Effect of Skew on Join Performance in Parallel Architectures

M. Lakshmi, Philip S. Yu
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引用次数: 56

Abstract

Skew in the distribution of values taken by an attribute is identified as a major factor that can affect the performance of parallel architectures for relational joins. The effect of skew on the performance of two parallel architectures is evaluated using analytic models. In one architecture, called database machine (DBMC), data as well as processing power are distributed; while in the other architecture, called Single Processor Parallel Input/output (SPPI), data is distributed but the processing power is concentrated in one processor. The two architectures are compared in terms of the ratio of MIPS used by DBMC and SPPI to deliver the same throughput and response time. In addition, the horizontal growth potential of DBMC is evaluated in terms of maximum speedup achievable by DBMC relative to SPPI response time. The MIPS ratio as well as speedup are found to be very sensitive to the amount of skew. These suggest, careful thought should be given in parallelizing database applications and in the design of algorithms and query optimizer for parallel architectures.
倾斜对并行结构中连接性能的影响
属性所取值分布的偏差被认为是影响关系连接的并行架构性能的一个主要因素。利用解析模型分析了倾斜对两种并行架构性能的影响。在一种称为数据库机(DBMC)的体系结构中,数据和处理能力是分布式的;而在另一种称为单处理器并行输入/输出(SPPI)的体系结构中,数据是分布的,但处理能力集中在一个处理器上。根据DBMC和SPPI为提供相同的吞吐量和响应时间而使用的MIPS比率对这两种体系结构进行了比较。此外,根据DBMC相对于SPPI响应时间可实现的最大加速来评估DBMC的水平增长潜力。发现MIPS比率以及加速对倾斜量非常敏感。这表明,在并行数据库应用程序和并行架构的算法和查询优化器的设计中应该仔细考虑。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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