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FastStor: improving the performance of a large scale hybrid storage system via caching and prefetching

机译:FastStor:通过缓存和预取来提高大型混合存储系统的性能

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Storing enormous amount of data on hybrid storage systems has become a widely accepted solution for today's production level applications in order to trade off the performance and cost. However, how to improve the performance of large scale storage systems with hybrid components (e.g. solid state disks, hard drives and tapes) and complicated user behaviors is not fully explored. In this paper, we conduct an in-depth case study (we call it FastStor) on designing a high performance hybrid storage system to support one of the world's largest satellite images distribution systems operated by the U.S. Geological Survey (USGS) Earth Resources Observation and Science (EROS) center. We demonstrate how to combine conventional caching policies with innovative current popularity oriented and user-specific prefetching algorithms to improve the performance of the EROS system.We evaluate the effectiveness of our proposed solution using over 5 million real world user download requests provided by EROS. Our experimental results show that using the Least Recently Used (LRU) caching policy alone, we are able to achieve an overall 64 % or 70 % hit ratio on a 100 TB or 200 TB FTP server farm composed of Solid State Disks (SSDs) respectively. The hit ratio can be further improved to 70 % (for 100 TB SSDs) and 76 % (for 200 TB SSDs) if intelligent prefetching algorithms are used together with LRU.
机译:为了平衡性能和成本,在混合存储系统上存储大量数据已成为当今生产级别应用程序的一种广泛接受的解决方案。但是,如何充分利用混合组件(例如固态磁盘,硬盘驱动器和磁带)以及复杂的用户行为来提高大型存储系统的性能尚未得到充分探讨。在本文中,我们进行了深入的案例研究(我们称其为FastStor),以设计一种高性能的混合存储系统,以支持由美国地质调查局(USGS)地球资源观测和研究中心运营的世界上最大的卫星图像分发系统之一。科学(EROS)中心。我们演示了如何将常规缓存策略与创新的面向当前流行度和特定于用户的预取算法相结合,以改善EROS系统的性能。我们使用EROS提供的超过500万个实际用户下载请求评估了我们提出的解决方案的有效性。我们的实验结果表明,仅使用最近最少使用(LRU)缓存策略,我们就可以分别在由固态磁盘(SSD)组成的100 TB或200 TB FTP服务器场上实现总体64%或70%的命中率。如果将智能预取算法与LRU一起使用,则命中率可以进一步提高到70%(对于100 TB SSD)和76%(对于200 TB SSD)。

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