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User Association to Overcome Human Blockage at mmWave Cellular Networks

机译:用户协会克服了毫米波蜂窝网络中的人为障碍

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The large spectral bandwidth at millimeter-wave (mmWave) frequencies provides a mean to achieve very high data rates in wireless communication systems. A unique characteristic of mmWave is that mmWave links are very sensitive to blockage and have large propagation path loss, which exhibits low line-of-sight (LoS) probability, unstable connectivity and unreliable communication. To overcome such challenges, one of the existing solution is to associate the user equipment (UE) with other available Base Stations (BSs) by handover (HO) if the serving BS is blocked. In this paper, for a pedestrian scenario, we propose two reinforcement learning (RL) based user association algorithms, which accounts for the past experience of the blockage on the position of the UE. One focuses on the reward to increase the sum LoS probability and is named as Blockage-Aware User Association (BAUA). The other focuses on the reward to balance the tradeoff between the throughput and the LoS probability and is named as modified BAUA. Simulation results show that the BAUA algorithm increased sum LoS probability and the modified BAUA algorithm show better trade-off between the throughput and the LoS probability than the maximum Signal-to-Interference-plus-Noise Ratio (SINR) based and maximum-throughput based user association algorithms.
机译:毫米波(mmWave)频率处的大频谱带宽为在无线通信系统中实现很高的数据速率提供了一种手段。 mmWave的独特特征是mmWave链路对阻塞非常敏感,并且传播路径损耗很大,这表现出较低的视线(LoS)概率,不稳定的连接性和不可靠的通信。为了克服这些挑战,现有解决方案之一是如果服务BS被阻止,则通过切换(HO)将用户设备(UE)与其他可用基站(BS)关联。在本文中,对于行人场景,我们提出了两种基于强化学习(RL)的用户关联算法,这些算法考虑了过去在UE位置上发生阻塞的经验。一种专注于增加总LoS概率的奖励,并被称为“了解阻塞的用户协会(BAUA)”。另一个侧重于在吞吐量和LoS概率之间权衡取舍的奖励,并被称为修改后的BAUA。仿真结果表明,与基于最大信干噪比和基于最大吞吐量的BAUA算法相比,改进后的BAUA算法在吞吐量和LoS概率之间表现出更好的折衷。用户关联算法。

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