Efficient virtual network embedding via exploring periodic resource demands

Zichuan Xu, W. Liang, Qiufen Xia
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引用次数: 15

Abstract

Cloud computing built on virtualization technologies promises provisioning elastic computing and communication resources to enterprise users. To share cloud resources efficiently, embedding virtual networks of different users to a distributed cloud consisting of multiple data centers (a substrate network) poses great challenges. Motivated by the fact that most enterprise virtual networks usually operate on long-term basics and have the characteristics of periodic resource demands, in this paper we study the virtual network embedding problem by embedding as many virtual networks as possible to a substrate network such that the revenue of the service provider of the substrate network is maximized, while meeting various Service Level Agreements (SLAs) between enterprise users and the cloud service provider. For this problem, we propose an efficient embedding algorithm by exploring periodic resource demands of virtual networks, and employing a novel embedding metric that models the workloads on both substrate nodes and communication links if the periodic resource demands of virtual networks are given; otherwise, we propose a prediction model to predict the periodic resource demands of these virtual networks based on their historic resource demands. We also evaluate the performance of the proposed algorithms by experimental simulation. Experimental results demonstrate that the proposed algorithms outperform existing algorithms, improving the revenue from 10% to 31%.
通过探索周期性资源需求,实现高效的虚拟网络嵌入
基于虚拟化技术的云计算承诺为企业用户提供弹性计算和通信资源。为了有效地共享云资源,将不同用户的虚拟网络嵌入到由多个数据中心组成的分布式云(底层网络)中提出了很大的挑战。考虑到大多数企业虚拟网络通常在长期基础上运行,并且具有周期性资源需求的特点,本文通过将尽可能多的虚拟网络嵌入到基础网络中,使基础网络的服务提供商的收益最大化,同时满足企业用户与云服务提供商之间的各种服务水平协议(sla),来研究虚拟网络嵌入问题。针对这一问题,我们提出了一种有效的嵌入算法,通过探索虚拟网络的周期性资源需求,并采用一种新的嵌入度量,在给定虚拟网络周期性资源需求的情况下,对底层节点和通信链路上的工作负载进行建模;另外,我们提出了一个基于历史资源需求的预测模型来预测这些虚拟网络的周期性资源需求。我们还通过实验模拟评估了所提出算法的性能。实验结果表明,本文提出的算法优于现有算法,将收益提高了10%至31%。
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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