Multi-cell flow-level performance of traffic-adaptive beamforming under realistic spatial traffic conditions

Henrik Klessig, Maciej Soszka, G. Fettweis
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引用次数: 3

Abstract

Upcoming 5G wireless technology will enable various new applications and is going to support a massive amount of devices per cell. In this regard, ultra-dense small cell deployments are a means to cope with the need of extremely high data rates of several tens of Gbps and with the increasing data traffic demand. However, denser deployments may lead to more severe inter-cell interference, which is strongly connected to the actual spatial distribution of the mobile traffic demand. Traffic-adaptive beamforming using phased antenna arrays can be an attractive solution for concentrating capacity at desired traffic hot spot locations while inter-cell interference is reduced. In this paper, we propose a flexible and holistic model, which describes flow-level performance of networks, which consist of base stations equipped with phased antenna arrays, accurately and considers dynamic inter-cell interference. Moreover, we present a configurable spatial traffic model to generate data traffic maps with various statistical properties. We use these traffic maps to evaluate the performance of a traffic-adaptive beamforming algorithm proposed and compare it the performance of a state-of-the-art antenna down-tilt algorithm.
现实空间交通条件下交通自适应波束形成的多小区流级性能
即将到来的5G无线技术将实现各种新应用,并将支持每个蜂窝的大量设备。在这方面,超密集小蜂窝部署是应对数十Gbps的极高数据速率需求和不断增长的数据流量需求的一种手段。然而,更密集的部署可能导致更严重的小区间干扰,这与移动业务需求的实际空间分布密切相关。使用相控天线阵列的交通自适应波束形成是一种有吸引力的解决方案,可以在减少小区间干扰的同时,在期望的交通热点位置集中容量。在本文中,我们提出了一个灵活的整体模型,该模型准确地描述了由配备相控阵天线的基站组成的网络的流级性能,并考虑了动态小区间干扰。此外,我们提出了一个可配置的空间交通模型来生成具有各种统计属性的数据交通地图。我们使用这些交通地图来评估提出的交通自适应波束形成算法的性能,并将其与最先进的天线向下倾斜算法的性能进行比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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