Title :
Optimal training for block transmissions over doubly selective wireless fading channels
Author :
Ma, Xiaoli ; Giannakis, Georgios B. ; Ohno, Shuichi
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Minnesota, Minneapolis, MN, USA
fDate :
5/1/2003 12:00:00 AM
Abstract :
High data rates give rise to frequency-selective propagation, whereas carrier frequency-offsets and mobility-induced Doppler shifts introduce time-selectivity in wireless links. To mitigate the resulting time- and frequency-selective (or doubly selective) channels, optimal training sequences have been designed only for special cases: pilot symbol assisted modulation (PSAM) for time-selective channels and pilot tone-assisted orthogonal frequency division multiplexing (OFDM) for frequency-selective channels. Relying on a basis expansion channel model, we design low-complexity optimal PSAM for block transmissions over doubly selective channels. The optimality in designing our PSAM parameters consists of maximizing a tight lower bound on the average channel capacity that is shown to be equivalent to the minimization of the minimum mean-square channel estimation error. Numerical results corroborate our theoretical designs.
Keywords :
Doppler effect; OFDM modulation; channel estimation; fading channels; land mobile radio; least mean squares methods; optimisation; radiowave propagation; MMSE channel estimation error; PSAM; basis expansion channel model; block transmissions; carrier frequency-offsets; doubly selective wireless fading channels; frequency-selective channels; frequency-selective propagation; high data rates; low-complexity optimal PSAM; minimum mean-square channel estimation error; mobile links; mobility-induced Doppler shifts; optimal training; optimal training sequences; orthogonal frequency division multiplexing; pilot OFDM; pilot symbol assisted modulation; time-selective channels; wireless links; Channel capacity; Channel estimation; Channel state information; Diversity methods; Doppler shift; Fading; Frequency estimation; Mutual information; OFDM modulation; System performance;
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2003.810304