The SNIC/KTH PRACE prototype: Achieving high energy efficiency with commodity technology without acceleration

S. Johnsson, Daniel Ahlin, John Wang
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引用次数: 7

Abstract

Energy efficiency has become one of the most important considerations for HPC systems, particularly for large scale systems, for economic and environmental reasons and in exceptional cases also social and political. Many approaches are currently being pursued both in regards to architecture and hardware and software technologies to improve energy efficiency for HPC systems. The prototype described here, one of several within the PRACE project exploring improved energy efficiency, explores energy efficiency achievable through use of commodity components for cost effectiveness, and without acceleration for preservation/ease of portability of the large application code base that exists for the type of HPC systems that have been dominating for a decade. The prototype development was a collaborative effort between industry and academia. With a very limited budget for a server design project and severe time constraints the novelty was effectively limited to careful component choices in regards to energy efficiency for HPC workloads and a new motherboard design to support the component choices. A further constraint was that the outcome would be of production quality in order for the industry partners to market the prototype design should it be successful. For the component choices we did a characterization of the power consumption of a blade chassis and made an effort to measure the energy consumption of different memory modules under HPC workloads, information we could not find neither in the literature nor from memory or system vendors. Memory power consumption in the prototype, as well as most HPC systems, is second only to the CPU, sometimes a close second. We report on the design of the prototype, and preliminary performance results with an emphasis on the energy aspects of benchmarks and compare our results with the Blue Gene/P that, after its introduction, has dominated the top of the Green500 list for systems not using acceleration. The preliminary results show that energy efficiency comparable to the BG/P can be achieved without any proprietary technology at a fraction of the cost. The prototype design is now included in the standard product line of the participating platform vendor.
SNIC/KTH PRACE原型:在没有加速的情况下,通过商品技术实现高能效
能源效率已经成为高性能计算系统最重要的考虑因素之一,特别是对于大型系统,出于经济和环境的原因,在特殊情况下也是社会和政治的原因。为了提高高性能计算系统的能源效率,目前人们在架构、硬件和软件技术方面都在追求许多方法。这里描述的原型是探索提高能源效率的PRACE项目中的几个原型之一,它探索了通过使用商品组件实现的能源效率,以提高成本效益,并且不需要加速来保存/易于移植大型应用程序代码库,这些代码库存在于已经主导了十年的HPC系统类型中。原型机的开发是工业界和学术界共同努力的结果。由于服务器设计项目的预算非常有限,而且时间也有严格的限制,这种新颖性实际上被限制在仔细的组件选择上,考虑到HPC工作负载的能源效率,以及支持组件选择的新主板设计。进一步的限制是,如果原型设计成功,为了让行业合作伙伴推销原型设计,结果将是产品质量。对于组件选择,我们对刀片机箱的功耗进行了表征,并努力测量HPC工作负载下不同内存模块的能耗,这些信息我们既无法在文献中找到,也无法从内存或系统供应商那里找到。在原型机以及大多数HPC系统中,内存功耗仅次于CPU,有时甚至紧随其后。我们报告了原型机的设计和初步性能结果,重点是基准测试的能源方面,并将我们的结果与Blue Gene/P进行了比较,Blue Gene/P在引入后,在不使用加速的系统中占据了Green500榜单的首位。初步结果表明,无需任何专有技术,成本仅为BG/P的一小部分,即可实现与BG/P相当的能源效率。原型设计现在包含在参与平台供应商的标准产品线中。
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