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Adaptive Spectrum Control and Management in Elastic Optical Networks

机译:弹性光网络中的自适应频谱控制和管理

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Elastic optical networking (EON) has emerged in recent years as a promising solution for implementing flexible bandwidth channels (flexpaths) that efficiently match the allocated bandwidth with the traffic demand using agile granularities of spectrum allocation. However, the additional flexibility in such networks raises challenges in terms of efficient control and management of spectrum resources. Among them, three important issues are (1) mitigation of spectral fragmentation, (2) implementation of impairment awareness and enhancement of robustness against impairments for potentially large-bandwidth flexpaths, and (3) design of an efficient restoration scheme to combat network failures. This paper presents an adaptive spectrum control and management scheme, which includes: dynamic on-demand spectral defragmentation, adaptive combinational quality of transmission (QoT) restoration (ACQR) and supervisory channel-assisted active restoration, to account for the three issues above. We present scalable networking algorithms and experimental demonstrations that address these issues in an EON testbed. Simulation results show that the defragmentation technique is capable of reducing the provisioning blocking probability by half with only one defragmentation module on each link. Then, we also show that the ACQR can efficiently restore many degraded flexpaths on the same impaired link while reducing the restoration blocking probability by a factor of 10 compared with the conventional rerouting method. At last, we show via simulation the advantages of using supervisory channels to determine restoration path quality and selection in EON restorations. This paper also presents experimental demonstrations to corroborate the effectiveness and feasibility of implementing these capabilities in next generation optical networks.
机译:近年来,弹性光网络(EON)已成为一种有前途的解决方案,用于实现灵活的带宽信道(flexpath),该信道使用敏捷的频谱分配粒度有效地将分配的带宽与流量需求匹配。然而,这种网络的额外灵活性在频谱资源的有效控制和管理方面提出了挑战。其中,三个重要问题是:(1)减轻频谱碎片;(2)实施减损意识和增强针对潜在大带宽弹性路径的减损鲁棒性;以及(3)设计有效的恢复方案以应对网络故障。本文提出了一种自适应频谱控制和管理方案,其中包括:动态按需频谱碎片整理,自适应组合传输质量(QoT)恢复(ACQR)和监督信道辅助主动恢复,以解决上述三个问题。我们提供可扩展的网络算法和实验演示,以解决EON测试平台中的这些问题。仿真结果表明,碎片整理技术能够在每个链路上只有一个碎片整理模块,从而将配置阻塞的可能性降低一半。然后,我们还表明,与传统的重新路由方法相比,ACQR可以在同一受损链路上有效地还原许多降级的弹性路径,同时将恢复阻塞的可能性降低了十倍。最后,我们通过仿真展示了使用监督渠道确定EON修复体的修复路径质量和选择的优势。本文还提供了实验演示,以证实在下一代光网络中实现这些功能的有效性和可行性。

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