Exploring HPC-based scientific software as a service using CometCloud

Moustafa AbdelBaky, J. Montes, Michael Johnston, Vipin Sachdeva, Richard L. Anderson, K. E. Jordan, M. Parashar
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引用次数: 7

Abstract

The use of in-silico simulations in experimental science can greatly increase laboratory efficiency and provide additional insights into interactions not easily described by traditional methods. Such simulations require significant amounts of computational resources, accessible only via supercomputers of large-scale high-performance clusters. Due to the complexity of the computational experiments, as well as the usage of the underlying resources, experimental scientists heavily rely on computational scientists with HPC expertise to perform these simulations. This additional bottleneck prevents the widespread adoption of real time in-silico simulation as a driver for laboratory experimentation. In this paper, we aim to overcome this bottleneck by presenting the architecture of an end-to-end framework to enable HPC Software as a Service. This framework is designed to make it easy for scientific applications to run on top of dynamically federated HPC resources. The framework enables HPC resource sharing while maximizing throughput and utilization. We focus specifically on a use case where an experimental scientist uses a mobile portal to control dissipative particle dynamics experiments that are executed on a remote supercomputer (IBM Blue Gene/Q).
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使用CometCloud探索基于高性能计算的科学软件服务
在实验科学中使用硅模拟可以极大地提高实验室效率,并为传统方法难以描述的相互作用提供额外的见解。这样的模拟需要大量的计算资源,只能通过大规模高性能集群的超级计算机来访问。由于计算实验的复杂性,以及底层资源的使用,实验科学家严重依赖具有高性能计算专业知识的计算科学家来执行这些模拟。这个额外的瓶颈阻碍了实时硅模拟作为实验室实验驱动程序的广泛采用。在本文中,我们的目标是通过提出端到端框架的体系结构来实现HPC软件即服务来克服这一瓶颈。该框架旨在使科学应用程序更容易在动态联合的HPC资源上运行。该框架支持HPC资源共享,同时最大限度地提高吞吐量和利用率。我们特别关注实验科学家使用移动门户来控制在远程超级计算机(IBM Blue Gene/Q)上执行的耗散粒子动力学实验的用例。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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