DocumentCode :
2429531
Title :
A Computationally Efficient Sphere Decoding Algorithm with Smart Radius Reduction Control
Author :
Han, Hee Goo ; Oh, Seong Keun
Author_Institution :
Sch. of Electr. & Comput. Eng., Ajou Univ., Suwon
Volume :
4
fYear :
2006
fDate :
7-10 May 2006
Firstpage :
1698
Lastpage :
1702
Abstract :
We propose a computationally efficient sphere decoding (SD) algorithm with smart radius reduction control (SRRC). As a baseline algorithm for SD, we consider the modified Schnorr-Euchner (SE) algorithm [1] (hereafter, called as the MSE algorithm). In principle, the radius after zero-forcing decision feedback equalization (ZF-DFE) estimation can be reduced further if we select a new lattice vector closer to the received signal vector than the lattice vector corresponding to the ZF-DFE estimate does. In our case, we obtain such a better lattice vector by performing a sequence of alternating one-dimensional searches, starting from the ZF-DFE estimate. We then develop a novel SRRC algorithm that adopts adaptively the additional radius reduction process according to the estimated signal-to-noise-power ratio (SNR) after ZF-DFE estimation. In addition, we analyze the effect of detection ordering on the complexity for SD. Column-norm ordering of the channel matrix and optimal ordering [1] are considered here. From our analyses, we see that SRRC can reduce greatly the complexity for SD and the degree of complexity reduction gets significant as the SNR decreases, irrespective of detection ordering schemes used
Keywords :
decision feedback equalisers; decoding; telecommunication control; channel matrix; column-norm ordering; computationally efficient sphere decoding algorithm; detection ordering schemes; lattice vector; modified Schnorr-Euchner algorithm; one-dimensional searches; optimal ordering; radius reduction process; signal-to-noise-power ratio; smart radius reduction control; zero-forcing decision feedback equalization estimation; Computational complexity; Computational intelligence; Decision feedback equalizers; Euclidean distance; Lattices; Maximum likelihood decoding; Maximum likelihood detection; Maximum likelihood estimation; Signal processing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Vehicular Technology Conference, 2006. VTC 2006-Spring. IEEE 63rd
Conference_Location :
Melbourne, Vic.
ISSN :
1550-2252
Print_ISBN :
0-7803-9391-0
Electronic_ISBN :
1550-2252
Type :
conf
DOI :
10.1109/VETECS.2006.1683136
Filename :
1683136
Link To Document :
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