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Empirical Performance Analysis of HPC Benchmarks Across Variations in Cloud Computing

机译:云计算中各种变化的HPC基准的经验性能分析

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摘要

High Performance Computing (HPC) applications are scientific applications that require significant CPU capabilities. They are also data-intensive applications requiring large data storage. While many researchers have examined the performance of Amazon's EC2 platform across some HPC benchmarks, an extensive study and their comparison between Amazon's EC2 and Microsoft's Windows Azure is largely missing with metrics such as memory bandwidth, I/O performance, and communication and computational performance. The purpose of this paper is to implement existing benchmarks to evaluate and analyze these metrics for EC2 and Windows Azure that span both Infrastructure-as-a-Service and Platform-as-a-Service types. This was accomplished by running MPI versions of STREA M, Interleaved or Random (IOR) and NAS Parallel (NPB) benchmarks on small and medium instance types. In addition a new EC2 medium instance type (m I. medium) was also included in the analysis. These benchmarks measure the memory bandwidth, I/O performance, communication and computational performance.
机译:高性能计算(HPC)应用程序是需要大量CPU功能的科学应用程序。它们还是需要大量数据存储的数据密集型应用程序。尽管许多研究人员已经通过一些HPC基准检查了Amazon EC2平台的性能,但在内存带宽,I / O性能以及通信和计算性能等指标方面,却缺少对EC2平台与Microsoft Windows Azure之间的广泛研究和比较。本文的目的是实施现有的基准,以评估和分析涵盖基础架构即服务类型和平台即服务类型的EC2和Windows Azure的这些指标。这是通过在中小型实例类型上运行MPI版本的STREA M,交错或随机(IOR)和NAS并行(NPB)基准来实现的。此外,分析中还包括新的EC2介质实例类型(MI介质)。这些基准测试可测量内存带宽,I / O性能,通信和计算性能。

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