Representing the scaling behavior of parallel algorithm-machine combinations

D. Rover, Xian-He Sun
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引用次数: 1

Abstract

The scaling of algorithms and machines is essential to achieve the goals of high-performance computing. Thus, scalability has become an important aspect of parallel algorithm and machine design. It is a desirable property that has been used to describe the demand for proportionate changes in performance with adjustments in system size. It should provide guidance toward an optimal choice of an architecture, algorithm, machine size, and problem size combination. However, as a performance metric, it is not yet well defined or understood. The paper summarizes several scalability metrics, including one that highlights the behavior of algorithm-machine combinations as sizes are varied under an isospeed condition. A scaling relation is presented to facilitate general mathematical and visual techniques for characterizing and comparing the scalability information of these metrics.<>
表示并行算法-机器组合的缩放行为
算法和机器的扩展是实现高性能计算目标的必要条件。因此,可扩展性已成为并行算法和机器设计的一个重要方面。这是一个理想的属性,用于描述随着系统大小的调整而对性能的成比例变化的需求。它应该为体系结构、算法、机器大小和问题大小组合的最佳选择提供指导。然而,作为一种性能度量,它还没有得到很好的定义或理解。本文总结了几个可扩展性指标,其中一个指标强调了算法-机器组合在等速条件下大小变化时的行为。提出了一种比例关系,以方便一般的数学和视觉技术来表征和比较这些度量的可伸缩性信息。
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