基于快速curr分解的天线单元数较多的毫米波维数最小化问题

IEEA '18 Pub Date : 2018-03-28 DOI:10.1145/3208854.3208855
Adam Mohamed Ahmed Abdo, Xiongwen Zhao, Yu Zhang, Chen Xu, Abdinasir A. Shire
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引用次数: 0

摘要

毫米波通信是满足日益增长的高数据速率需求的关键技术。同时,毫米波基站(BS)需要采用大量的天线单元来增加增益,并为庞大的用户提供服务。然而,大量天线单元的集成会由于信道相关矩阵的维数较大而导致维数问题。因此,我们提出了一种基于快速curc分解的新型码本结构设计,以最大限度地减少这一问题。该方法将原始相关矩阵表示为三个非常低维矩阵与原始相关矩阵的乘积。然后用新的旋转矩阵构造新的旋转码本。此外,我们用原始矩阵对我们的方法进行了关于压缩比(CR)和两个矩阵之间的不匹配误差的评估。此外,我们还提供了传统方法的遍历和速率能力,例如奇异值分解(SVD)技术,零强迫(ZF)和匹配滤波器(MF),以与我们提出的方法进行比较。此外,我们还分析了天线单元数量和所需反馈位的增加对系统容量的影响。仿真结果表明,该方法可以在最小化尺寸问题后取得较好的效果。这项工作可以在未来扩展到具有100多个天线单元的5G系统中。
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Minimizing the Dimensionality Problem in mm-Wave with Large Number of Antenna Elements Using Fast CUR-Decomposition
Millimeter wave (mm-Wave) communications is a key technology to meet the increasing demand for high data rate. Meanwhile, the mm-Wave base station (BS) needs to employ a large number of antenna elements to increase the gain as well as to serve a huge number of users. However, the integration of a vast number of antenna elements will cause dimensionality problem due to large dimension of channel correlation matrix. Therefore, we propose a novel codebook construction design based on Fast CUR-decomposition to minimise this problem. The proposed method represents the original correlation matrix as the product of three very low dimension matrices compared to the original. Then the new rotated codebook is constructed by the new rotation matrix. Moreover, we evaluate our method with the original matrix regarding compression ratio (CR) and mismatch error between the two matrices. Additionally, we provide the ergodic sum-rate capacities for the conventional methods such as singular value decomposition (SVD) technique, zero-forcing (ZF), and a matched filter (MF) to compare with our proposed method. Furthermore, we analyse the enhancement of the system capacity regarding the number of antenna elements and the required feedback bits. The simulation results show that the proposed method can achieve good results after minimising dimension problem. This work it can be extended in the future to be applied to a 5G system with over 100 antenna elements.
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