An algebra for cross-experiment performance analysis

Fengguang Song, F. Wolf, N. Bhatia, J. Dongarra, S. Moore
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引用次数: 60

Abstract

Performance tuning of parallel applications usually involves multiple experiments to compare the effects of different optimization strategies. This article describes an algebra that can be used to compare, integrate, and summarize performance data from multiple sources. The algebra consists of a data model to represent the data in a platform-independent fashion plus arithmetic operations to merge, subtract, and average the data from different experiments. A distinctive feature of this approach is its closure property, which allows processing and viewing all instances of the data model in the same way - regardless of whether they represent original or derived data - in addition to an arbitrary and easy composition of operations.
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用于交叉实验性能分析的代数
并行应用程序的性能调优通常涉及多个实验,以比较不同优化策略的效果。本文描述了一个代数,它可用于比较、集成和汇总来自多个数据源的性能数据。代数包括一个数据模型,用于以与平台无关的方式表示数据,以及用于合并、减去和平均来自不同实验的数据的算术运算。这种方法的一个显著特性是它的闭包属性,它允许以相同的方式处理和查看数据模型的所有实例——不管它们是表示原始数据还是派生数据——以及任意和简单的操作组合。
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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