Title : 
SPC07-2: Robust Linear Receiver for High-Rate MIMO OFDM under Channel Parameter Mismatch
         
        
            Author : 
Lin, Chih-Yuan ; Wu, Jwo-Yuh ; Lee, Ta-Sung
         
        
            Author_Institution : 
Dept. of Commun. Eng., Nat. Chiao Tung Univ., Hsinchu
         
        
        
            fDate : 
Nov. 27 2006-Dec. 1 2006
         
        
        
        
            Abstract : 
We consider MIMO-OFDM transmission, in a scenario that the adopted cyclic-prefix (CP) length is shorter than the channel delay spread for boosting data rate and, moreover, the channel parameters are not exactly known but are estimated using the least-squares (LS) training technique. By exploiting the receiver spatial resource, we propose a constrained-optimization based linear equalizer which can mitigate inter- symbol interference and inter-carrier interference incurred by insufficient CP interval, and is robust against the net detrimental effects caused by channel estimation errors. The optimization problem is formulated in an equivalent unconstrained generalized-sidelobe- canceller (GSC) setup. The channel parameter error is explicitly incorporated into the constraint-free GSC system model through the perturbation technique; this allows us to exploit the presumed LS channel error property for deriving a closed-form solution. Simulation results confirm the effectiveness of the proposed method.
         
        
            Keywords : 
MIMO communication; OFDM modulation; channel estimation; intersymbol interference; optimisation; perturbation techniques; radio receivers; MIMO OFDM; channel delay spread; channel error property; channel estimation errors; channel parameter error; channel parameter mismatch; closed-form solution; constrained optimization; cyclic-prefix length; generalized-sidelobe-canceller; high-rate transmission; intersymbol interference; least-squares training; linear equalizer; perturbation technique; receiver spatial resource; robust linear receiver; Boosting; Channel estimation; Closed-form solution; Delay estimation; Equalizers; Interference constraints; MIMO; OFDM; Perturbation methods; Robustness;
         
        
        
        
            Conference_Titel : 
Global Telecommunications Conference, 2006. GLOBECOM '06. IEEE
         
        
            Conference_Location : 
San Francisco, CA
         
        
        
            Print_ISBN : 
1-4244-0356-1
         
        
            Electronic_ISBN : 
1930-529X
         
        
        
            DOI : 
10.1109/GLOCOM.2006.569