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Stochastic geometry modeling and analysis of backhaul-constrained Hyper-Dense Heterogeneous cellular networks

机译:回程受限的超密集异构蜂窝网络的随机几何建模与分析

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Hyper-Dense Heterogeneous (HDH) deployments, which are made of different kinds of Base Stations (BSs), constitute a promising solution to meet the high data rates envisioned for 5G cellular systems. However, the presence of such a large number of BSs, each of which is expected to deliver a large amount of data to the end-users, is pushing the bottleneck of cellular networks from the Radio Access Network (RAN) to the backhaul, which is becoming as critical as the radio infrastructure. Hence, new network topologies and network architectures are under debate, whose objective is to overcome the backhaul cost and capacity crunch. In order to adequately design these emerging network topologies, appropriate abstraction models need to be introduced for system-level analysis. In this context, stochastic geometry has recently emerged as a promising tool for system-level performance evaluation of cellular systems. In this paper, we adopt a Poisson Tree model for analyzing a hierarchical backhaul and the RAN of a HDH network, where the nodes of the tree are traffic concentrators, BSs and users. The proposed model captures the impact of the finite user density (load) on the network performance and the distribution of the Signal-to-Interference-plus-Noise-Ratio (SINR), which is determined by the positions of users and BSs, as well as by the channel conditions and the other-cell interference.
机译:由不同种类的基站(BS)组成的超密集异构(HDH)部署构成了一种有前途的解决方案,可以满足5G蜂窝系统预期的高数据速率。但是,如此大量的BS的存在(预计每个BS都将向终端用户传递大量数据)正将蜂窝网络的瓶颈从无线接入网(RAN)推向回程,与无线电基础设施一样重要。因此,正在讨论新的网络拓扑和网络体系结构,其目的是克服回程成本和容量限制。为了适当地设计这些新兴的网络拓扑,需要引入适当的抽象模型以进行系统级分析。在这种情况下,随机几何最近已成为一种对蜂窝系统进行系统级性能评估的有前途的工具。在本文中,我们采用泊松树模型来分析分层回程和HDH网络的RAN,其中树的节点是流量集中器,BS和用户。所提出的模型捕获了有限用户密度(负载)对网络性能的影响以及信噪比与噪声比(SINR)的分布,SINR的分布取决于用户和基站的位置,如以及受到信道状况和其他小区干扰的影响。

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