Title :
Quasi-Orthogonal Time-Reversal Space–Time Block Coding for Frequency-Selective Fading Channels
Author :
Mheidat, Hakam ; Uysal, Murat ; Al-Dhahir, Naofal
Author_Institution :
Dept. of Electr. & Comput. Eng., Waterloo Univ., Ont.
Abstract :
Quasi-orthogonal space-time block codes (QO-STBCs) are a powerful code family designed for more than two transmit antennas. In contrast to their orthogonal counterparts designed for the same number of transmit antennas, QO-STBCs are able to provide full-rate transmission rate. While original QO-STBCs enjoy only a partial diversity, the recently proposed rotated versions of QO-STBCs achieve the maximum diversity order which is equal to the number of transmit antennas. Since QO-STBCs have been originally proposed for frequency-flat fading channels, it is a challenging design problem to apply them over frequency-selective channels. The dispersive nature of such channels results in intersymbol interference which needs to be carefully handled at the receiver. In this paper, we investigate time-domain equalization for QO-STBC, exploiting the embedded quasi-orthogonal structure to design low-complexity receivers. We also present diversity gains for the proposed scheme through pairwise error probability (PEP) derivation and analysis which are further confirmed by Monte Carlo simulations
Keywords :
Monte Carlo methods; block codes; channel coding; diversity reception; equalisers; error statistics; fading channels; intersymbol interference; orthogonal codes; space-time codes; time-domain analysis; Monte Carlo simulations; diversity gains; frequency-selective fading channels; intersymbol interference; pairwise error probability derivation; quasi-orthogonal time-reversal space-time block coding; time-domain equalization; transmit antennas; Block codes; Constellation diagram; Contracts; Decoding; Dispersion; Diversity methods; Frequency; Frequency-selective fading channels; Pairwise error probability; Transmitting antennas; Cooperative diversity; distributed space–time block coding; equalization; fading channels; pairwise error probability;
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2006.885766