Progressive network recovery in optical core networks

Kassem Sabeh, M. Tornatore, F. Dikbiyik
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引用次数: 24

Abstract

Disasters hit telecommunication structures every year. As Earth becomes more disaster-prone, telecom networks, and especially optical networks due to their high capacity, should be designed to prepare against disasters. Although disaster resiliency for optical core networks has been subject of significant recent research, damages on the network infrastructure due to the direct or indirect impacts of disasters are usually inevitable. In fact, even if undamaged parts of the network may still be functional, soon the survived resources might get exhausted to serve the residual traffic from unaffected regions. Besides, traffic from affected regions should be recovered quickly to help survivors and rescue teams to recover at least the essential communication services. Full recovery may take weeks and multi-stage progressive-recovery plans are needed. Thus, efficient recovery methods for optical core networks should also be designed. There are only a few research on progressive network recovery problem, mostly dealing with generic IP transport networks. In this work, we investigate the problem of progressive network recovery with a specific focus on the role of different optical network architectures, namely opaque, transparent, and elastic optical networks. We formulate the problem into a set of Mixed Integer Linear Programming (MILP) models. The numerical examples show that optical networks that exploit recent technological advances, i. e., elastic optical networks, perform better than classical architectures (opaque and transparent optical networks) in terms of traffic recovered, due to its higher spectrum-utilization efficiency. The numerical examples also showed that pre-deploying some spare transponders can significantly increase network recovery performance.
光核心网中的渐进式网络恢复
每年都有灾难袭击电信设施。随着地球变得越来越容易发生灾害,电信网络,特别是由于其高容量的光网络,应该设计为应对灾害做好准备。虽然光核心网的灾后恢复能力是近年来研究的重要课题,但由于灾害的直接或间接影响,对网络基础设施的破坏通常是不可避免的。事实上,即使网络中未损坏的部分可能仍然正常工作,很快幸存的资源可能会耗尽,无法为来自未受影响区域的剩余流量提供服务。此外,受灾地区的交通应该迅速恢复,以帮助幸存者和救援队至少恢复基本的通信服务。完全恢复可能需要数周时间,需要多阶段渐进恢复计划。因此,还需要设计有效的光核心网恢复方法。关于渐进式网络恢复问题的研究很少,大多是针对通用的IP传输网络。在这项工作中,我们研究了渐进式网络恢复问题,特别关注不同光网络架构的作用,即不透明、透明和弹性光网络。我们将该问题化为一组混合整数线性规划(MILP)模型。数值示例表明,利用最新技术进步的光网络,即弹性光网络,由于其更高的频谱利用效率,在流量恢复方面比经典架构(不透明和透明光网络)表现得更好。数值算例还表明,预先部署一些备用应答器可以显著提高网络恢复性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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