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Data Direct I/O Characterization for Future I/O System Exploration

机译:用于将来I / O系统探索的数据直接I / O表征

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I/O performance plays a critical role in the overall performance of modern servers. The emergence of ultra high-speed I/O devices makes the data movement between processors, main memory, and devices a major performance bottleneck. Conventionally, the main memory is used as an intermediate buffer between the processor and I/O devices and I/O devices cannot directly access processor side caches. Data Direct I/O (DDIO) technology aims to reduce the memory bandwidth utilization by enabling the I/O devices to leverage Last Level Cache (LLC) as the intermediate buffer. Our experimental results show that DDIO can completely eliminate memory bandwidth utilization while running network-or storage-intensive applications. However, when modeling the I/O subsystem using architectural simulators, DDIO is often ignored, which can result in inaccurate assessments about the I/O and memory sub system of emerging and future large-scale computer systems. In this paper, we provide a detailed background on DDIO technology in Intel server processors. Then we present our cycle-accurate I/O subsystem model in gem5 simulator that can be configured to model DDIO. We verify our model against baseline gem5 and validate it by comparing its results against a physical computer system.
机译:I / O性能在现代服务器的整体性能中起着至关重要的作用。超高速I / O设备的出现使处理器,主内存和设备之间的数据移动成为主要的性能瓶颈。按照惯例,主存储器用作处理器和I / O设备之间的中间缓冲区,并且I / O设备不能直接访问处理器端缓存。数据直接I / O(DDIO)技术旨在通过使I / O设备能够利用末级缓存(LLC)作为中间缓冲区来降低内存带宽利用率。我们的实验结果表明,DDIO可以在运行网络或存储密集型应用程序时完全消除内存带宽利用率。但是,在使用体系结构模拟器对I / O子系统进行建模时,通常会忽略DDIO,这可能导致对新兴和未来的大型计算机系统的I / O和内存子系统的评估不准确。在本文中,我们提供了有关英特尔服务器处理器中DDIO技术的详细背景。然后,我们在gem5仿真器中展示了周期精确的I / O子系统模型,该模型可以配置为DDIO模型。我们根据基准gem5验证了我们的模型,并通过将结果与物理计算机系统进行了比较来对其进行验证。

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