Comparison of Orthogonal vs. Union of Subspace Based Pilots for Multi-Cell Massive MIMO Systems

A. Chowdhury, P. Sasmal, C. Murthy
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引用次数: 2

Abstract

In this paper, we analytically compare orthogonal pilot reuse (OPR) with union of subspace based pilots in terms of channel estimation error and achievable throughput. In OPR, due to the repetition of the same pilot sequences across all cells, inter-cell interference (ICI) leads to pilot contamination, which can severely degrade the performance of cell-edge users. In our proposed union of subspace based method of pilot sequence design, pilots of adjacent cells belong to distinct sets of orthonormal bases. Therefore, each user experiences a lower level of ICI, but from all users of neighboring cells. However, when the pilots are chosen from mutually unbiased orthonormal bases (MUOB), the ICI power scales down exactly as the inverse of the pilot length, leading to low ICI. Further, as the number of users increases, it may no longer be feasible to allot orthogonal pilots to all users within a cell. We find that, with limited number of pilot sequences, MUOB is significantly more resilient to intra-cell interference, yielding better channel estimates compared to OPR. On the other hand, when the pilot length is larger than the number of users, while OPR achieves channel estimates with very high accuracy for some of the users, MUOB is able to provide a more uniform quality of channel estimation across all users in the cell. We evaluate the fairness of OPR vis-à-vis MUOB using the Jain’s fairness metric and max-min index. Via numerical simulations, we observe that the average fairness as well as convergence rates of utility metrics measured using MUOB pilots outperform the conventional OPR scheme.
多小区大规模MIMO系统中基于子空间的正交导频与并导频的比较
本文从信道估计误差和可实现吞吐量两方面分析比较了正交导频复用(OPR)和基于子空间导频并的导频复用方法。在OPR中,由于在所有细胞中重复相同的导频序列,细胞间干扰(ICI)导致导频污染,这可能严重降低细胞边缘用户的性能。在我们提出的基于子空间联合的导频序列设计方法中,相邻单元的导频属于不同的标准正交基集。因此,每个用户体验到的ICI水平较低,但来自相邻单元的所有用户。然而,当从相互无偏的标准正交基(MUOB)中选择导频时,ICI功率正好与导频长度成反比,导致低ICI。此外,随着用户数量的增加,为一个单元内的所有用户分配正交导频可能不再可行。我们发现,在导频序列数量有限的情况下,与OPR相比,MUOB对细胞内干扰的适应性更强,产生了更好的信道估计。另一方面,当导频长度大于用户数量时,虽然OPR对某些用户的信道估计具有非常高的精度,但MUOB能够在小区中所有用户之间提供更统一的信道估计质量。我们使用Jain的公平性度量和最大最小指数来评估OPR对-à-vis MUOB的公平性。通过数值模拟,我们观察到使用MUOB导频测量的效用指标的平均公平性和收敛率优于传统的OPR方案。
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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