Title :
To code or not to code across time: space-time coding with feedback
Author :
Lin, Che ; Raghavan, Vasanthan ; Veeravalli, Venugopal V.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Illinois at Urbana-Champaign, Urbana, IL
fDate :
10/1/2008 12:00:00 AM
Abstract :
Space-time codes leverage the availability of multiple antennas to enhance the reliability of communication over wireless channels. While space-time codes have initially been designed with a focus on open-loop systems, recent technological advances have enabled the possibility of low-rate feedback from the receiver to the transmitter. The focus of this paper is on the implications of this feedback in a single-user multi-antenna system with a general model for spatial correlation. We assume a limited feedback model, that is, a coherent receiver and statistical knowledge at both the ends, along with B bits of error-free quantized channel information at the transmitter. We study space-time coding with a family of linear dispersion (LD) codes that meet an additional orthogonality constraint so as to ensure low-complexity decoding. Our results show that, when the number of bits of feedback (B) is small, a space-time coding scheme that is equivalent to beamforming and does not code across time is optimal in a weak sense in that it maximizes the average received SNR. As B increases, this weak optimality transitions to optimality in a strong sense that is characterized by the maximization of average mutual information. Thus, from a system designer´s perspective, our work suggests that beamforming may not only be attractive from a low-complexity viewpoint, but also from an information-theoretic viewpoint.
Keywords :
multifrequency antennas; orthogonal codes; radio networks; space-time codes; telecommunication network reliability; coherent receiver; communication reliability; error-free quantized channel information; limited feedback model; linear dispersion; low-complexity decoding; low-rate feedback single-user multi-antenna system; open-loop systems; orthogonality constraint; space-time coding; statistical knowledge; wireless channels; Array signal processing; Block codes; Convolutional codes; Decoding; Diversity methods; Feedback; MIMO; Mutual information; Space time codes; Transmitters; Adaptive coding; MIMO systems; diversity methods; fading channels; feedback communications; multiplexing; quantization;
Journal_Title :
Selected Areas in Communications, IEEE Journal on
Conference_Location :
10/1/2008 12:00:00 AM
DOI :
10.1109/JSAC.2008.081024