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Regularized Transceiver Designs for Multi-User MIMO Interference Channels

Authors
Park, Seok-HwanPark, HaewookSung, HakjeaLee, Inkyu
Issue Date
Sep-2012
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
Keywords
Beamforming; interference alignment; MIMO interference channels
Citation
IEEE TRANSACTIONS ON COMMUNICATIONS, v.60, no.9, pp.2571 - 2579
Indexed
SCIE
SCOPUS
Journal Title
IEEE TRANSACTIONS ON COMMUNICATIONS
Volume
60
Number
9
Start Page
2571
End Page
2579
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/107500
DOI
10.1109/TCOMM.2012.072612.100666
ISSN
0090-6778
Abstract
For multi-user interference channels (IC), an altruistic approach based on the zero-forcing (ZF) criterion shows the near-optimal performance at high signal-to-noise ratio (SNR), whereas its performance at low SNR becomes poor compared to a simple egoistic algorithm (selfish beamforming). Thus, balancing between the egoism and the altruism has been an important issue to achieve good sum-rate performance at overall SNR regime. In this paper, we propose a new approach for enhancing the performance by regularizing the ZF based transceivers. To this end, we start with investigating efficient ZF transceivers for 2-user and 3-user ICs. First, coordinated spatial multiplexing (CSM) is proposed for 2-user IC. For the 3-user case, it is shown that the enhanced interference alignment (E-IA) introduced in our previous work is the optimal ZF transceivers in terms of the sum-rate performance. Next, to improve the performance of the CSM and E-IA schemes at low SNR, we propose a non-iterative regularization method under the high SNR approximation. The distributed implementation of the proposed regularization method is also presented where each node is able to compute its own precoding or decoding matrix using local channel state information. From simulations, it is observed that the proposed regularized design outperforms the conventional schemes in overall SNR regime. Also, we confirm that our distributed approach provides a substantial performance gain over the conventional distributed scheme with reduced computational complexity.
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