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Power-aware rationale for using coarse-grained transponders in IP-over-WDM networks

机译:在WDM IP网络中使用粗粒度转发器的功耗感知原理

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摘要

Power consumption is becoming one of the most significant limitations while seeking new solutions to cope with the traffic demand increase. 100 Gbps optical transmission technology has the potential to accommodate upcoming traffic demands with improved figures for W/Gbps compared to previous generations. However, the adoption of such coarse-grained bit-rate granularity with lower flexibility for traffic grooming raises important questions: (1) What repercussions do they have on the overall power consumption and thus operational expenditures (OPEX) compared to legacy fine-grained designs (i.e., using 10 Gbps technology)? (2) What is the long-term cost of coarse-grained designs? We define a power-aware mixed integer linear programming (MILP) formulation based on actual modular architectures where modules are upgraded as the network traffic increases. We introduce, for the first time, important practical constraints which were neglected by previous works, so that there is correspondence between interface modules and transponders instead of assuming a single type of interface module per line card, and we use accurate power consumption values instead of using approximations per port. We also present a comprehensive analysis on the trade-off between power consumption and available optical capacity, and power consumption and capital expenditure (CAPEX) for three different scenarios, defining the impact of provisioning the network with higher granularity transmission technology. Regarding the available optical capacity versus power consumption, 37.7% additional optical network capacity is achieved when using exclusively 100 Gbps technology at 13.3%–32.4% power consumption expenses and 15.3% optical network capacity at only a 2.6%–8.8% power consumption penalty when using 40 and 100 Gbps technologies. From a CAPEX perspective, up to 19.4% savings can be achieved by provisioning ahead using coarse-grained designs.
机译:在寻求新的解决方案以应对交通需求增长的同时,功耗已成为最重要的限制之一。与前几代产品相比,100 Gbps光传输技术具有以W / Gbps改善的数字来满足即将到来的流量需求的潜力。但是,采用这种粗粒度的比特率粒度和较低的灵活性进行流量疏导提出了重要的问题:(1)与传统的细粒度设计相比,它们对总体功耗和运营支出(OPEX)有什么影响(即使用10 Gbps技术)? (2)粗粒度设计的长期成本是多少?我们基于实际的模块化体系结构定义了一种可感知功耗的混合整数线性规划(MILP)公式,其中,随着网络流量的增加,模块也会进行升级。我们第一次引入了以前工作中忽略的重要实际约束,因此接口模块和转发器之间存在对应关系,而不是假设每个线卡使用单一类型的接口模块,并且我们使用准确的功耗值来代替使用每个端口的近似值。我们还针对三种不同情况下的功耗与可用光容量以及功耗与资本支出(CAPEX)之间的折衷进行了全面分析,从而定义了为网络提供更高粒度传输技术的影响。关于可用光容量与功耗的关系,当仅使用100 Gbps技术以节省13.3%–32.4%的功耗费用,并使用15.3%的光网络容量时,仅使用2.6%–8.8%的功耗时,可实现37.7%的额外光网络容量使用40和100 Gbps技术。从CAPEX角度来看,通过使用粗粒度设计预先进行配置,可以节省多达19.4%的成本。

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