Physics-inspired heuristics for soft MIMO detection in 5G new radio and beyond

Minsung Kim, S. Mandrà, D. Venturelli, K. Jamieson
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引用次数: 16

Abstract

Overcoming the conventional trade-off between throughput and bit error rate (BER) performance, versus computational complexity is a long-term challenge for uplink Multiple-Input Multiple-Output (MIMO) detection in base station design for the cellular 5G New Radio roadmap, as well as in next generation wireless local area networks. In this work, we present ParaMax, a MIMO detector architecture that for the first time brings to bear physics-inspired parallel tempering algorithmic techniques [28, 50, 67] on this class of problems. ParaMax can achieve near optimal maximum-likelihood (ML) throughput performance in the Large MIMO regime, Massive MIMO systems where the base station has additional RF chains, to approach the number of base station antennas, in order to support even more parallel spatial streams. ParaMax is able to achieve a near ML-BER performance up to 160 × 160 and 80 × 80 Large MIMO for low-order modulations such as BPSK and QPSK, respectively, only requiring less than tens of processing elements. With respect to Massive MIMO systems, in 12 × 24 MIMO with 16-QAM at SNR 16 dB, ParaMax achieves 330 Mbits/s near-optimal system throughput with 4--8 processing elements per subcarrier, which is approximately 1.4× throughput than linear detector-based Massive MIMO systems.
5G新无线电及以后软MIMO检测的物理启发启发式方法
克服吞吐量和误码率(BER)性能与计算复杂性之间的传统权衡,是蜂窝5G新无线电路线图基站设计中上行多输入多输出(MIMO)检测以及下一代无线局域网的长期挑战。在这项工作中,我们提出了ParaMax,这是一种MIMO检测器架构,首次在这类问题上引入了物理启发的并行回火算法技术[28,50,67]。ParaMax可以在大型MIMO系统中实现接近最优的最大似然(ML)吞吐量性能,其中基站具有额外的射频链,以接近基站天线的数量,以支持更多的并行空间流。对于BPSK和QPSK等低阶调制,ParaMax能够实现接近ML-BER的性能,分别达到160 × 160和80 × 80的大MIMO,只需要不到几十个处理元件。对于大规模MIMO系统,在信噪比为16 dB的12 × 24 MIMO 16- qam中,ParaMax在每个子载波4- 8个处理元素的情况下实现了330 mbit /s的近乎最佳系统吞吐量,这比基于线性检测器的大规模MIMO系统的吞吐量约为1.4倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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