PC固态硬盘(ssd)的性能与带宽、并发性、设备架构和系统组织有关

Cagdas Dirik, B. Jacob
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引用次数: 211

摘要

随着价格的下降,存储容量的增加和耐用性的提高,NAND闪存固态磁盘(SSD)为便携式计算系统和个人电脑提供了一个越来越有吸引力的替代硬盘驱动器(HDD)。本文介绍了NAND闪存SSD架构及其管理技术的研究,量化了用户驱动/PC应用程序在多任务环境下的SSD性能;用户活动代表典型的PC工作负载,包括浏览文件和文件夹、发电子邮件、文本编辑和文档创建、上网、听音乐和播放电影、编辑大图片以及运行办公应用程序。我们发现以下几点:(a) NAND闪存性能的真正限制不是它的单设备带宽低,而是它的内部核心接口;(b) NAND快闪存储器媒体传输速率不需要扩大到硬盘驱动器的传输速率即可获得良好的性能;(c) SSD组织在系统和设备级别同时利用并发性(例如,类似raid的组织和micron风格的(超级块))显著提高性能;(d)这些系统级和设备级并发机制在很大程度上是正交的:也就是说,性能的提高并不是以牺牲另一个为代价的,因为每一个都利用了PC工作负载中显示的并发性的不同方面。
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The performance of PC solid-state disks (SSDs) as a function of bandwidth, concurrency, device architecture, and system organization
As their prices decline, their storage capacities increase, and their endurance improves, NAND Flash Solid State Disks (SSD) provide an increasingly attractive alternative to Hard Disk Drives (HDD) for portable computing systems and PCs. This paper presents a study of NAND Flash SSD architectures and their management techniques, quantifying SSD performance under user-driven/PC applications in a multi-tasked environment; user activity represents typical PC workloads and includes browsing files and folders, emailing, text editing and document creation, surfing the web, listening to music and playing movies, editing large pictures, and running office applications. We find the following: (a) the real limitation to NAND Flash memory performance is not its low per-device bandwidth but its internal core interface; (b) NAND Flash memory media transfer rates do not need to scale up to those of HDDs for good performance; (c) SSD organizations that exploit concurrency at both the system and device level (e.g. RAID-like organizations and Micron-style (superblocks) improve performance significantly; and (d) these system- and device-level concurrency mechanisms are, to a significant degree, orthogonal: that is, the performance increase due to one does not come at the expense of the other, as each exploits a different facet of concurrency exhibited within the PC workload.
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ISCA '22: The 49th Annual International Symposium on Computer Architecture, New York, New York, USA, June 18 - 22, 2022 Special-purpose and future architectures Computer memory systems Basics of the central processing unit FRONT MATTER
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