DocumentCode :
459563
Title :
Optimal Peak-to-Average Power Ratio Reduction in MIMO-OFDM Systems
Author :
Aggarwal, Alok ; Stauffer, Erik R. ; Meng, Teresa H.
Author_Institution :
Electrical Engineering Department, Stanford University, CA 94305, USA. Contact Email: alok@stanford.edu
Volume :
7
fYear :
2006
fDate :
38869
Firstpage :
3094
Lastpage :
3099
Abstract :
Recent work has used convex optimization to minimize the peak-to-average power ratio (PAR) of OFDM signals subject to a constraint on the constellation error vector magnitude (EVM). This paper extends the PAR optimization technique to multiple-input multiple-output (MIMO) OFDM systems with channel precoding. In MIMO systems with a large OFDM symbol size, it is infeasible to solve the optimization problem by direct methods such as Cholesky factorization. Instead, we propose an iterative conjugate-gradient (CG) method to find an approximate solution with far lower memory and latency requirements. Simulation results are presented for a MIMO-OFDM system with 4 antennas and 1024 carriers. The PAR can be reduced from 11.5 dB to 4.3 dB for QPSK with -20 dB EVM, and from 11.5 dB to 5.5 dB for 16-QAM with -30 dB EVM. The tradeoff between PAR reduction and computational complexity is also examined to determine the number of CG iterations needed to reach within 1 dB of the globally optimal solution.
Keywords :
Character generation; Computational modeling; Constellation diagram; Constraint optimization; Delay; Iterative methods; MIMO; OFDM; Optimization methods; Peak to average power ratio;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Communications, 2006. ICC '06. IEEE International Conference on
Conference_Location :
Istanbul
ISSN :
8164-9547
Print_ISBN :
1-4244-0355-3
Electronic_ISBN :
8164-9547
Type :
conf
DOI :
10.1109/ICC.2006.255280
Filename :
4024662
Link To Document :
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