Title :
An algebraic number theoretic framework for space-time coding
Author :
El Gamal, Hesham ; Damen, Mohamed Oussama
Author_Institution :
Dept. of Electr. Eng., Ohio State Univ., Columbus, OH, USA
Abstract :
In this paper, we develop a novel framework for constructing full rate, full diversity, and polynomial complexity space-time codes for systems with arbitrary numbers of transmit and receive antennas. The proposed framework combines space-time layering concepts with algebraic number theoretic constellations to construct universal codes for scenarios where the channel state information (CSI) is known a-priori at the transmitter and receiver (TR-CSI), receiver only (R-CSI), and neither one of them (N-CSI). For a coherent system (i.e., R-CSI) with M transmit and N receive antennas in quasi-static fading, the proposed codes are constructed over T = M symbol periods by properly assigning algebraic number theoretic constellations to the different layers. The proposed codes are delay-optimal and achieve the maximum diversity advantage MN over quasi-static fading channels for arbitrary numbers of antennas and arbitrary transmission rates. The lattice structure of the proposed codes allows for polynomial complexity maximum likelihood decoding using the sphere decoder. 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 trade-off between power efficiency, bandwidth efficiency, and receiver complexity.
Keywords :
algebraic codes; diversity reception; fading channels; maximum likelihood decoding; number theory; polynomials; space-time codes; CSI; algebraic number theoretic framework; bandwidth efficiency; channel state information; coherent system; frequency-selective channels; full diversity; full rate codes; lattice structure; maximum likelihood decoding; polynomial complexity codes; power efficiency; quasi-static fading channels; receive antennas; receiver complexity; space-time codes; space-time layering; sphere decoder; time-selective channels; transmit antennas; universal codes; Channel state information; Delay; Fading; Frequency; Lattices; Maximum likelihood decoding; Receiving antennas; Space time codes; Transmitters; Transmitting antennas;
Conference_Titel :
Information Theory, 2002. Proceedings. 2002 IEEE International Symposium on
Print_ISBN :
0-7803-7501-7
DOI :
10.1109/ISIT.2002.1023404