以用户为中心的云RAN的效率权衡

U. Hashmi, Syed Ali Raza Zaidi, Arsalan Darbandi, A. Imran
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引用次数: 8

摘要

总吞吐量、能源效率和无处不在的用户体验等雄心勃勃的目标正在推动超密集网络的出现。蜂窝间干扰和超密集网络中的高能耗是实现这些目标的主要阻碍因素。为了应对上述挑战,在本文中,我们为基于Cloud RAN的超密集部署提出了一种新的以用户为中心的网络编排解决方案。在此解决方案中,根据用户的服务优先级在用户周围创建集群(虚拟磁盘)。在集群半径内,只激活最佳的远程无线电头(RRH)来为用户服务,从而减少干扰并节省能源。我们采用基于随机几何的方法来量化区域频谱效率(ASE)和RRH功耗模型,以量化所提出的以用户为中心的云RAN (UCRAN)的能源效率(EE)。通过广泛的分析,我们观察到产生最佳ASE和EE的聚类大小有很大的不同。随后,我们提出了一个博弈论自组织网络(GT-SON)框架,该框架可以根据网络条件和运营商收入模式的变化,实时协调以ASE和EE为重点的运营模式之间的网络,以实现帕累托最优解决方案。通过调整纳什议价方案(NBS)的指数效率权重,建立了一个议价博弈模型来研究ASE-EE的权衡。结果表明,与当前非以用户为中心的网络设计相比,所提出的解决方案提供了以更高的ASE或EE运行网络的灵活性,同时显著改善了用户体验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the Efficiency Tradeoffs in User-Centric Cloud RAN
Ambitious targets for aggregate throughput, energy efficiency and ubiquitous user experience are propelling the advent of ultra- dense networks. Intercell interference and high energy consumption in an ultra-dense network are the prime hindering factors in pursuit of these goals. To address the aforementioned challenges, in this paper, we propose a novel user-centric network orchestration solution for Cloud RAN based ultra-dense deployments. In this solution, a cluster (virtual disc) is created around users depending on their service priority. Within the cluster radius, only the best remote radio head (RRH) is activated to serve the user, thereby decreasing interference and saving energy. We follow a stochastic geometry based approach to quantify the area spectral efficiency (ASE) and RRH power consumption models to quantity energy(EE) efficiency of the proposed user-centric Cloud RAN (UCRAN). Through extensive analysis, we observe that the cluster sizes that yield optimal ASE and EE are quite different. Subsequently, we propose a game theoretic self-organizing network (GT-SON) framework that can orchestrate the network between ASE and EE focused operational modes in real-time in response to changes in network conditions and the operator's revenue model, to achieve a Pareto optimal solution. A bargaining game is modeled to investigate the ASE-EE tradeoff through adjustment in the exponential efficiency weightage in the Nash bargaining solution (NBS). Results show that compared to current non user-centric network design, the proposed solution offers the flexibility to operate the network at multiple folds higher ASE or EE along with significant improvement in user experience.
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