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Energy and Throughput Trade-Offs in Cellular Networks Using Base Station Switching

机译:使用基站切换的蜂窝网络中的能量和吞吐量权衡

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Base station operation consumes a lot of energy, a considerable amount of which can be saved by switching off base stations during low user demand (for example, at night). Base station switching (BSS) can result in loss in coverage if not performed properly. We show that coverage is closely related to scheduling via power management and that the bottleneck is typically the uplink. To save energy, we propose a set of BSS patterns, at a global system-level, that have the potential to provide full coverage if the appropriate schedulers are used. We further show that the existing benchmark uplink scheduling schemes do not provide full coverage when BSS is used in urban as well as rural macro-cell environments (the downlink benchmark scheduling scheme provides full coverage only for some of the BSS patterns). Hence, we propose novel scheduling schemes for both uplink and downlink that realistically model interference, ensure full coverage, and provide good energy-performance trade-offs for the proposed BSS patterns. We also present a low complexity high performance heuristic for the proposed uplink scheduler. Finally, we show the presented models and results can be used to quantify, offline, the energy-performance trade-offs under different operating scenarios.
机译:基站操作会消耗大量能量,通过在用户需求较低(例如晚上)时关闭基站,可以节省大量能量。如果执行不正确,基站切换(BSS)可能会导致覆盖范围的损失。我们显示覆盖范围与通过电源管理进行调度密切相关,并且瓶颈通常是上行链路。为了节省能源,我们建议在全球系统级别上使用一组BSS模式,如果使用适当的调度程序,它们有可能提供完整的覆盖范围。我们进一步证明,当在城市以及农村宏小区环境中使用BSS时,现有的基准上行链路调度方案都无法提供完整的覆盖范围(下行链路基准调度方案仅对某些BSS模式提供了完整覆盖范围)。因此,我们针对上行链路和下行链路提出了新颖的调度方案,可以对干扰进行实际建模,确保完全覆盖,并为所提出的BSS模式提供良好的能源性能折衷。对于提出的上行调度器,我们还提出了一种低复杂度的高性能启发式方法。最后,我们展示了所提出的模型和结果可用于离线量化不同操作场景下的能源性能折衷。

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