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Network Planning Under Uncertainties

机译:不确定性下的网络规划

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摘要

One of the main focuses for network planning is on the optimization of network resources required to build a network under certain traffic demand projection. Traditionally, the inputs to this type of network planning problems are treated as deterministic. In reality, the varying traffic requirements and fluctuations in network resources can cause uncertainties in the decision models. The failure to include the uncertainties in the network design process can severely affect the feasibility and economics of the network. Therefore, it is essential to find a solution that can be insensitive to the uncertain conditions during the network planning process. As early as in the 1960's, a network planning problem with varying traffic requirements over time had been studied. Up to now, this kind of network planning problems is still being active researched, especially for the VPN network design.Another kind of network planning problems under uncertainties that has been studied actively in the past decade addresses the fluctuations in network resources. One such hotly pursued research topic is survivable network planning. It considers the design of a network under uncertainties brought by the fluctuations in topology to meet the requirement that the network remains intact up to a certain number of faults occurring anywhere in the network. Recently, the authors proposed a new planning methodology called Generalized Survivable Network that tackles the network design problem under both varying traffic requirements and fluctuations of topology. Although all the above network planning problems handle various kinds of uncertainties, it is hard to find a generic framework under more general uncertainty conditions that allows a more systematic way to solve the problems. With a unified framework, the seemingly diverse models and algorithms can be intimately related and possibly more insights and improvements can be brought out for solving the problem. This motivates us to seek a generic framework for solving the network planning problem under uncertainties.In addition to reviewing the various network planning problems involving uncertainties, we also propose that a unified framework based on robust optimization can be used to solve a rather large segment of network planning problem under uncertainties. Robust optimization is first introduced in the operations research literature and is a framework that incorporates information about the uncertainty sets for the parameters in the optimization model. Even though robust optimization is originated from tackling the uncertainty in the optimization process, it can serve as a comprehensive and suitable framework for tackling generic network planning problems under uncertainties.In this paper, we begin by explaining the main ideas behind the robust optimization approach. Then we demonstrate the capabilities of the proposed framework by giving out some examples of how the robust optimization framework can be applied to the current common network planning problems under uncertain environments. Next, we list some practical considerations for solving the network planning problem under uncertainties with the proposed framework. Finally, we conclude this article with some thoughts on the future directions for applying this framework to solve other network planning problems.
机译:网络规划的主要重点之一是优化在某些流量需求预测下构建网络所需的网络资源。传统上,此类网络规划问题的输入被视为确定性的。实际上,变化的流量需求和网络资源的波动会导致决策模型的不确定性。无法将不确定性包括在网络设计过程中会严重影响网络的可行性和经济性。因此,必须找到一种对网络规划过程中的不确定条件不敏感的解决方案。早在1960年代,就研究了网络规划问题,该问题随着时间的流逝而变化。到目前为止,这类网络规划问题仍在积极研究中,尤其是对于VPN网络设计而言。 在过去的十年中,已经积极研究了另一种不确定性下的网络规划问题,以解决网络资源的波动问题。这样的热门研究主题之一是可生存的网络规划。它考虑了拓扑变化带来的不确定性下的网络设计,以满足网络在任何地方发生的一定数量的故障之前保持完好无损的要求。最近,作者提出了一种称为通用可生存网络的新规划方法,该方法可在流量需求变化和拓扑波动的情况下解决网络设计问题。尽管上述所有网络规划问题都可以处理各种不确定性,但是很难在更通用的不确定性条件下找到通用框架,从而可以采用更系统的方法来解决问题。通过一个统一的框架,可以将看似多样的模型和算法紧密地联系在一起,并且有可能为解决问题带来更多的见识和改进。这促使我们寻求一个通用的框架来解决不确定性下的网络规划问题。 除了审查涉及不确定性的各种网络规划问题外,我们还提出基于鲁棒优化的统一框架可用于解决不确定性下相当大一部分的网络规划问题。运维研究文献中首先介绍了鲁棒优化,它是一个框架,其中包含有关优化模型中参数不确定性集的信息。即使鲁棒的优化源自解决优化过程中的不确定性,它也可以作为解决不确定性情况下通用网络规划问题的全面而适当的框架。 在本文中,我们首先说明鲁棒优化方法背后的主要思想。然后,我们通过给出一些示例说明如何将鲁棒优化框架应用于不确定环境下的当前常见网络规划问题,从而证明所提出框架的功能。接下来,我们列出了在提出的框架下解决不确定性网络规划问题的一些实际考虑。最后,我们在结束本文时对使用此框架解决其他网络规划问题的未来方向进行了一些思考。

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