DocumentCode
1978141
Title
Distributed space time coding for wireless two-way relaying
Author
Muralidharan, Vijayvaradharaj T. ; Rajan, B. Sundar
Author_Institution
Dept. of ECE, IISc, Bangalore, India
fYear
2012
fDate
3-7 Dec. 2012
Firstpage
2455
Lastpage
2461
Abstract
We consider the wireless two-way relay channel, in which two-way data transfer takes place between the end nodes with the help of a relay. For the Denoise-And-Forward (DNF) protocol, it was shown by Koike-Akino et. al. that adaptively changing the network coding map used at the relay greatly reduces the impact of Multiple Access interference at the relay. The harmful effect of the deep channel fade conditions can be effectively mitigated by a proper choice of these network coding maps at the relay. Alternatively, in this paper we propose a Distributed Space Time Coding (DSTC) scheme, which effectively removes most of the deep fade channel conditions at the transmitting nodes itself without any CSIT and without any need to adaptively change the network coding map used at the relay. It is shown that the deep fades occur when the channel fade coefficient vector falls in a finite number of vector subspaces of ℂ2, which are referred to as the singular fade subspaces. DSTC design criterion referred to as the singularity minimization criterion under which the number of such vector subspaces are minimized is obtained. Also, a criterion to maximize the coding gain of the DSTC is obtained. Explicit low decoding complexity DSTC designs which satisfy the singularity minimization criterion and maximize the coding gain for QAM and PSK signal sets are provided. Simulation results show that at high Signal to Noise Ratio, the DSTC scheme provides large gains when compared to the conventional Exclusive-OR network code and performs slightly better than the adaptive network coding scheme proposed by Koike-Akino et. al.
Keywords
adaptive codes; channel coding; data communication; decoding; fading channels; network coding; phase shift keying; protocols; quadrature amplitude modulation; space-time codes; telecommunication channels; DSTC designs; DSTC scheme; PSK signal; QAM; adaptive network coding scheme; deep channel fade conditions; deep fade channel conditions; denoise-and-forward protocol; distributed space time coding; exclusive-OR network code; explicit low decoding complexity; multiple access interference; network coding map; singularity minimization criterion; two-way data transfer; wireless two-way relay channel; wireless two-way relaying;
fLanguage
English
Publisher
ieee
Conference_Titel
Global Communications Conference (GLOBECOM), 2012 IEEE
Conference_Location
Anaheim, CA
ISSN
1930-529X
Print_ISBN
978-1-4673-0920-2
Electronic_ISBN
1930-529X
Type
conf
DOI
10.1109/GLOCOM.2012.6503485
Filename
6503485
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