DocumentCode :
1339291
Title :
Robust Linear Precoder Design for Multi-Cell Downlink Transmission
Author :
Tajer, Ali ; Prasad, Narayan ; Wang, Xiaodong
Author_Institution :
Electr. Eng. Dept., Princeton Univ., Princeton, NJ, USA
Volume :
59
Issue :
1
fYear :
2011
Firstpage :
235
Lastpage :
251
Abstract :
Coordinated information processing by the base stations of multi-cell wireless networks enhances the overall quality of communication in the network. Such coordinations for optimizing any desired network-wide quality of service (QoS) necessitate the base stations to acquire and share some channel state information (CSI). With perfect knowledge of channel states, the base stations can adjust their transmissions for achieving a network-wise QoS optimality. In practice, however, the CSI can be obtained only imperfectly. As a result, due to the uncertainties involved, the network is not guaranteed to benefit from a globally optimal QoS. Nevertheless, if the channel estimation perturbations are confined within bounded regions, the QoS measure will also lie within a bounded region. Therefore, by exploiting the notion of robustness in the worst-case sense some worst-case QoS guarantees for the network can be asserted. We adopt a popular model for noisy channel estimates that assumes that estimation noise terms lie within known hyper-spheres. We aim to design linear transceivers that optimize a worst-case QoS measure in downlink transmissions. In particular, we focus on maximizing the worst-case weighted sum-rate of the network and the minimum worst-case rate of the network. For obtaining such transceiver designs, we offer several centralized (fully cooperative) and distributed (limited cooperation) algorithms which entail different levels of complexity and information exchange among the base stations.
Keywords :
channel estimation; precoding; quality of service; radio networks; base stations; channel estimation; channel state information; channel states; coordinated information processing; estimation noise terms; globally optimal QoS; linear transceivers; multicell downlink transmission; multicell wireless networks; noisy channel estimates; quality of service; robust linear precoder design; worst-case QoS measure; Base stations; Channel estimation; Downlink; Interference; Optimization; Quality of service; Quantization; Beamforming; cooperation; downlink; multi-cell; robust;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/TSP.2010.2082537
Filename :
5590310
Link To Document :
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