DocumentCode :
1796613
Title :
Two-way relaying with distributed role selection
Author :
Haiyang Ding ; da Costa, Daniel Benevides ; Wu-Lin Liu ; Jianhua Ge ; Feng-Kui Gong
Author_Institution :
State Key Lab. of Integrated Service Networks, Xidian Univ., Xi´an, China
fYear :
2014
fDate :
13-15 Oct. 2014
Firstpage :
676
Lastpage :
681
Abstract :
It is well known that for classical analog network coding (ANC) protocol, the maximum achievable diversity gain is one according to previous investigations. Nonetheless, the pursuit of higher diversity gain, as an eternal topic in the field of cooperative diversity, calls for cooperative strategies with a higher diversity order. In this paper, we attempt to break this durance by designing cooperative strategies with an improved diversity gain. Specifically, assuming a two-way relaying scenario, we incorporate an opportunistic role decision mechanism into ANC protocol and propose a distributed role selection (ROSE) strategy (a.k.a. d-ROSE) to designate the cooperative role of each node in a fully dynamic manner. It is proved that the proposed d-ROSE strategy can make exactly the same role decision with the counterpart of the optimal ROSE strategy, achieving therefore the outage-optimal transmission robustness. In particular, both theoretical analysis and numerical results demonstrate that besides maintaining a low signaling overhead to make role decision, the d-ROSE strategy can achieve a diversity order of two, i.e., one order higher than that of classical ANC protocol.
Keywords :
cooperative communication; diversity reception; network coding; relay networks (telecommunication); telecommunication network reliability; telecommunication signalling; ANC protocol; analog network coding protocol; cooperative diversity; d-ROSE strategy; distributed role selection; diversity gain; diversity order; opportunistic role decision mechanism; outage-optimal transmission robustness; signaling overhead; two-way relaying; Diversity methods; Nickel; Protocols; Quantization (signal); Relays; Signal to noise ratio; Wireless communication;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Communications in China (ICCC), 2014 IEEE/CIC International Conference on
Conference_Location :
Shanghai
Type :
conf
DOI :
10.1109/ICCChina.2014.7008361
Filename :
7008361
Link To Document :
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