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Adaptive Beam-Frequency Allocation Algorithm with Position Uncertainty for Millimeter-Wave MIMO Systems

机译:毫米波MIMO系统中具有位置不确定性的自适应波束频率分配算法。

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Envisioned for fifth generation (5G) systems, millimeter- wave (mmWave) communications are under very active research worldwide. Although pencil beams with accurate beamtracking may boost the throughput of mmWave systems, this poses great challenges in the design of radio resource allocation for highly mobile users. In this paper, we propose a joint adaptive beam-frequency allocation algorithm that takes into account the position uncertainty inherent to high mobility and/or unstable users as, e.g., Unmanned Aerial Vehicles (UAV), for whom this is a major problem. Our proposed method provides an optimized beamwidth selection under quality of service (QoS) requirements for maximizing system proportional fairness, under user position uncertainty. The rationale of our scheme is to adapt the beamwidth such that the best trade-off among system performance (narrower beam) and robustness to uncertainty (wider beam) is achieved. Simulation results show that the proposed method largely enhances the system performance compared to reference algorithms, by an appropriate adaptation of the mmWave beamwidths, even under severe uncertainties and imperfect channel state information (CSIs).
机译:对于第五代(5G)系统,毫米波(mmWave)通信正在全球范围内进行积极研究。尽管具有精确波束跟踪的笔形波束可以提高mmWave系统的吞吐量,但这在为高度移动用户设计无线电资源分配方面提出了巨大挑战。在本文中,我们提出了一种联合自适应波束频率分配算法,该算法考虑了高机动性和/或不稳定用户(例如无人驾驶飞机(UAV))固有的位置不确定性,对此这是一个主要问题。我们提出的方法在服务质量(QoS)要求下提供了优化的波束宽度选择,以在用户位置不确定的情况下最大化系统比例公平性。我们方案的基本原理是调整波束宽度,以便在系统性能(较窄的波束)和鲁棒性对不确定性(较宽的波束)之间取得最佳折衷。仿真结果表明,即使在严重的不确定性和不完善的信道状态信息(CSIs)下,通过适当地调整mmWave波束宽度,与参考算法相比,该方法也大大提高了系统性能。

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