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Analytical performance modeling of hierarchical mass storage systems

机译:分层大容量存储系统的分析性能建模

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Mass storage systems are finding greater use in scientific computing research environments for retrieving and archiving the large volumes of data generated and manipulated by scientific computations. This paper presents a queuing network model that can be used to carry out capacity planning studies of hierarchical mass storage systems. Measurements taken on a Unitree mass storage system and a detailed workload characterization provided the workload intensity and resource demand parameters for the various types of read and write requests. The performance model developed here is based on approximations to multiclass Mean Value Analysis of queuing networks. The approximations were validated through the use of discrete event simulation and the complete model was validated and calibrated through measurements. The resulting model was used to analyze three different scenarios: effect of workload intensity increase, use of file compression at the server and client, and use of file abstractions.
机译:大容量存储系统在科学计算研究环境中越来越多地用于检索和归档由科学计算生成和处理的大量数据。本文提出了一种排队网络模型,该模型可用于进行分层大容量存储系统的容量规划研究。在Unitree大容量存储系统上进行的测量和详细的工作负载表征为各种类型的读写请求提供了工作负载强度和资源需求参数。此处开发的性能模型基于对排队网络​​的多类均值分析的近似值。通过使用离散事件仿真来验证近似值,并通过测量来验证和校准完整的模型。生成的模型用于分析三种不同的情况:工作负载强度增加的影响,在服务器和客户端使用文件压缩以及使用文件抽象。

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