DocumentCode :
266503
Title :
Min-max robust transmit beamforming for power efficient quality of service guarantee
Author :
Nasseri, Saba ; Nakhai, Mohammad Reza
Author_Institution :
Centre for Telecommun. Res., King´s Coll. London, London, UK
fYear :
2014
fDate :
8-12 Dec. 2014
Firstpage :
3360
Lastpage :
3365
Abstract :
We consider the problem of power-efficient transmit beamforming design at multi-antenna base stations (BSs) of a multicell network, when the channel state information (CSI) at both transceiver ends are imperfect. We introduce an optimization problem that accounts for robustness at, both, the constraints and the objective function. The robust constraints guarantee the quality of service (QoS) at mobile users (MUs) by ensuring that a set of signal-to-interference-plus-noise ratio (SINR) targets are met, despite the presence of erroneous CSI at both the BS and the MU sides. The robust objective function minimizes a linear combination of total transmit power at each BS and the overall inflicted interference power on the other users of the other cells under the worst-case of channel uncertainties. As the proposed problem is NP-hard, in general, we reformulate the problem into a semidefinite programming (SDP) with linear matrix inequality (LMI) constraints using the standard rank relaxation and the S-procedure. The simulation results confirm the effectiveness of the proposed robust beamforming design in terms of power efficiency at BSs and QoS guarantee at MUs, when compared with the conventional method in the presence of imperfect CSI.
Keywords :
array signal processing; computational complexity; interference (signal); linear matrix inequalities; mathematical programming; minimax techniques; quality of service; radio transceivers; LMI; NP-hard problem; QoS; S-procedure; SINR; channel state information; inflicted interference power; linear combination; linear matrix inequality; min-max robust transmit beamforming; mobile user; multiantenna base station; multicell network; power efficiency; quality of service guarantee; robust objective function; semidefinite programming; signal-to-interference-plus-noise ratio; standard rank relaxation; total transmit power; transceiver end; transmit beamforming design; Array signal processing; Interference; Optimization; Robustness; Signal to noise ratio; Uncertainty; Vectors; Robustness; channel uncertainty; inter-cell interference; quality of service guarantee;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Global Communications Conference (GLOBECOM), 2014 IEEE
Conference_Location :
Austin, TX
Type :
conf
DOI :
10.1109/GLOCOM.2014.7037326
Filename :
7037326
Link To Document :
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