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Spectrum Sharing in Multi-Tenant 5G Cellular Networks: Modeling and Planning

机译:多租户5G蜂窝网络中的频谱共享:建模和规划

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摘要

A multi-tenant cellular network is a paradigm where the physical infrastructure of the network is leased by various big industries, e.g., power utilities and transportation. Hence, a major challenge in a multi-tenant cellular network is the efficient allocation of the physical spectrum to various tenants with broadly distinct quality-of-service (QoS) requirements and communications traffic characteristics. In this paper, we approach this issue by presenting a versatile spectrum sharing scheme, which may be deployed to model any spectrum sharing strategy between various tenants in a multi-tenant cellular network. The proposed spectrum sharing scheme is based upon a queuing system that considers the various communications traffic characteristics of the tenants. In addition, by using the developed queuing system, mathematical expressions for the blocking probability and spectrum utilization are derived. We then propose an optimal spectrum planning scheme, referred to as reservation-based sharing (RBS) policy that maximizes the spectrum utilization by allocating the spectrum resources to various tenants according to their traffic loads. The computational complexity of the optimal RBS policy is reduced by developing a learning automata technique, referred to as pursuit learning-based RBS policy. By using real traffic parameters for various tenants, the results show that the simulation and analytical results match well, ensuring the accuracy of the proposed analytical model. Moreover, the results indicate that the proposed pursuit learning-based RBS policy firmly matches the optimal solution and delivers a higher spectrum utilization that increases linearly with the number of tenants.
机译:多租户蜂窝网络是一种范式,其中网络的物理基础结构由各种大型行业(例如,电力公用事业和运输)租赁。因此,在多租户蜂窝网络中的主要挑战是将物理频谱有效地分配给具有广泛不同的服务质量(QoS)要求和通信流量特性的各种租户。在本文中,我们通过提出一种通用的频谱共享方案来解决该问题,该方案可以部署为多租户蜂窝网络中各个租户之间的任何频谱共享策略建模。拟议的频谱共享方案基于一种排队系统,该排队系统考虑了租户的各种通信流量特征。此外,通过使用开发的排队系统,可以得出阻塞概率和频谱利用率的数学表达式。然后,我们提出了一种最佳的频谱规划方案,称为基于预留的共享(RBS)策略,该策略通过根据各个租户的流量负载向其分配频谱资源来最大化频谱利用率。通过开发一种学习自动机技术(称为基于追求学习的RBS策略),可以降低最佳RBS策略的计算复杂性。通过对各个租户使用实际交通参数,结果表明仿真和分析结果吻合良好,从而确保了所提出分析模型的准确性。此外,结果表明,所提出的基于追求学习的RBS策略与最佳解决方案完全匹配,并提供了更高的频谱利用率,并随着租户数量的增加而线性增加。

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