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Adaptive beamforming and user association in heterogeneous cloud radio access networks: A mobility-aware performance-cost trade-off

机译:异构云无线电接入网络中的自适应波束成形和用户关联:移动式感知性能 - 成本折衷

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Heterogeneous Cloud Radio Access Network (H-CRAN) is a promising network architecture for the future 5G mobile communication system to address the increasing demand for mobile data traffic. In this work, we consider the design of efficient joint beamforming and user clustering (user-to-Remote Radio Head (RRH) association) in the downlink of a H-CRAN where users have different mobility profiles. Given the rapidly time-varying nature of such wireless environment, it becomes very challenging to enable optimized beamforming and user clustering without incurring large Channel State Information (CSI) and signaling overheads. The main objective of this work is to investigate and evaluate the trade-off between system throughput and the incurred costs in terms of complexity and signaling overhead, including the impact of different CSI feedback strategies given different user mobility profiles. We propose the Adaptive Beamforming and User Clustering (ABUC) algorithm which adapts its feedback parameters, namely the period of dynamic user clustering and the type of CSI feedback, in function of user mobility. Furthermore, we design a reinforcement-learning framework which enables the proposed ABUC algorithm to optimize its scheduling parameters on-the-fly, given each user mobility profile. Based on computer simulations, an analysis of the effect of mobility on system performance metrics is presented and conclusions are drawn regarding the algorithm's adequate parameter tuning for different mobility scenarios. (C) 2019 Elsevier B.V. All rights reserved.
机译:异构云无线电接入网络(H-CRAN)是未来5G移动通信系统的有前途的网络架构,以解决对移动数据流量的不断增长的需求。在这项工作中,我们考虑在用户具有不同移动配置文件的H-CRAN的下行链路中设计有效的关节波束成形和用户聚类(用户到远程无线电头(RRH)关联)。鉴于这种无线环境的快速时变性质,使得能够优化的波束成形和用户聚类而不导致大信道状态信息(CSI)和信令开销,它变得非常具有挑战性。这项工作的主要目标是调查和评估系统吞吐量之间的权衡和在复杂性和信令开销方面的产生成本,包括不同的CSI反馈策略给出不同的用户移动性配置文件的影响。我们提出了适应性波束成形和用户聚类(abuc)算法,它适应其反馈参数,即动态用户聚类的时期以及用户移动性的功能的CSI反馈的类型。此外,我们设计了一种加强学习框架,该框架使得提出的ABUC算法能够为每个用户移动配置文件而在飞行中优化其调度参数。基于计算机模拟,提出了对系统性能度量的移动性的影响,并绘制了算法对不同移动方案的适当参数调整的结论。 (c)2019 Elsevier B.v.保留所有权利。

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