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A Reliability-Aware Network Service Chain Provisioning With Delay Guarantees in NFV-Enabled Enterprise Datacenter Networks

机译:启用NFV的企业数据中心网络中具有时延保证的可靠性感知网络服务链供应

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Traditionally, service-specific network functions (NFs) (e.g., Firewall, intrusion detection system, etc.) are executed by installation-and maintenance-costly hardware middleboxes that are deployed within a datacenter network following a strictly ordered chain. NF virtualization (NFV) virtualizes these NFs and transforms them into instances of plain software referred to as virtual NFs (VNFs) and executed by virtual machines, which, in turn, are hosted over one or multiple industry-standard physical machines. The failure (e.g., hardware or software) of any one of a service chain's VNFs leads to breaking down the entire chain and causing significant data losses, delays, and resource wastage. This paper establishes a reliability-aware and delay-constrained (READ) routing optimization framework for NFV-enabled datacenter networks. READ encloses the formulation of a complex mixed integer linear program (MILP) whose resolution yields an optimal network service VNF placement and traffic routing policy that jointly maximizes the achieved respective reliabilities of supported network services and minimizes these services' respective end-to-end delays. A heuristic algorithm dubbed Greedy-k-shortest paths (GSP) is proposed for the purpose of overcoming the MILP's complexity and develop an efficient routing scheme whose results are comparable to those of READ's optimal counterparts. Thorough numerical analyses are conducted to evaluate the network's performance under GSP, and hence, gauge its merit; particularly, when compared to existing schemes, GSP exhibits an improvement of 18.5% in terms of the average end-to-end delay as well as 7.4% to 14.8% in terms of reliability.
机译:传统上,特定于服务的网络功能(NF)(例如防火墙,入侵检测系统等)由安装和维护成本高昂的硬件中间盒执行,这些中间盒按照严格有序的链部署在数据中心网络中。 NF虚拟化(NFV)对这些NF进行虚拟化,并将它们转换为称为虚拟NF(VNF)的普通软件实例,并由虚拟机执行,这些虚拟机又托管在一台或多台行业标准的物理机上。服务链的任何一个VNF的故障(例如,硬件或软件)都会导致整个链中断,并导致大量数据丢失,延迟和资源浪费。本文为启用NFV的数据中心网络建立了可靠性感知和延迟受限(READ)路由优化框架。 READ包含一个复杂的混合整数线性程序(MILP)的公式,该程序的分辨率可产生最佳的网络服务VNF放置和流量路由策略,从而共同最大化所支持的网络服务的相应可靠性,并最小化这些服务的端到端延迟。为了克服MILP的复杂性并开发一种有效的路由方案,其启发式算法被称为Greedy-k最短路径(GSP),其结果可与READ的最佳同类方案相提并论。进行了详尽的数值分析,以评估GSP下的网络性能,从而评估其优劣。特别是,与现有方案相比,GSP的平均端到端延迟提高了18.5%,可靠性提高了7.4%至14.8%。

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