Comparison of Transceiver and C+L Band Upgrades: Network Traffic and Energy Assessment

R. Sadeghi, B. Correia, E. Virgillito, A. Napoli, N. Costa, J. Pedro, V. Curri
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Abstract

Being as power-efficient as possible is becoming an issue of increasing importance in optical networks due to the continuous increase of requested capacity resulting from the exponential growth of IP traffic. In this work, we investigate the trade-off between network capacity and energy consumption in optical transport networks when considering (i) three coherent transceiver implementations; (ii) two capacity upgrade strategies, and (iii) uniform and nonuniform traffic distributions. We show that, in Deutsche Telekom (DT) reference network, a nonuniform traffic distribution leads to an increase in network capacity of about 100 Tbps with respect to the uniform case. Interestingly, the nonuniform traffic distribution showed that, in the DT reference network, more traffic could be transmitted with less energy consumption than when considering the uniform traffic distribution. Additionally, it is also shown that C+L systems lead to an only negligible increase in energy consumption while attaining comparable network capacity as adding a second optical fiber and using C-band only for the three considered coherent transceiver implementations. Newer transceivers are found to be very power efficient when compared with older ones. This is a consequence of technological advances enabling to increase capacity via using higher-order modulation formats and baud rates. In the case of the ZR implementation, a compromise between lower power consumption and capacity was reached to address shorter links.
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收发器和C+L波段升级的比较:网络流量和能量评估
由于IP流量呈指数级增长,所要求的容量不断增加,因此在光网络中,尽可能节能已成为一个日益重要的问题。在这项工作中,我们研究了在考虑(i)三个相干收发器实现时光传输网络中网络容量和能量消耗之间的权衡;(ii)两种容量升级策略,以及(iii)均匀和不均匀的流量分布。我们表明,在德国电信(DT)参考网络中,非均匀流量分布导致网络容量相对于均匀情况增加约100 Tbps。有趣的是,非均匀流量分布表明,在DT参考网络中,与均匀流量分布相比,可以以更少的能耗传输更多的流量。此外,还表明,C+L系统在获得与添加第二根光纤和仅为三种考虑的相干收发器实现使用C波段相当的网络容量时,只会导致能量消耗的微不足道的增加。与旧的收发器相比,新的收发器被发现非常节能。这是技术进步的结果,可以通过使用高阶调制格式和波特率来增加容量。在ZR实现的情况下,在较低功耗和容量之间达成妥协,以解决较短的链路。
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