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Containerizing HPC Applications on Heterogeneous Systems for Centralized Resource Management: A Case Study

机译:在异构系统上将HPC应用程序容器化以进行集中资源管理:一个案例研究

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Recently, the demand for scientific computing on HPC systems has grown in popularity. However, the runtime environment is a standpoint when there are many kinds of different applications with different requirements. Moreover, an HPC system cannot satisfy all of these requirements of environment. This becomes more and more considerable in the case of applications running on heterogeneous systems (e.g., CPU/Intel Xeon Phi based cluster). Generally, two main problems needing to be tackled in HPC systems are runtime environment and workload management. In terms of lightweight virtualization, Docker facilitates the isolation of different applications as well as runtime environments on the same host operating system. In addition, with huge advantages, batch job scheduler plays a vital role in management and operation. In this paper, we adopt an approach by combining containerization and HPC workload management to support the submission of a variety of applications. Practically, we perform the experiments on a heterogeneous cluster with CPU and Intel Xeon Phi coprocessor. The results show that there is a slightly different about the performance of jobs which are submitted by the normal way and containerized way. However, the experimental result highlights that the cost of containerizing HPC applications is negligible, and this can be applied in practice to fulfill user's requirement.
机译:最近,在HPC系统上对科学计算的需求已日益普及。但是,当存在许多具有不同要求的不同应用程序时,运行时环境是一种观点。而且,HPC系统不能满足所有这些环境要求。对于在异构系统(例如基于CPU / Intel Xeon Phi的集群)上运行的应用程序而言,这变得越来越重要。通常,HPC系统中需要解决的两个主要问题是运行时环境和工作负载管理。就轻量级虚拟化而言,Docker有助于隔离同一主机操作系统上的不同应用程序和运行时环境。此外,批处理作业计划程序具有巨大的优势,在管理和操作中起着至关重要的作用。在本文中,我们采用了一种将容器化和HPC工作负载管理相结合的方法,以支持各种应用程序的提交。实际上,我们在具有CPU和Intel Xeon Phi协处理器的异构集群上进行实验。结果表明,通过常规方式和容器化方式提交的作业的性能略有不同。但是,实验结果表明,对HPC应用程序进行容器化的成本可以忽略不计,并且可以在实践中满足用户的需求。

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