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Dynamic In-Band Self-Backhauling with Interference Cancellation

机译:具有干扰取消的动态带自我回程

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Millimeter wave frequency bands are expected to be used in future 5G networks to provide high data rates. However, higher frequency bands are characterized with high path loss attenuation and sensitivity to the blockages. Thus, deployment of dense networks using smaller cell sizes is important for coverage. To this end, in-band wireless relaying can be used to realize smaller cell sizes at reduced backhaul cost. Wireless relaying may however sacrifice capacity because of half-duplex constraint. In this paper, we investigate the performance of the millimeter wave (mmWave) network employing self-backhaul relay nodes and centralized transmission coordination. In particular, we look at the usage of interference cancellation (IC) receivers to enable backhaul uplink multiple access channel (BU-MAC) and full-duplex (FD) access/backhaul transmission which can boost capacity of relaying. Through simulation results we show, that the 5th% E2E throughput is improved by around 90% with BU-MAC scheme and over 120% in FD scheme. The average throughput of relay downlink increases by around 50% and 80% with BU-MAC and FD schemes resnectively.
机译:预计将在未来的5G网络中使用毫米波频带来提供高数据速率。然而,较高频带的特征在于具有高路径损耗衰减和对堵塞的灵敏度。因此,使用较小的细胞尺寸的密集网络部署对于覆盖率是重要的。为此,带内的无线中继可用于以减少的回程成本实现较小的电池尺寸。然而,由于半双工约束,无线中继可能会牺牲容量。在本文中,我们研究了采用自回式中继节点和集中传输协调的毫米波(MMWAVE)网络的性能。特别是,我们研究干扰消除(IC)接收器的使用,以启用回程上行链路多个接入信道(Bu-Mac)和全双工(FD)访问/回程传输,其能够提高中继容量。通过仿真结果我们展示,5 th 通过BU-MAC方案,%E2E吞吐量提高约90%,FD方案超过120%。中继下行链路的平均吞吐量随着BU-MAC和FD方案resnectively的增加约为50%和80%。

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