DocumentCode :
1251076
Title :
Optimal and Successive Approaches to Signal Design for Multiple Antenna Physical Layer Multicasting
Author :
Kim, Han ; Love, David J. ; Park, Seung Young
Author_Institution :
Syst. & Applic. R&D Center, Texas Instrum. Inc., Dallas, TX, USA
Volume :
59
Issue :
8
fYear :
2011
fDate :
8/1/2011 12:00:00 AM
Firstpage :
2316
Lastpage :
2327
Abstract :
In modern wireless communications, systems that send a common information stream (called multicasting systems) are widely needed for distributing content such as television or radio. In this paper, the multiple antenna physical layer multicasting channel is considered, in which a common message is simultaneously transmitted to multiple single-antenna users. To achieve the capacity of this multicasting set-up, the covariance matrix of the transmit signal vector needs to be determined to maximize the smallest maximum achievable rate among all the users. In this paper, we develop a simple successive algorithm to determine the covariance matrix of the signal vector under the assumption that channel state information (CSI) is perfectly available at the transmitter. We first characterize properties of the capacity achieving covariance matrix and derive a closed-form expression for the matrix in the two-user case. We then derive a closed-form expression for the rate maximizing beamformer in the case of two users and propose a successive beamforming algorithm that generates the beamforming vector with low computational complexity. In the proposed precoding design scheme, the covariance matrix is successively constructed by orthogonalizing the subspace spanned by each user´s channel vector until the maximum number of recursions (which is the same as the minimum of the number of transmit antennas and the number of users) is reached. The achievable rate of the proposed scheme is compared with the capacity of optimal transmission, transmit beamforming, antenna subset selection, and open-loop transmission which does not require CSI at the transmitter. As the number of users and/or antennas grows large, it is shown that the average achievable rate of the proposed scheme achieves the same average achievable rate scaling as the true capacity while reducing the computational complexity.
Keywords :
antenna arrays; array signal processing; covariance matrices; multicast communication; radio transmitters; antenna subset selection; channel state information; channel vector; computational complexity; covariance matrix; modern wireless communications; multiple antenna physical layer multicasting; signal design; transmit beamforming; transmit signal vector; Algorithm design and analysis; Array signal processing; Closed-form solution; Covariance matrix; Signal to noise ratio; Transmitting antennas; Physical layer multicasting; multicast channel; multiple antenna; transmit covariance matrix;
fLanguage :
English
Journal_Title :
Communications, IEEE Transactions on
Publisher :
ieee
ISSN :
0090-6778
Type :
jour
DOI :
10.1109/TCOMM.2011.060911.080464
Filename :
5910101
Link To Document :
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