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引用次数: 12

摘要

随着时钟频率和芯片面积的增加,在实现能量效率的同时,分布低偏度,全球时钟信号变得越来越困难。深亚微米技术带来的挑战可以通过使用多电压/多频率孤岛设计风格来缓解,也称为全局异步,局部同步(GALS)设计范式。本文提出了一种集群架构,通过对运行时对整体性能不重要的应用程序代码使用动态电压缩放来实现应用程序自适应能源效率。与使用动态电压缩放(DVS)利用应用程序之间的工作负载变化进行任务调度相反,我们的方法针对同一应用程序内的工作负载变化,同时动态地将代码分类为关键或非关键,并适应这些代码部分的关键变化。我们的研究结果表明,与非自适应集群架构相比,应用自适应可变电压/变频集群架构在能源方面提高了22%,在能源延迟产品方面提高了11%,同时与全球应用的分布式交换机相比,可节省多达31%的能源。
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Application adaptive energy efficient clustered architectures
As clock frequency and die area increase, achieving energy efficiency, while distributing a low skew, global clock signal becomes increasingly difficult. Challenges imposed by deep-submicron technologies can be alleviated by using a multiple voltage/multiple frequency island design style, otherwise called the globally asynchronous, locally synchronous (GALS) design paradigm. This paper proposes a clustered architecture that enables application-adaptive energy efficiency through the use of dynamic voltage scaling for application code that is rendered non-critical for the overall performance, at run-time. As opposed to task scheduling using dynamic voltage scaling (DVS) that exploits workload variations across applications, our approach targets workload variations within the same application, while on-the fly classifying code as critical or noncritical and adapting to changes in the criticality of such code portions. Our results show that application adaptive variable voltage/variable frequency clustered architectures are up to 22% better in energy and 11% better in energy-delay product than their non-adaptive counterparts, while providing up to 31% more energy savings when compared to DVS applied globally.
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