DocumentCode :
1192506
Title :
Universal space-time coding
Author :
El Gamal, Hesham ; Damen, Mohamed Oussama
Author_Institution :
Dept. of Electr. Eng., Ohio State Univ., Columbus, OH, USA
Volume :
49
Issue :
5
fYear :
2003
fDate :
5/1/2003 12:00:00 AM
Firstpage :
1097
Lastpage :
1119
Abstract :
A universal framework is developed for constructing full-rate and full-diversity coherent space-time codes for systems with arbitrary numbers of transmit and receive antennas. The proposed framework combines space-time layering concepts with algebraic component codes optimized for single-input-single-output (SISO) channels. Each component code is assigned to a "thread" in the space-time matrix, allowing it thus full access to the channel spatial diversity in the absence of the other threads. Diophantine approximation theory is then used in order to make the different threads "transparent" to each other. Within this framework, a special class of signals which uses algebraic number-theoretic constellations as component codes is thoroughly investigated. The lattice structure of the proposed number-theoretic codes along with their minimal delay allow for polynomial complexity maximum-likelihood (ML) decoding using algorithms from lattice theory. Combining the design framework with the Cayley transform allows to construct full diversity differential and noncoherent space-time codes. The proposed framework subsumes many of the existing codes in the literature, extends naturally to time-selective and frequency-selective channels, and allows for more flexibility in the tradeoff between power efficiency, bandwidth efficiency, and receiver complexity. Simulation results that demonstrate the significant gains offered by the proposed codes are presented in certain representative scenarios.
Keywords :
algebraic codes; approximation theory; diversity reception; maximum likelihood decoding; number theory; receiving antennas; space-time codes; telecommunication channels; transmitting antennas; Cayley transform; Diophantine approximation theory; SISO channels; algebraic component codes; algebraic number-theoretic constellations; bandwidth efficiency; frequency-selective channels; full diversity differential space-time codes; full-diversity coherent space-time codes; full-rate coherent space-time codes; lattice structure; lattice theory; minimal delay; noncoherent space-time codes; number-theoretic codes; polynomial complexity maximum-likelihood decoding; power efficiency; receive antennas; receiver complexity; simulation results; single-input-single-output channels; space-time layering; space-time matrix; spatial diversity; time-selective channels; transmit antennas; universal space-time coding; Approximation methods; Constellation diagram; Delay; Diversity reception; Frequency; Lattices; Maximum likelihood decoding; Receiving antennas; Space time codes; Yarn;
fLanguage :
English
Journal_Title :
Information Theory, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9448
Type :
jour
DOI :
10.1109/TIT.2003.810644
Filename :
1197844
Link To Document :
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