首页> 外文会议>2018 55th ACM/ESDA/IEEE Design Automation Conference >LEAD: Learning-enabled Energy-Aware Dynamic Voltage/frequency scaling in NoCs
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LEAD: Learning-enabled Energy-Aware Dynamic Voltage/frequency scaling in NoCs

机译:领先:NoC中支持学习的能量感知动态电压/频率缩放

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Network on Chips (NoCs) are the interconnect fabric of choice for multicore processors due to their superiority over traditional buses and crossbars in terms of scalability. While NoC's offer several advantages, they still suffer from high static and dynamic power consumption. Dynamic Voltage and Frequency Scaling (DVFS) is a popular technique that allows dynamic energy to be saved, but it can potentially lead to loss in throughput. In this paper, we propose LEAD - Learning-enabled Energy-Aware Dynamic voltage/frequency scaling for NoC architectures wherein we use machine learning techniques to enable energy-performance trade-offs at reduced overhead cost. LEAD enables a proactive energy management strategy that relies on an offline trained regression model and provides a wide variety of voltage/frequency pairs (modes). LEAD groups each router and the router's outgoing links locally into the same V/F domain, allowing energy management at a finer granularity without additional timing complications and overhead. Our simulation results using PARSEC and Splash-2 benchmarks on a 4 × 4 concentrated mesh architecture show an average dynamic energy savings of 17% with a minimal loss of 4% in throughput and no latency increase.
机译:片上网络(NoC)是多核处理器的首选互连结构,因为它们在可扩展性方面优于传统的总线和交叉开关。尽管NoC具有许多优势,但它们仍然遭受静态和动态功耗高的困扰。动态电压和频率缩放(DVFS)是一种流行的技术,可以节省动态能量,但有可能导致吞吐量损失。在本文中,我们提出了LEAD-NoC架构的支持学习的能量感知动态电压/频率缩放,其中我们使用机器学习技术以降低开销成本的方式实现了能量性能折衷。 LEAD启用了一种主动的能量管理策略,该策略依赖于脱机训练的回归模型并提供多种电压/频率对(模式)。 LEAD将每个路由器和路由器的输出链路本地分组到同一个V / F域中,从而以更精细的粒度进行能量管理,而不会增加时序复杂性和开销。我们在4×4集中式网格体系结构上使用PARSEC和Splash-2基准测试的仿真结果表明,平均动态节能量为17%,吞吐量损失最小为4%,并且没有增加延迟。

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