基于GPU的云存储系统擦除编码调度器

M. Pirahandeh, Deok‐Hwan Kim
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引用次数: 2

摘要

基于冗余廉价磁盘阵列(RAID)的存储系统性能受限于中央处理单元(CPU)的顺序性质,并且由于需要擦除编码来将数据和奇偶性分割到存储设备中,因此它们消耗大量的能量。提出了一种基于GPU的能量感知调度方法。提议的调度器与现有RAID的不同之处在于它可以减少CPU周期和编码时间。该系统通过使用GPU、启动服务器的条纹奇偶校验和目标服务器的条纹数据来生成奇偶校验。我们还应用了基于固态磁盘的数据存储和基于硬盘驱动器的奇偶校验存储的能量感知调度方案。实验结果表明,GPU-RAID的能耗比Linux-RAID低45%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
EGE: A New Energy-Aware GPU Based Erasure Coding Scheduler for Cloud Storage Systems
Redundant array of inexpensive disks (RAID) based storage systems performance is limited to the sequential nature of the central processing unit (CPU), and they consume high amounts of energy because they need erasure coding for striping data and parity into storage devices. This paper proposed an energy-aware GPU based scheduling. The proposed scheduler differs from existing RAID in that it can reduce the number of CPU cycles and coding time. The proposed system generates parity by using a GPU, stripes parity at the initiator server and stripes data at the target server. We also apply an energy-aware scheduling scheme based on solid state disk-based data storage and hard disk drive-based parity storage. Experimental results show that the energy consumption by GPU-RAID is 45% less than Linux-RAID.
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