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Are all scientific workloads equal?

机译:所有科学工作量是否相等?

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摘要

Widely-used benchmarks are commonly classified as either scientific or commercial. Although process execution characteristics have been used as indicators of a benchmark's classification, a set of these characteristics along with a mechanism that can be used to easily compare and contrast workloads and partition them into classes with respect to these characteristics has not been identified. This paper identifies a set of process execution characteristics (PEC) that can be used to compare and contrast workloads and a method that can be used to partition workloads with respect to their PEC. These PEC, such as instruction locality, execution cycles per instruction, and context-switch frequency, are displayed with a high-density visualization tool called the PEC-Graph. Using the centroid linkage algorithm, processes' PEC are partitioned into clusters that are used to construct a taxonomy of workloads that is finer grained than taxonomies previously reported in the literature. The finer-grained categorization of workloads enables computer architects to select workloads that are known to stress specific architectural features, yielding potentially better performance analysis of new designs.
机译:广泛使用的基准通常分为科学基准或商业基准。尽管已将流程执行特征用作基准分类的指标,但尚未确定这些特征的集合以及可用于轻松比较和对比工作负载并将它们相对于这些特征划分为类的机制。本文确定了可用于比较和对比工作负载的一组流程执行特征(PEC),以及可用于相对于其PEC划分工作负载的方法。这些PEC(例如指令局部性,每条指令的执行周期和上下文切换频率)通过称为PEC-Graph的高密度可视化工具进行显示。使用质心链接算法,将流程的PEC划分为多个群集,这些群集用于构建工作负载的分类法,该分类法比以前文献中报道的分类法更精细。工作负载的细粒度分类使计算机架构师可以选择已知会强调特定体系结构功能的工作负载,从而可能对新设计进行更好的性能分析。

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