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首页> 外文期刊>IEEE Transactions on Communications >Advanced User Association in Non-Orthogonal Multiple Access-Based Fog Radio Access Networks
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Advanced User Association in Non-Orthogonal Multiple Access-Based Fog Radio Access Networks

机译:基于非正交多访问的FOG无线电接入网络的高级用户关联

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摘要

Non-orthogonal multiple access (NOMA) is promising to further improve spectral efficiency (SE) and decrease transmit latency in fog radio access networks (F-RANs) through serving multi-users in the same frequency-time resource block simultaneously, while the complexity of user association is challenging to exploit the corresponding performance gains. In this paper, a performance analysis framework for the user association in NOMA based F-RANs is proposed and the closed-form analytical results are developed by using stochastic geometry tool. In particular, we propose two user association algorithms based on evolutionary game and reinforcement learning, respectively. The performance model jointly considering quality of service, delay cost, and power consumption is formulated as a payoff function, and the corresponding performance expressions are derived for these two user association algorithms. Numerical and simulation results demonstrate that the derived expressions are accurate, and the NOMA based F-RAN can provide over 50% performance gains on SE compared to the orthogonal multiple access scheme. Furthermore, these two proposed user association algorithms work well with high convergence, which can effectively enhance the overall performance and the fairness of users.
机译:非正交多次访问(NOMA)很有希望进一步提高频谱效率(SE)并通过在同一频率 - 时源块中同时在同一频率 - 时源块中同时在同一频率 - 时间块中提供多用户来减少传输延迟。用户协会挑战,利用相应的性能收益。在本文中,提出了一种基于Noma的F-RANS中的用户关联的性能分析框架,并通过使用随机几何工具开发了闭合形式的分析结果。特别是,我们分别提出了两个基于进化游戏和强化学习的用户协会算法。绩效模型共同考虑服务质量,延迟成本和功耗的形式被制定为支付函数,并且为这两个用户协会算法导出了相应的性能表达式。数值和仿真结果表明,衍生的表达式是准确的,并且与正交多址方案相比,基于NOMA的F-RAN可以提供超过50%的性能收益。此外,这两个提议的用户协会算法与高收敛良好,这可以有效提高用户的整体性能和公平性。

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