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Spatial partitioning for proactive spectrum fragmentation avoidance in flex-grid/SDM dynamic optical core networks

机译:Flex-Grid / SDM动态光学核心网络中主动频谱碎片避免的空间分区

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Spectrum fragmentation has always been a major issue to overcome toward spectrally efficient Flex-Grid over Single-Mode Fiber dynamic optical networks and continues like so when evolving to Flex-Grid over Spatial Division Multiplexing (SDM). A possible strategy to eliminate its pernicious effects is to divide the available spectrum into several partitions, dedicating each one of them to only support connections with identical spectral requirements. In this way, a first-fit spectrum assignment ensures that spectral gaps at each spectral partition will always match the bandwidth needs of future connection requests. In this paper, we extend this strategy to be applicable to Flex-Grid/SDM dynamic optical networks. Furthermore, leveraging the spatial multiplicity offered by SDM, we also investigate spatial partitioning as an effective yet simpler and more easily manageable solution to also eliminate the spectrum fragmentation negative effects. Both strategies are numerically evaluated in two reference Flex-Grid/SDM backbone networks with x 7 spatial multiplicity, yielding noteworthy carried network load gains up to 18% versus a non-partitioned network scenario. When increasing the spatial multiplicities up to x 30, such gains tend to stabilize around 3-4%. Some results are also obtained under unexpected traffic profile deviations, showing that, even under moderate deviations, partitioning becomes beneficial. Comparing spectral and spatial partitioning, they tend to perform quite similar in all cases. This makes us advocate for spatial partitioning as a more interesting solution for spectrum fragmentation avoidance in this kind of networks.
机译:频谱碎片始终是在单模光纤动态光网络上克服光谱有效的Flex-Grid,并且在在空间分割多路复用(SDM)上不断发展到柔性网格时,继续如此。消除其有害效果的可能策略是将可用频谱划分为几个分区,使其每个分区用于仅支持具有相同频谱要求的连接。以这种方式,第一拟合频谱分配确保每个光谱分区的频谱间隙将始终匹配未来连接请求的带宽需求。在本文中,我们将此策略扩展到适用于Flex-Grid / SDM动态光网络。此外,利用SDM提供的空间多重性,我们还调查空间分区作为有效但更简单,更容易管理的解决方案,也可以消除光谱碎片负面影响。两种策略在两种参考柔性网格/ SDM骨干网中进行了数控评估,具有x 7空间多重性,产生了高达18%的携带网络负载增益与未分区的网络场景。当增加X 30的空间多重时,这种增益往往稳定约3-4%。一些结果也在意外的流量轮廓偏差下获得,表明即使在中等偏差下,分区也会有益。比较光谱和空间分区,它们在所有情况下倾向于表现非常相似。这使我们提倡空间分区作为这种网络中的频谱碎片避免的更有趣的解决方案。

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