Title :
On the design of space-time and space-frequency codes for MIMO frequency-selective fading channels
Author :
El Gamal, Hesham ; Hammons, A. Roger, Jr. ; Liu, Youjian ; Fitz, Michael P. ; Takeshita, Oscar Y.
Author_Institution :
Dept. of Electr. Eng., Ohio State Univ., Columbus, OH, USA
Abstract :
The authors introduced an algebraic design framework for space-time coding in flat-fading channels . We extend this framework to design algebraic codes for multiple-input multiple-output (MIMO) frequency-selective fading channels. The proposed codes strive to optimally exploit both the spatial and frequency diversity available in the channel. We consider two design approaches: The first uses space-time coding and maximum likelihood decoding to exploit the multi-path nature of the channel at the expense of increased receiver complexity. Within this time domain framework, we also propose a serially concatenated coding construction which is shown to offer a performance gain with a reasonable complexity iterative receiver in some scenarios. The second approach utilizes the orthogonal frequency division multiplexing technique to transform the MIMO multipath channel into a MIMO flat block fading channel. The algebraic framework is then used to construct space-frequency codes (SFC) that optimally exploit the diversity available in the resulting flat block fading channel. Finally, the two approaches are compared in terms of decoder complexity, maximum achievable diversity advantage, and simulated frame error rate performance in certain representative scenarios.
Keywords :
MIMO systems; OFDM modulation; algebraic codes; concatenated codes; diversity reception; error statistics; fading channels; maximum likelihood decoding; multipath channels; space-time codes; MIMO flat block fading channel; MIMO frequency-selective fading channels; MIMO multipath channel; algebraic codes; algebraic design; code design; decoder complexity; flat block fading channel; frequency diversity; iterative receiver; maximum achievable diversity; maximum likelihood decoding; multipath channel; multiple-input multiple-output channels; orthogonal frequency division multiplexing; performance gain; receiver complexity; serially concatenated coding; simulated frame error rate; space-frequency codes; space-time codes; space-time coding; spatial diversity; Concatenated codes; Frequency diversity; Frequency-selective fading channels; Iterative decoding; MIMO; Maximum likelihood decoding; OFDM; Performance gain; Quadrature amplitude modulation; Time domain analysis;
Journal_Title :
Information Theory, IEEE Transactions on
DOI :
10.1109/TIT.2003.815804