Title :
Energy Spreading Transform Approach to Achieve Full Diversity and Full Rate for MIMO Systems
Author :
Hwang, Taewon ; Kim, Yunesung ; Park, Hyunsung
Author_Institution :
Sch. of Electr. & Electron. Eng., Yonsei Univ., Seoul, South Korea
Abstract :
Full-diversity full-rate (FDFR) space-time codes achieve both high data rate and good reliability at the cost of high decoding complexity. In this paper, we propose a low-complexity MIMO scheme that achieves both full diversity and full rate over flat fading channels for a sufficiently large number of transmit and receive antennas. The proposed scheme is constructed by applying energy spreading transforms (EST´s) to multiple data streams and spatially multiplexing the streams to multiple transmit antennas. Simulation results show that the proposed FDFR scheme outperforms the threaded algebraic space-time (TAST) code, which is a FDFR code based on maximum likelihood (ML) detection, when the number of transmit antennas (with the same number of receive antennas) are three and four. However, its detection complexity is only that of a decision-feedback detector.
Keywords :
MIMO communication; algebraic codes; antenna arrays; decoding; diversity reception; fading channels; maximum likelihood detection; receiving antennas; space division multiplexing; space-time codes; transforms; transmitting antennas; EST; FDFR codes; ML detection; TAST code; decision-feedback detector; detection complexity; energy spreading transform approach; flat fading channels; full-diversity full-rate space-time codes; high decoding complexity; low-complexity MIMO scheme; maximum likelihood detection; multiple data streams; multiple transmit antennas; multiple-input-multiple-output scheme; receive antennas; spatial multiplexing; threaded algebraic space-time code; Complexity theory; MIMO; Maximum likelihood decoding; Receiving antennas; Transmitting antennas; Energy spreading transform (EST); full diversity full rate (FDFR); multiple-input-multiple-output (MIMO);
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2012.2214217