边缘云中具有成本效益的动态业务功能链嵌入

Weihan Chen, Zhiliang Wang, Han Zhang, Xia Yin, Xingang Shi
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引用次数: 2

摘要

边缘计算(Edge Computing, EC)通过在网络边缘部署资源有限的云基础设施,为一些对延迟敏感的网络服务提供延迟保护。此外,NFV (Network Function Virtualization)是将传统的专用硬件设备替换为可在通用服务器上运行的VNF (Virtual Network Function),实现网络功能。在NFV环境下,SFC (Service Function chains)被认为是降低网络业务配置成本的一种很有前途的方法。因此,NFV可以更灵活、更经济地部署网络功能,并根据EC中网络流量的动态变化来调度网络资源。对于服务提供商而言,寻求最优的SFC嵌入方案可以提高服务性能,降低嵌入成本。本文研究了如何在地理分布式边缘云网络中动态嵌入SFC以满足不同延迟需求的用户请求,并将该问题表述为以最小化总嵌入成本为目标的混合整数线性规划(MILP)。在此基础上,提出了一种新的SFC成本高效嵌入算法(SFC- ceb),以有效嵌入所需的SFC并优化嵌入成本。基于迹迹驱动的仿真结果,与最先进的方案(如RDIP)相比,所提出的算法可以将SFC嵌入成本降低37%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cost-Efficient Dynamic Service Function Chain Embedding in Edge Clouds
Edge Computing (EC) provides delay protection for some delay-sensitive network services by deploying cloud infrastructure with limited resources at the edge of the network. In addition, Network Function Virtualization (NFV) implements network functions by replacing traditional dedicated hardware devices with Virtual Network Function (VNF) that can run on general servers. In NFV environment, Service Function Chaining (SFC) is regarded as a promising way to reduce the cost of configuring network services. NFV therefore allows to deploy network functions in a more flexible and cost-efficient manner, and schedule network resources according to the dynamical variation of network traffic in EC. For service providers, seeking an optimal SFC embedding scheme can improve service performance and reduce embedding cost. In this paper, we study the problem of how to dynamically embed SFC in geo-distributed edge clouds network to serve user requests with different delay requirements, and formulate this problem as a Mixed Integer Linear Programming (MILP) which aims to minimize the total embedding cost. Furthermore, a novel SFC Cost-Efficient emBedding (SFC-CEB) algorithm has been proposed to efficiently embed required SFC and optimize the embedding cost. Based on the results of trace-driven simulations, the proposed algorithm can reduce SFC embedding cost by up to 37% compared with state-of-the-art schemes (e.g., RDIP).
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