基于正交导频分配的大规模MU-MIMO下行链路训练

Cheng Qian, Haifen Yang, Guangjun Li
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引用次数: 1

摘要

本文研究了一种多小区大规模多输入多输出(MIMO)下行系统。为了检测从BS发射的信号,用户应该有他们的频道信息。用户不假设每个用户都可以完全知道其有效信道增益的期望值,而是使用最小二乘(LS)估计,通过下行链路训练来估计其有效信道增益。然而,由于导频有限,估计的有效信道增益会受到其他小区干扰的污染,如果处理不好,将会降低系统性能。为了解决这一问题,提出了一种新的导频分配方案,即为使用相同上行导频序列的用户分配相互正交的下行导频。利用该方案,我们证明了在最大比传输(MRT)和零强制(ZF)预编码下,当BS天线数量趋于无穷时,有效信道增益的相对估计误差趋于零。仿真结果验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Massive MU-MIMO Downlink Training with Orthogonal Pilots Allocation
This paper considers a multi-cell massive multiple-input multiple-output (MIMO) downlink system. To detect the signals transmitted from BS, users should have their channel information. Instead of assuming that each user can perfectly know the expected value of its effective channel gain, users use least-square (LS) estimation to estimate their effective channel gains through downlink training. However, the estimated effective channel gains will be polluted by interference from other cells due to the limited pilots, which will degrade the system performance if it is not treated well. To alleviate it, a novel pilots allocation scheme is proposed in which users who use the same uplink pilot sequence are allocated with mutual orthogonal downlink pilots. With this scheme, we prove for maximum-ratio transmission (MRT) and zero-forcing (ZF) precoding that the relative estimation error of the effective channel gain tends to zero when the number of BS antenna goes to infinity. Simulation results validate the efficiency of our proposal.
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