DocumentCode
699809
Title
Robust transmit beamforming based on probabilistic constraint
Author
Huiqin Du ; Pei-Jung Chung ; Gondzio, Jacek ; Mulgrew, Bernard
Author_Institution
Sch. of Eng. & Electron., Univ. of Edinburgh, Edinburgh, UK
fYear
2008
fDate
25-29 Aug. 2008
Firstpage
1
Lastpage
5
Abstract
Transmit beamforming is a powerful technique for enhancing performance of wireless communication systems. Most existing transmit beamforming techniques require perfect channel state information at the transmitter (CSIT), which is typically not available in practice. In such situations, the design should take into account errors in the channel estimates, so that the beamformers are less sensitive to these errors. Two robust approaches are widely used. The stochastic approach optimizes the average performance of the system and assumes that the statistics, such as mean and covariance, of the errors are known. The maximin approach assumes that the errors belong to a worst-case uncertainty region and optimizes the worst-case system performance. This type of design usually leads to conservative results as the worst-case conditions may occur at a very low probability. In this paper, we propose a more flexible approach that optimizes the average beamforming performance and takes the extreme (but rare) conditions into account proportionally. Simulation results show that the proposed beamformer offers higher robustness against errors in CSIT than serval state-of-the-art beamformers.
Keywords
antenna arrays; array signal processing; diversity reception; minimax techniques; radio transmitters; statistical analysis; stochastic processes; CSIT; channel estimates; covariance statistics; maximin approach; mean statistics; multiantenna diversity; perfect channel state information-at-the-transmitter; performance enhancement; probabilistic constraint; robust transmit beamforming; stochastic approach; wireless communication systems; worst-case system performance optimization; worst-case uncertainty region; Abstracts; Array signal processing; Probabilistic logic; Robustness; Signal to noise ratio; Vectors;
fLanguage
English
Publisher
ieee
Conference_Titel
Signal Processing Conference, 2008 16th European
Conference_Location
Lausanne
ISSN
2219-5491
Type
conf
Filename
7080341
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