DocumentCode :
3602936
Title :
Deterministic Equivalent Performance Analysis of Time-Varying Massive MIMO Systems
Author :
Papazafeiropoulos, Anastasios K. ; Ratnarajah, Tharmalingam
Author_Institution :
Dept. of Electr. & Electron. Eng., Imperial Coll. London, London, UK
Volume :
14
Issue :
10
fYear :
2015
Firstpage :
5795
Lastpage :
5809
Abstract :
Delayed channel state information at the transmitter (CSIT) due to time variation of the channel, coming from the users´ relative movement with regard to the BS antennas, is an inevitable degrading performance factor in practical systems. Despite its importance, little attention has been paid to the literature of multi-cellular multiple-input massive multiple-output (MIMO) system by investigating only the maximal ratio combining (MRC) receiver and the maximum ratio transmission (MRT) precoder. Hence, the contribution of this work is designated by the performance analysis/comparison of/with more sophisticated linear techniques, i.e., a minimum-mean-square-error (MMSE) detector for the uplink and a regularized zero-forcing (RZF) precoder for the downlink are assessed. In particular, we derive the deterministic equivalents of the signal-to-interference-plus-noise ratios (SINRs), which capture the effect of delayed CSIT, and make the use of lengthy Monte Carlo simulations unnecessary. Furthermore, prediction of the current CSIT after applying a Wiener filter allows to evaluate the mitigation capabilities of MMSE and RZF. Numerical results depict that the proposed achievable SINRs (MMSE/RZF) are more efficient than simpler solutions (MRC/MRT) in delayed CSIT conditions, and yield a higher prediction at no special computational cost due to their deterministic nature. Nevertheless, it is shown that massive MIMO are preferable even in time-varying channel conditions.
Keywords :
MIMO communication; Monte Carlo methods; Wiener filters; diversity reception; least mean squares methods; precoding; BS antennas; CSIT; MMSE detector; MRC receiver; MRT precoder; Monte Carlo simulations; Wiener filter; channel state information at the transmitter; deterministic equivalent performance analysis; maximal ratio combining receiver; maximum ratio transmission precoder; minimum-mean-square-error detector; multicellular multiple-input massive multiple-output system; regularized zero-forcing precoder; time-varying massive MIMO systems; Antennas; Contamination; Downlink; Interference; MIMO; Signal to noise ratio; Uplink; Massive MIMO; channel estimation; channel prediction; delayed CSIT; linear detection; linear precoding;
fLanguage :
English
Journal_Title :
Wireless Communications, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1276
Type :
jour
DOI :
10.1109/TWC.2015.2443040
Filename :
7120183
Link To Document :
بازگشت