Elastic RAID: Implementing RAID over SSDs with Built-in Transparent Compression

Zheng Gu, Jiangpeng Li, Yong Peng, Yang Liu, T. Zhang
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Abstract

This paper studies how RAID (redundant array of independent disks) could take full advantage of modern SSDs (solid-state drives) with built-in transparent compression. In current practice, RAID users are forced to choose a specific RAID level (e.g., RAID 10 or RAID 5) with a fixed storage cost vs. speed performance trade-off. The commercial market is witnessing the emergence of a new family of SSDs that can internally perform hardware-based lossless compression on each 4KB LBA (logical block address) block, transparent to host OS and user applications. Beyond straightforwardly reducing the RAID storage cost, such modern SSDs make it possible to relieve RAID users from being locked into a fixed storage cost vs. speed performance trade-off. In particular, RAID systems could opportunistically leverage higher-than-expected runtime user data compressibility to enable dynamic RAID level conversion to improve the speed performance without compromising the effective storage capacity. This paper presents techniques to enable and optimize the practical implementation of such elastic RAID systems. We implemented a Linux software-based elastic RAID prototype that supports dynamic conversion between RAID 5 and RAID 10. Compared with a baseline software-based RAID 5, under sufficient runtime data compressibility that enables the conversion from RAID 5 to RAID 10 over 60% of user data, the elastic RAID could improve the 4KB random write IOPS (I/O per second) by 42% and 4KB random read IOPS in degraded mode by 46%, while maintaining the same effective storage capacity.
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弹性RAID:在内置透明压缩的ssd上实现RAID
本文研究了独立磁盘冗余阵列(RAID)如何充分利用内置透明压缩的现代固态硬盘(ssd)。在当前的实践中,RAID用户被迫选择特定的RAID级别(例如,RAID 10或RAID 5),并在存储成本和速度性能之间进行权衡。商业市场正在见证一个新的ssd家族的出现,它可以在内部对每个4KB LBA(逻辑块地址)块执行基于硬件的无损压缩,对主机操作系统和用户应用程序透明。除了直接降低RAID存储成本之外,这种现代ssd还可以将RAID用户从固定存储成本与速度性能之间的权衡中解脱出来。特别是,RAID系统可以利用高于预期的运行时用户数据可压缩性来实现动态RAID级转换,从而在不影响有效存储容量的情况下提高速度性能。本文提出了实现和优化这种弹性RAID系统实际实现的技术。我们实现了一个基于Linux软件的弹性RAID原型,它支持RAID 5和RAID 10之间的动态转换。与基于软件的基准RAID 5相比,在运行时数据可压缩性足够的情况下,在60%以上的用户数据由RAID 5转换为RAID 10,弹性RAID在保持有效存储容量不变的情况下,4KB随机写IOPS(每秒I/O)提高42%,4KB随机读IOPS在降级模式下提高46%。
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