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Scalable Data Management of the Uintah Simulation Framework for Next-Generation Engineering Problems with Radiation

机译:Uintah仿真框架的可扩展数据管理,用于下一代辐射工程问题

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摘要

The need to scale next-generation industrial engineering problems to the largest computational platforms presents unique challenges. This paper focuses on data management related problems faced by the Uintah simulation framework at a production scale of 260K processes. Uintah provides a highly scalable asynchronous many-task runtime system, which in this work is used for the modeling of a 1000 megawatt electric (MWe) ultra-supercritical (USC) coal boiler. At 260K processes, we faced both parallel I/O and visualization related challenges, e.g., the default file-per-process I/O approach of Uintah did not scale on Mira. In this paper we present a simple to implement, restructuring based parallel I/O technique. We impose a restructuring step that alters the distribution of data among processes. The goal is to distribute the dataset such that each process holds a larger chunk of data, which is then written to a file independently. This approach finds a middle ground between two of the most common parallel I/O schemes-file per process I/O and shared file I/O-in terms of both the total number of generated files, and the extent of communication involved during the data aggregation phase. To address scalability issues when visualizing the simulation data, we developed a lightweight renderer using OSPRay, which allows scientists to visualize the data interactively at high quality and make production movies. Finally, this work presents a highly efficient and scalable radiation model based on the sweeping method, which significantly outperforms previous approaches in Uintah, like discrete ordinates. The integrated approach allowed the USC boiler problem to run on 260K CPU cores on Mira.
机译:将下一代工业工程问题扩展到最大的计算平台的需求提出了独特的挑战。本文着重于Uintah仿真框架在生产规模为260K的过程中面临的与数据管理相关的问题。 Uintah提供了高度可扩展的异步多任务运行时系统,该系统在此工作中用于对1000兆瓦电(MWe)超超临界(USC)燃煤锅炉进行建模。在260K进程中,我们同时面临与并行I / O和可视化相关的挑战,例如,Uintah的默认每进程文件I / O方法无法在Mira上扩展。在本文中,我们提出了一种易于实现的,基于重组的并行I / O技术。我们强加了一个重组步骤,该步骤更改了流程之间的数据分布。目的是分发数据集,以使每个进程拥有更大的数据块,然后将其独立地写入文件。这种方法在生成的文件总数以及在此过程中涉及的通信范围方面都找到了两个最常见的并行I / O方案之间的中间点-每个进程I / O文件和共享文件I / O。数据聚合阶段。为了解决可视化模拟数据时的可伸缩性问题,我们开发了使用OSPRay的轻量级渲染器,该渲染器使科学家能够以高质量交互地可视化数据并制作电影。最后,这项工作提出了一种基于扫掠方法的高效且可扩展的辐射模型,该模型大大优于Uintah中的先前方法,例如离散坐标。集成的方法使USC锅炉问题可以在Mira的260K CPU内核上运行。

著录项

  • 来源
    《Supercomputing frontiers》|2018年|219-240|共22页
  • 会议地点 Singapore(SG)
  • 作者单位

    SCI Institute, University of Utah, Salt Lake City, UT, USA;

    SCI Institute, University of Utah, Salt Lake City, UT, USA;

    SCI Institute, University of Utah, Salt Lake City, UT, USA;

    SCI Institute, University of Utah, Salt Lake City, UT, USA;

    SCI Institute, University of Utah, Salt Lake City, UT, USA;

    SCI Institute, University of Utah, Salt Lake City, UT, USA;

    Institute for Clean and Secure Energy, Salt Lake City, UT, USA;

    Institute for Clean and Secure Energy, Salt Lake City, UT, USA;

    Institute for Clean and Secure Energy, Salt Lake City, UT, USA;

    Institute for Clean and Secure Energy, Salt Lake City, UT, USA;

    SCI Institute, University of Utah, Salt Lake City, UT, USA;

    SCI Institute, University of Utah, Salt Lake City, UT, USA;

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  • 原文格式 PDF
  • 正文语种 eng
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