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Predictive-Flow-Queue-Based Energy Optimization for Gigabit Ethernet Controllers

机译:千兆以太网控制器的基于预测流队列的能量优化

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This paper presents energy-efficient packet interface architecture and a power management technique for gigabit Ethernet controllers, where low-latency and high-bandwidth are required to meet the pressing demands of very high frame-rate data. More specifically, a predictive-flow-queue (PFQ)-based packet interface architecture is presented, which adjusts the operating frequency of different functional blocks at a fine granularity so as to minimize the total system energy dissipation while attaining performance goals. A key feature of the proposed architecture is the implementation of a runtime workload prediction method for the network traffic along with a continuous frequency adjustment mechanism, which enables one to eliminate the latency and energy penalties associated with discrete power mode transitions. Furthermore, a stochastic modeling framework based on Markovian decision processes and queuing models is employed, which make it possible to adopt a precise mathematical programming formulation for the energy optimization under performance constraints. Experimental results with a designed 65-nm Gb Ethernet controller show that the proposed interface architecture and continuous frequency scaling result in system-wide energy savings while meeting performance specifications.
机译:本文介绍了千兆位以太网控制器的节能数据包接口体系结构和电源管理技术,其中要求低延迟和高带宽以满足非常高的帧速率数据的迫切需求。更具体地说,提出了一种基于预测流队列(PFQ)的数据包接口体系结构,该体系结构以细粒度调整了不同功能块的工作频率,从而在达到性能目标的同时最大程度地降低了系统总能耗。所提出的体系结构的关键特征是用于网络流量的运行时工作负载预测方法的实现以及连续的频率调整机制,该机制使人们能够消除与离散功率模式转换相关的等待时间和能耗。此外,采用了基于马尔可夫决策过程和排队模型的随机建模框架,这使得在性能约束下采用精确的数学规划公式进行能量优化成为可能。设计的65纳米Gb以太网控制器的实验结果表明,所提出的接口体系结构和连续频率缩放可在满足性能规格的同时节省系统范围的能源。

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