Survivable Virtual Network Mapping against Double-Link Failures Based on Virtual Network Capacity Sharing

Emanuele Viadana, Omran Ayoub, F. Musumeci, M. Tornatore
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引用次数: 1

Abstract

Network Slicing is one of the key enabling technologies in 5G networks, as it allows the same network infrastructure to host numerous services, characterized by different Quality of Service (QoS) requirements. Network slicing provides greater flexibility when assigning resources to virtual networks (VNs, or, equivalently, “network slices”), allowing to meet very diverse service requirements. However, network slicing also brings numerous challenges in terms of management of network resources. Among these, service reliability is one of the most important, especially in light of the rising importance of ultra-reliable services in 5G. In this study, we investigate the Survivable Virtual Network Mapping (SVNM) problem focusing on double-link failures. SVNM against double-link failures can be guaranteed enforcing appropriate SVNM constraints, but this approach requires excessive redundant capacity. Capacity sharing represents a more capacity-efficient solution to ensure survivability against double-link failures. Hence, we propose a new SVNM strategy that allows capacity sharing across different virtual networks in case of double-link failure. To evaluate benefits of the proposed technique we categorize six different SVNM scenarios (with and without capacity sharing, jointly applied with SVNM or not) and formalize them through Integer Linear Programming (ILP) models. Results show that the proposed technique for SVNM with capacity sharing enables availability gains (up to about 29%) over traditional SVNM against single-link failures and significant capacity savings (up to about 50%) over SVNM against double-link failures. The advantages are more significant for increasing number of virtual networks.
基于虚拟网络容量共享的双链路故障可生存虚拟网络映射
网络切片是5G网络中的关键使能技术之一,因为它允许相同的网络基础设施托管具有不同服务质量(QoS)要求的众多服务。网络切片在将资源分配给虚拟网络(VNs,或等价的“网络切片”)时提供了更大的灵活性,允许满足非常多样化的业务需求。然而,网络切片在网络资源管理方面也带来了许多挑战。其中,服务可靠性是最重要的因素之一,特别是考虑到5G中超可靠服务的重要性日益提高。在本研究中,我们研究了双链路故障下的可生存虚拟网络映射(svm)问题。针对双链路故障的支持向量机可以保证执行适当的支持向量机约束,但是这种方法需要过多的冗余容量。容量共享是一种容量效率更高的解决方案,可确保双链路故障时的生存能力。因此,我们提出了一种新的svm策略,允许在双链路故障的情况下跨不同虚拟网络共享容量。为了评估所提出的技术的好处,我们对六种不同的支持向量机场景(有和没有容量共享,是否与支持向量机联合应用)进行了分类,并通过整数线性规划(ILP)模型将它们形式化。结果表明,与传统的支持向量机相比,具有容量共享的支持向量机技术可以在单链路故障时获得可用性增益(高达约29%),在双链路故障时比支持向量机节省大量容量(高达约50%)。随着虚拟网络数量的增加,其优势更为显著。
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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