Title :
Robust Receiver Design for MIMO Single-Carrier Block Transmission over Time-Varying Dispersive Channels Against Imperfect Channel Knowledge
Author :
Lin, Chih-Yuan ; Wu, Jwo-Yuh ; Lee, Ta-Sung
Author_Institution :
Dept. of Commun. Eng., Nat. Chiao Tung Univ., Hsinchu
Abstract :
We consider MIMO single-carrier block transmission over time-varying multipath channels, under the assumption that the channel parameters are not exactly known but are estimated via the least-squares training technique. While the channel temporal variation is known to negate the tone-by-tone frequency-domain equalization facility, it is otherwise shown that in the time domain the signal signatures can be arranged into groups of orthogonal components, leading to a very natural yet efficient group-by-group symbol recovery scheme. To realize this figure of merit we propose a constrained-optimization based receiver which also takes into account the mitigation of channel mismatch effects caused by time variation and imperfect estimation. The optimization problem is formulated in an equivalent unconstrained generalized-sidelobe-canceller setup. This enables us to directly model the channel mismatch effect into the system equations through the perturbation technique and, in turn, to further exploit the statistical assumptions on channel temporal variation and estimation errors for deriving a closed-form solution. Within the considered framework the proposed robust equalizer can be further combined with the successive interference cancellation mechanism for further performance enhancement.
Keywords :
MIMO communication; channel estimation; equalisers; estimation theory; interference suppression; least squares approximations; multipath channels; radio receivers; MIMO single-carrier block transmission; channel parameter estimation; channel temporal variation; constrained-optimization based receiver; error estimation; generalized-sidelobe-canceller; group-by-group symbol recovery; imperfect channel knowledge; interference cancellation; least-squares training; receiver design; robust equalizer; signal signature; time domain; time-varying dispersive channel; time-varying multipath channels; Closed-form solution; Dispersion; Equalizers; Equations; Estimation error; Interference cancellation; MIMO; Multipath channels; Perturbation methods; Robustness;
Conference_Titel :
Vehicular Technology Conference, 2008. VTC Spring 2008. IEEE
Conference_Location :
Singapore
Print_ISBN :
978-1-4244-1644-8
Electronic_ISBN :
1550-2252
DOI :
10.1109/VETECS.2008.423