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Enhanced Co-Primary Spectrum Sharing Method for Multi-Operator Networks

机译:多运营商网络的增强型共主频谱共享方法

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We consider a multi-operator small cell network where mobile network operators are sharing a common pool of radio resources. The goal is to ensure long term fairness of spectrum sharing without coordination among small cell base stations. It is assumed that spectral allocation of the small cells is orthogonal to the macro network layer, and thus, only the small cell traffic is modeled. We develop a decentralized control mechanism for base stations using the Gibbs sampling based learning technique, which allocates a suitable amount of spectrum for each base station. Five algorithms are compared addressing co-primary multi-operator resource sharing under heterogeneous traffic requirements and the performance is assessed through extensive system-level simulations. The main performance metrics are user throughput and fairness between operators. The numerical results demonstrate that the proposed Gibbs sampling based learning algorithm provides about tenfold cell edge throughput gains compared to state-of-the-art algorithms, while ensuring fairness between operators.
机译:我们考虑一个多运营商的小型蜂窝网络,其中移动网络运营商共享一个公共的无线电资源池。目的是确保频谱共享的长期公平性,而无需在小型蜂窝基站之间进行协调。假设小小区的频谱分配与宏网络层正交,因此,仅对小小区业务进行建模。我们使用基于Gibbs采样的学习技术开发了基站的分散控制机制,该机制为每个基站分配了适当数量的频谱。比较了五种算法,以解决异构流量需求下的主要多运营商资源共享问题,并通过广泛的系统级仿真评估了性能。主要性能指标是用户吞吐量和运营商之间的公平性。数值结果表明,与现有技术相比,该基于Gibbs采样的学习算法可提供约十倍的小区边缘吞吐量增益,同时确保运算符之间的公平性。

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