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A hierarchical aggregation model to achieve visualization scalability in the analysis of parallel applications

机译:在并行应用程序分析中实现可视化可伸缩性的分层聚合模型

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The analysis of large-scale parallel applications today has several issues, such as the obser vation and identification of unusual behavior of processes, expected state of the applica tion, and so on. Performance visualization tools offer a wide spectrum of techniques to visually analyze the monitoring data collected from these applications. The problem is that most of the techniques were not conceived to deal with a high number of processes, in large-scale scenarios. A common example for that is the space-time view, largely used in the performance visualization area, but limited on how much data can be analyzed at the same time. The work presented in this article addresses the problem of visualization scalability in the analysis of parallel applications, through a combination of a temporal integration technique, an aggregation model and treemap representations. Results show that our approach can be used to analyze applications composed of several thousands of processes in large-scale and dynamic scenarios.
机译:当今对大型并行应用程序的分析存在几个问题,例如对进程异常行为的观察和识别,应用程序的预期状态等。性能可视化工具提供了广泛的技术来可视化分析从这些应用程序收集的监视数据。问题在于,在大规模场景中,大多数技术并未考虑处理大量流程。时空视图是一个常见的示例,时空视图主要用于性能可视化领域,但受限于可以同时分析多少数据。本文介绍的工作通过结合时间集成技术,聚合模型和树形图表示法,解决了并行应用程序分析中可视化可伸缩性的问题。结果表明,我们的方法可用于分析大规模和动态场景中由数千个进程组成的应用程序。

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