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Separating the wheat from the chaff: Identifying Relevant and Similar Performance Data with Visual Analytics

机译:从谷壳中分离小麦:使用可视化分析识别相关和相似的性能数据

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摘要

Performance-analysis tools are indispensable for understanding and optimizing the behavior of parallel programs running on increasingly powerful supercomputers. However, with size and complexity of hardware and software on the rise, performance data sets are becoming so voluminous that their analysis poses serious challenges. In particular, the search space that must be traversed and the number of individual performance views that must be explored to identify phenomena of interest becomes too large. To mitigate this problem, we use visual analytics. Specifically, we accelerate the analysis of performance profiles by automatically identifying (1) relevant and (2) similar data subsets and their performance views. We focus on views of the virtual-process topology, showing that their relevance can be well captured with visual-quality metrics and that they can be further assigned to topical groups according to their visual features. A case study demonstrates that our approach helps reduce the search space by up to 80%.
机译:性能分析工具对于理解和优化在功能越来越强大的超级计算机上运行的并行程序的行为是必不可少的。但是,随着硬件和软件的规模和复杂性的增加,性能数据集变得如此庞大,以至于其分析提出了严峻的挑战。尤其是,必须遍历的搜索空间以及必须探索以识别感兴趣现象的单个性能视图的数量变得太大。为了减轻这个问题,我们使用视觉分析。具体来说,我们通过自动识别(1)相关和(2)相似数据子集及其性能视图来加速性能配置文件的分析。我们专注于虚拟过程拓扑的视图,显示可以通过视觉质量指标很好地捕获它们的相关性,并且可以根据它们的视觉特征将它们进一步分配给主题组。案例研究表明,我们的方法有助于将搜索空间减少多达80%。

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