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Design of Low-Latency Uplink MAC Scheduling for Massive MIMO-OFDM Systems

机译:大型MIMO-OFDM系统的低延迟上行MAC调度设计

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Massive MIMO is a promising technology for 5G due to its huge extended multi-user spatial multiplexing and beamforming capability, but its high complexity makes the associated MAC scheduling suffer from long processing time in practice. To solve such problem, this paper designs a low-latency uplink MAC scheduling scheme for Massive MIMO-OFDM systems. Specifically, first, a framework enabling processing parallelization is put forward in which the scheduling for multiple resource blocks (RB) are executed concurrently with the common pre-processing and post-processing. Second, a power-based weight is introduced into the per-RB scheduling, by which the link adaptation could be completed simultaneously with per-RB processing, no longer requiring reduplicate post-scheduling processing. Third, a low-complexity calculation method is applied to the per-layer recursive user selection algorithm for each RB, in which the matrix inversion is substituted by the recursion with vector inner-productions based on Hermitian Matrix Blockwise Inversion Lemma. Finally, performance simulation results demonstrate that the designed MAC scheduling scheme outperforms random scheduling in terms of both cell sum throughput and cell edge throughput.
机译:由于其巨大的多用户空间多路复用和波束成形能力,大规模的MIMO是5G的有希望的技术,但其高复杂性使得相关的MAC调度在实践中的长处理时间遭受。为了解决此类问题,本文设计了一种用于大规模MIMO-OFDM系统的低延迟上行MAC调度方案。具体地,首先,提出了一种框架,其中提出了一种处理并行化的框架,其中与常见的预处理和后处理同时执行多个资源块(RB)的调度。其次,将基于功率的权重被引入到每个RB调度中,通过该权重调度,可以通过每个RB处理同时地完成链路自适应,不再需要冗余的调度后处理。第三,将低复杂性计算方法应用于每个RB的每层递归用户选择算法,其中基于vermitian矩阵块反转引理的载体内部 - 载体的递归被递归代替。最后,性能仿真结果表明,所设计的MAC调度方案在小区和吞吐量和小区边缘吞吐量方面优于随机调度。

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