pWebDAV: A Multi-Tier Storage System

Christos Filippidis, Y. Cotronis
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Abstract

Experiments using the Large Hadron Collider (LHC) currently generate tens of petabytes of reduced data per year, observational and simulation data in the climate domain is expected to reach eXabytes by 2021, and light source experiments are expected to generate hundreds of terabytes per day. At such extreme scale, the substantial amount of concurrency can cause critical contention issue of the I/O system. This study introduces pWebDAV as a heterogeneous, multi-tier storage system. pWebDAV proposes a dynamically coordinated I/O architecture offering overall data flow solutions (remote-local access). The fundamental idea is to implement, for each data transfer, I/O policies on the fly. pWebDAV controls all I/O nodes, participating in the data transfer, directly regardless of the tier. pWebDAV approach can fully utilize the provided I/O & network resources and is able to minimize disk and network contention. The focus in this study is the Metadata node scalability performance.
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pWebDAV:一个多层存储系统
使用大型强子对撞机(LHC)的实验目前每年产生数十pb的精简数据,预计到2021年气候领域的观测和模拟数据将达到eXabytes,光源实验预计每天产生数百tb的数据。在如此极端的规模下,大量的并发性可能导致I/O系统出现严重的争用问题。本研究将pWebDAV作为一个异构的、多层的存储系统。pWebDAV提出了一种动态协调的I/O架构,提供了整体数据流解决方案(远程本地访问)。其基本思想是为每次数据传输动态地实现I/O策略。pWebDAV控制所有参与数据传输的I/O节点,直接与层无关。pWebDAV方法可以充分利用所提供的I/O和网络资源,并且能够最大限度地减少磁盘和网络争用。本研究的重点是元数据节点的可伸缩性性能。
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