DocumentCode :
1760720
Title :
Robust Iterative Interference Alignment for Cellular Networks With Limited Feedback
Author :
Schreck, Jan ; Wunder, Gerhard ; Jung, Peter
Author_Institution :
Commun. & Inf. Theor. Group, Tech. Univ. Berlin, Berlin, Germany
Volume :
14
Issue :
2
fYear :
2015
fDate :
Feb. 2015
Firstpage :
882
Lastpage :
894
Abstract :
In theory, coordinated multipoint transmission (CoMP) promises vast gains in spectral efficiency. However, industrial field trials show rather disappointing throughput gains, whereby the major limiting factor is proper sharing of channel state information. Many recent papers have considered this so-called limited feedback problem in the context of CoMP, usually taking the following assumptions, namely, infinite SNR regime, no user selection, and ideal link adaptation, rendering the analysis too optimistic. In this paper, we make a step forward toward a more realistic assessment of the limited feedback problem by introducing an improved metric for the performance evaluation, which better captures the throughput degradation. We find the relevant scaling laws (lower and upper bounds) and show that they are different from existing ones. Moreover, we provide a robust iterative interference alignment algorithm and corresponding feedback strategies achieving the obtained scaling laws. The main idea is that, instead of sending the complete channel matrix, each user fixes a receive filter and feeds back a quantized version of the effective channel. Finally, we underline our findings with simulations for the proposed system.
Keywords :
cellular radio; iterative methods; radio spectrum management; radiofrequency interference; CoMP; cellular networks; channel matrix; channel state information; coordinated multipoint transmission; ideal link adaptation; infinite SNR regime; limited feedback problem; no user selection; performance evaluation; receive filter; robust iterative interference alignment algorithm; spectral efficiency; throughput degradation; Array signal processing; Base stations; Interference; Measurement; Optimal scheduling; Throughput; Vectors; Channel state feedback; MIMO communication; cellular systems; finite-rate feedback; interference alignment;
fLanguage :
English
Journal_Title :
Wireless Communications, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1276
Type :
jour
DOI :
10.1109/TWC.2014.2361335
Filename :
6915866
Link To Document :
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