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Green Optical Communications—Part II: Energy Limitations in Networks

机译:绿色光通信-第二部分:网络中的能量限制

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This is Part II of a two-part paper that explores the fundamental limitations on energy consumption in optical communications. Part I covers energy consumption in optical transport. Part II explores the lower bound on energy consumption in optical switches and networks, analyzes the energy performance of a range of switching devices, and presents quantitative models of the lower bounds on energy consumption in these devices. These models are incorporated into a simple model of a global switched network and the lower bound on total network energy consumption is estimated. We compare the results of this bottom-up calculation of the lower bound on network energy with a previous top-down analysis of overall network energy consumption based on real-world data for state-of-the art equipment and “business-as-usual” forward projections. The present analysis confirms a previous finding in that in a global scale network, the energy consumption of the switching infrastructure is larger than the energy consumption of the transport infrastructure. We find that the theoretical lower bounds on transport energy identified in Part I and the switching energy in this paper are more than three orders of magnitude lower than predicted by a “business-as-usual” analysis. In this paper, we explore how the gap between the theoretical lower bounds on energy consumption and current trends in network energy efficiency can be closed. We argue that future research needs to focus on improving the energy efficiency of switching and on devising methods to reduce the quantity of switching infrastructure in the network. Further key strategies for reducing network energy consumption include developing of low-energy transport technologies, reducing the energy overheads associated with peripheral functions that are not central to the transport and switching of data, and reducing the energy consumption of the access network.
机译:这是一个分为两部分的论文的第二部分,该论文探讨了光通信中能耗的基本限制。第一部分介绍光传输中的能耗。第二部分探讨了光开关和网络中能耗的下限,分析了各种交换设备的能源性能,并提出了这些设备中能耗下限的定量模型。这些模型被合并到全球交换网络的简单模型中,并估计了网络总能耗的下限。我们将这种自下而上的网络能耗下限计算结果与先前的自上而下的网络能耗总体分析结果进行了比较,该分析基于最先进设备的实际数据和“一切照旧”向前预测。本分析证实了以前的发现,即在全球规模的网络中,交换基础结构的能耗大于运输基础设施的能耗。我们发现,在第一部分中确定的运输能量的理论下限和本文中的转换能量比“照常营业”分析所预测的要低三个数量级。在本文中,我们探索了如何缩小理论上的能耗下限和当前网络能效趋势之间的差距。我们认为,未来的研究需要集中在提高交换的能源效率和设计减少网络中交换基础结构数量的方法上。降低网络能耗的其他关键策略包括开发低能耗传输技术,减少与不是数据传输和交换中心的外围功能相关的能源开销,以及降低接入网的能耗。

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