Title :
Maximum Likelihood Detection of Quasi-Orthogonal Space-Time Block Codes: Analysis and Simplification
Author :
Azzam, Luay ; Ayanoglu, Ender
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Univ. of California, Irvine, CA
Abstract :
In this paper, we propose a low complexity Maximum Likelihood (ML) decoding algorithm for quasi-orthogonal space-time block codes (QOSTBCs) based on the real-valued lattice representation and QR decomposition. We show that for a system with rate r = ns/T, where ns is the number of transmitted symbols per T time slots; the proposed algorithm decomposes the original complex-valued system into a parallel system with ns 2 x 2 real-valued components, thus allowing for a simple joint decoding of two real symbols. For a square QAM constellation with L points (L-QAM), this algorithm achieves full diversity by properly incorporating two-dimensional rotation using the optimal rotation angle and the same rotating matrix for any number of transmit antennas (N ges 4). We further show that for N = 8 and 16-QAM modulation scheme, the new approach achieves > 98% reduction in the overall complexity compared to conventional ML detection, and > 93% reduction compared to the most competitive reported algorithms in the literature. This complexity gain becomes greater when N or L becomes larger. We also show that the complexity of the proposed algorithm is linear with L and ns.
Keywords :
antenna arrays; block codes; diversity reception; matrix algebra; maximum likelihood decoding; maximum likelihood detection; orthogonal codes; quadrature amplitude modulation; space-time codes; transmitting antennas; QR decomposition; full diversity; low complexity ML decoding algorithm; maximum likelihood detection; optimal rotation angle; quasiorthogonal space-time block codes; real-valued lattice representation; rotating matrix; square QAM constellation; transmit antennas; Algorithm design and analysis; Block codes; Communications Society; Constellation diagram; Lattices; Maximum likelihood decoding; Maximum likelihood detection; Pervasive computing; Quadrature amplitude modulation; Transmitting antennas;
Conference_Titel :
Communications, 2008. ICC '08. IEEE International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-1-4244-2075-9
Electronic_ISBN :
978-1-4244-2075-9
DOI :
10.1109/ICC.2008.742