM and set expectations on the benefits of HM. Prior work principally uses simulators to study HM, which lacks the analysis on a real hardware. To address this issue, this paper experiments with a real system—the TI KeyStone II—to study HM. We make three contributions. First, we develop a set of parallel benchmarks to characterize the performance and power efficiency of HM. It is the first benchmark suite with OpenMP 4.0 features that is functional on real HM architectures. Second, we build a profiling tool to provide guidance for placing data in HM. Our tool analyzes memory access patterns and provides high-level feedback at the source-code level for optimization. Third, we apply the data placement optimization to our benchmarks and evaluate the effectiveness of HM in boosting performance and saving energy.
表征新兴异质记忆
异构存储器(HM,也称为混合存储器)由于其编程灵活性和能源效率在新兴的并行体系结构中越来越受欢迎。与传统的内存子系统不同,HM由快速和慢速组件组成。通常,快速内存缺乏硬件支持,这给程序员和编译器显式的数据放置带来了额外的负担。因此,HM为编程并行代码提供了机遇和挑战。了解如何利用人力资源管理并对人力资源管理的好处设定期望是很重要的。以往的工作主要是利用仿真器来研究HM,缺乏对真实硬件的分析。为了解决这一问题,本文利用TI KeyStone ii这一实际系统进行了实验研究。我们有三个贡献。首先,我们开发了一组并行基准来表征HM的性能和功率效率。它是第一个具有OpenMP 4.0特性的基准套件,可以在真正的HM架构上运行。其次,我们构建了一个分析工具,为在HM中放置数据提供指导。我们的工具分析内存访问模式,并在源代码级别提供高级反馈以进行优化。第三,我们将数据放置优化应用于我们的基准测试,并评估HM在提高性能和节能方面的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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