DocumentCode
739978
Title
The Impact of Physical Channel on Performance of Subspace-Based Channel Estimation in Massive MIMO Systems
Author
Teeti, Mohammed ; Sun, Jun ; Gesbert, David ; Liu, Yingzhuang
Volume
14
Issue
9
fYear
2015
Firstpage
4743
Lastpage
4756
Abstract
A subspace method for channel estimation has been recently proposed for tackling the pilot contamination effect, which is regarded by some researchers as a bottleneck in massive MIMO systems. It was shown in the literature that if the power ratio between the desired signal and interference is kept above a certain value, the received signal spectrum splits into signal and interference eigenvalues, namely, the “pilot contamination” effect can be completely eliminated. However, in the literature an independently distributed (i.d.) channel is assumed, which is actually not much the case in practice. Considering this, a more sensible finite-dimensional physical channel model (i.e., a finite scattering environment, where signals impinge on the base station (BS) from a finite number of angles of arrival (AoA)) is employed in this paper. Via asymptotic spectral analysis, it is demonstrated that, compared with the i.d. channel, the physical channel imposes a penalty in the form of an increased power ratio between the useful signal and the interference. Furthermore, we demonstrate an interesting “antenna saturation” effect, i.e., when the number of the BS antennas approaches infinity, the performance under the physical channel with
AoAs is limited by and nearly the same as the performance under the i.d. channel with
receive antennas.
Keywords
Channel estimation; Channel models; Covariance matrices; Eigenvalues and eigenfunctions; Interference; MIMO; Transforms; Massive MIMO; asymptotic eigenvalue distribution; massive MIMO; physical channel; random matrix theory; subspace method;
fLanguage
English
Journal_Title
Wireless Communications, IEEE Transactions on
Publisher
ieee
ISSN
1536-1276
Type
jour
DOI
10.1109/TWC.2015.2425401
Filename
7091922
Link To Document