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Rate-adaptable optics for next generation long-haul transport networks

机译:适用于下一代长途运输网络的速率自适应光学器件

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We discuss the emerging rate-adaptable optical transmission technology and how this new technology may be employed to further reduce the transport network cost to meet ever growing bandwidth demand in the core network. Two different types of transponders are considered: those adjusting either the transported bit rate (i.e., client data rate) or the symbol rate (with a fixed bit rate). We propose a methodology for calculating the (normalized) cost to build out an entire long-haul transport network with several options for bit-rate-adaptable transponders. By using link-length demands from an exemplary distance-diverse network, we demonstrate that time-domain hybrid-QAM-enabled fine-grain rate-adaptable transponders can reduce network cost by more than 20 percent within a traditional, fixed-bandwidth, wavelength-division-multiplexed grid. We also argue that the total transponder expense using symbol-rate-adaptable technology will be greater than when using bit-rate-adaptable technology, as well as requiring more costly flex-grid ROADMs for channel routing.
机译:我们将讨论新兴的速率自适应光传输技术,以及如何使用这项新技术来进一步降低传输网络成本,以满足核心网络中不断增长的带宽需求。考虑了两种不同类型的应答器:用于调节传输的比特率(即,客户端数据率)或符号率(具有固定的比特率)的应答器。我们提出了一种计算(标准化)成本的方法,以构建一个完整的长途传输网络,并为比特率自适应应答器提供多种选择。通过使用示例性的距离分集网络的链路长度要求,我们证明了时域混合QAM启用的细粒度速率自适应转发器可以在传统的固定带宽波长范围内将网络成本降低20%以上分区复用网格。我们还争辩说,使用符号速率自适应技术的总转发器费用将比使用比特率自适应技术的总费用更高,并且需要更昂贵的弹性网格ROADM进行信道路由。

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