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Dual Connectivity in LTE small cell networks

机译:LTE小型蜂窝网络中的双重连接

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Dual Connectivity in LTE network can significantly improve per-user throughput and mobility robustness by allowing users to be connected simultaneously to master cell group (MCG) and secondary cell group (SCG) via MeNB (master eNB) and SeNB (secondary eNB), respectively. The increase in per-user throughput is achieved by aggregating radio resources from at least two eNBs. Moreover, dual connectivity also helps in load balancing between MCG and SCG. However, it imposes several technical challenges. The main ones are buffer status report calculation and reporting, power headroom calculation and reporting, logical channel prioritization, user power saving operations such as discontinuous reception (DRX), and increased device complexity to support bearer split. The coordination between eNBs over X2 interface may be effective to resolve some of these issues. The higher delay due to non-ideal backhaul between MeNB and SeNB, however, limits an efficient coordination between these eNBs. In this paper, we explain and explore these technical challenges and investigate potential solution directions. We also provide a quantitative analysis of potential gains in terms of peruser throughput and load balancing that can be achieved by data bearer split in uplink at the cost of complex UE behaviors using a system level simulation study.
机译:LTE网络中的双连接性通过分别允许用户分别通过MeNB(主eNB)和SeNB(辅助eNB)连接到主小区组(MCG)和辅助小区组(SCG),可以显着提高每用户吞吐量和移动性鲁棒性。通过聚合来自至少两个eNB的无线电资源来实现每用户吞吐量的增加。此外,双重连接还有助于实现MCG和SCG之间的负载平衡。但是,它带来了一些技术挑战。主要包括缓冲区状态报告的计算和报告,功率余量的计算和报告,逻辑通道优先级划分,用户节能操作(例如不连续接收(DRX))以及增加的设备复杂度以支持承载拆分。 X2接口上的eNB之间的协调可能有效解决了其中一些问题。然而,由于MeNB与SeNB之间的非理想回程而导致的较高延迟限制了这些eNB之间的有效协调。在本文中,我们将解释和探索这些技术挑战,并研究潜在的解决方案方向。我们还使用系统级仿真研究,通过在上行链路上进行数据承载拆分,以复杂的UE行为为代价,对每用户吞吐量和负载平衡方面的潜在收益进行了定量分析。

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