Title :
Low-complexity iterative method of equalization for single carrier with cyclic prefix in doubly selective channels
Author :
Ahmed, Sajid ; Sellathurai, Mathini ; Lambotharan, Sangarapillai ; Chambers, Jonathon A.
Author_Institution :
Centre of Digital Signal Process., Cardiff Univ., UK
Abstract :
Orthogonal frequency division multiplexing (OFDM) requires an expensive linear amplifier at the transmitter due to its high peak-to-average power ratio (PAPR). Single carrier with cyclic prefix (SC-CP) is a closely related transmission scheme that possesses most of the benefits of OFDM but does not have the PAPR problem. Although in a multipath environment, SC-CP is very robust to frequency-selective fading, it is sensitive to the time-selective fading characteristics of the wireless channel that disturbs the orthogonality of the channel matrix (CM) and increases the computational complexity of the receiver. In this paper, we propose a time-domain low-complexity iterative algorithm to compensate for the effects of time selectivity of the channel that exploits the sparsity present in the channel convolution matrix. Simulation results show the superior performance of the proposed algorithm over the standard linear minimum mean-square error (L-MMSE) equalizer for SC-CP.
Keywords :
OFDM modulation; computational complexity; convolution; equalisers; fading channels; iterative methods; least mean squares methods; matrix algebra; multipath channels; time-domain analysis; L-MMSE equalizer; OFDM; SC-CP; channel convolution matrix; computational complexity; doubly selective channel; linear amplifier; linear minimum mean-square error; multipath environment; orthogonal frequency division multiplexing; single carrier-cyclic prefix; time-domain iterative algorithm; time-selective fading characteristic; transmitter; wireless channel; Computational complexity; Fading; High power amplifiers; Iterative algorithms; Iterative methods; OFDM; Peak to average power ratio; Robustness; Transmitters; Wireless sensor networks; Computational complexity; doubly selective channel; iterative equalization;
Journal_Title :
Signal Processing Letters, IEEE
DOI :
10.1109/LSP.2005.860552