具有专用保护的5G传输网络的可靠切片

Nashid Shahriar, Sepehr Taeb, S. R. Chowdhury, M. Zulfiqar, M. Tornatore, R. Boutaba, J. Mitra, Mahdi Hemmati
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引用次数: 13

摘要

在5G网络中,切片允许对网络资源进行分区,以满足从访问到传输的多个网段的严格端到端服务需求。这些需求正在塑造这些领域的技术发展。特别是,传输部分目前正朝着所谓的弹性光网络(EONs)的方向发展,这是支持灵活光谱网格和新型弹性转发器功能的新一代光网络。本文主要研究EON中5G传输网络切片的可靠性。具体来说,我们考虑了切片5G传输网络的问题,即在5G传输上建立虚拟网络,同时提供专用保护。由于专用保护需要大量的备份资源,我们提出的解决方案采用了两种技术来减少备份资源:(i)带宽压缩,即提供相对于原始请求的减少的保护带宽;(ii)可生存的多路径供应。我们利用eon的能力来微调频谱分配,适应调制格式和前向纠错(FEC),为网络切片分配适当大小的频谱资源。我们对实际案例研究网络拓扑的数值评估量化了采用EON在传统固定网格光网络上实现的频谱节省,并提供了关于带宽压缩和多路径配置对频谱利用率影响的新见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reliable Slicing of 5G Transport Networks with Dedicated Protection
In 5G networks, slicing allows partitioning of network resources to meet stringent end-to-end service requirements across multiple network segments, from access to transport. These requirements are shaping technical evolution in each of these segments. In particular, the transport segment is currently evolving in the direction of the so-called elastic optical networks (EONs), a new generation of optical networks supporting a flexible optical-spectrum grid and novel elastic transponder capabilities. In this paper, we focus on the reliability of 5G transport-network slices in EON. Specifically, we consider the problem of slicing 5G transport networks, i.e., establishing virtual networks on 5G transport, while providing dedicated protection. As dedicated protection requires a large amount of backup resources, our proposed solution incorporates two techniques to reduce backup resources: (i) bandwidth squeezing, i.e., providing a reduced protection bandwidth with respect to the original request; and (ii) survivable multi-path provisioning. We leverage the capability of EONs to fine tune spectrum allocation and adapt modulation format and Forward Error Correction (FEC) for allocating rightsize spectrum resources to network slices. Our numerical evaluation over realistic case-study network topologies quantifies the spectrum savings achieved by employing EON over traditional fixed-grid optical networks, and provides new insights on the impact of bandwidth squeezing and multi-path provisioning on spectrum utilization.
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