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Understanding source-to-source transformations for frequent porting of applications on changing cloud architectures

机译:了解源到源的转换,以便在不断变化的云架构上频繁移植应用程序

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Writing code for heterogeneous architectures with processors and accelerators from multiple vendors from scratch or translating existing serial code, a lot of effort and investment will be required from the application developer. This problem will become more prominent when HPC applications are moved into the Cloud as Cloud providers frequently update their architectures to keep with market trends. In these scenarios, automatic parallelization tools will definitely have an important role to play. An important constituent of these tools would be the ability to perform pertinent domain decomposition of the serial code to maximize utilization of the available computational elements. One of the first steps in this direction is to understand the role of the number and type of computational element in a heterogeneous architecture to the overall performance of an application. This paper presents observations made on architectures with different types and number of computational elements using two case studies on five different architectures with different types and number of computational elements. Results show that the perceived speedup and actual speedup are not related.
机译:从头开始使用多家供应商的处理器和加速器为异构体系结构编写代码,或翻译现有的串行代码,应用程序开发人员将需要大量的精力和投资。当HPC应用程序迁移到云中时,随着云提供商经常更新其架构以适应市场趋势,这一问题将变得更加突出。在这些情况下,自动并行化工具无疑将发挥重要作用。这些工具的重要组成部分是执行序列代码的相关域分解以最大程度地利用可用计算元素的能力。朝这个方向迈出的第一步之一是理解异构架构中计算元素的数量和类型对应用程序整体性能的作用。本文使用两个案例研究,对五个具有不同类型和数量的计算元素的体系结构进行了案例研究,提出了对具有不同类型和数量的计算元素的体系结构的观察。结果表明,感知的加速与实际的加速无关。

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