DocumentCode
53714
Title
Two-Stage Beamformer Design for Massive MIMO Downlink By Trace Quotient Formulation
Author
Donggun Kim ; Gilwon Lee ; Youngchul Sung
Author_Institution
Dept. of Electr. Eng., Korea Adv. Inst. of Sci. & Technol. (KAIST), Daejeon, South Korea
Volume
63
Issue
6
fYear
2015
fDate
Jun-15
Firstpage
2200
Lastpage
2211
Abstract
In this paper, the problem of outer beamformer design based only on channel statistic information is considered for two-stage beamforming for multi-user massive MIMO downlink, and the problem is approached based on signal-to-leakage-plus-noise ratio (SLNR). To eliminate the dependence on the instantaneous channel state information, a lower bound on the average SLNR is derived by assuming zero-forcing (ZF) inner beamforming, and an outer beamformer design method that maximizes the lower bound on the average SLNR is proposed. It is shown that the proposed SLNR-based outer beamformer design problem reduces to a trace quotient problem (TQP), which is often encountered in the field of machine learning. An iterative algorithm is presented to obtain an optimal solution to the proposed TQP. The proposed method has the capability of optimally controlling the weighting factor between the signal power to the desired user and the interference leakage power to undesired users according to different channel statistics. Numerical results show that the proposed outer beamformer design method yields significant performance gain over existing methods.
Keywords
MIMO communication; array signal processing; iterative methods; multiuser channels; radiofrequency interference; wireless channels; SLNR-based outer beamformer design; TQP; ZF inner beamforming; instantaneous channel state information; interference leakage power; iterative algorithm; machine learning; multiple input multiple output technology; multiuser massive MIMO downlink; signal-to-leakage-plus-noise ratio; trace quotient formulation; two-stage beamforming; zero-forcing inner beamforming; Array signal processing; Covariance matrices; Downlink; Interference; MIMO; Mercury (metals); Receivers; Massive MIMO systems; adaptive weighting factor; signal-to-leakage-plus-noise ratio (SLNR); trace quotient problem (TQP); two-stage beamforming;
fLanguage
English
Journal_Title
Communications, IEEE Transactions on
Publisher
ieee
ISSN
0090-6778
Type
jour
DOI
10.1109/TCOMM.2015.2429646
Filename
7101854
Link To Document