DocumentCode
1526460
Title
Power Allocation Strategies for Distributed Space-Time Codes in Two-Way Relay Networks
Author
Wang, Wenjin ; Jin, Shi ; Gao, Xiqi ; Wong, Kai-Kit ; McKay, Matthew R.
Author_Institution
Nat. Mobile Commun. Res. Lab., Southeast Univ., Nanjing, China
Volume
58
Issue
10
fYear
2010
Firstpage
5331
Lastpage
5339
Abstract
We study a two-way relay network (TWRN), where distributed space-time codes are constructed across multiple relay terminals in an amplify-and-forward mode. Each relay transmits a scaled linear combination of its received symbols and their conjugates, with the scaling factor chosen based on automatic gain control. We consider equal power allocation (EPA) across the relays, as well as the optimal power allocation (OPA) strategy given access to instantaneous channel state information (CSI). For EPA, we derive an upper bound on the pairwise-error-probability (PEP), from which we prove that full diversity is achieved in TWRNs. This result is in contrast to one-way relay networks, in which case a maximum diversity order of only unity can be obtained. When instantaneous CSI is available at the relays, we show that the OPA which minimizes the conditional PEP of the worse link can be cast as a generalized linear fractional program, which can be solved efficiently using the Dinkelback-type procedure. We also prove that, if the sum-power of the relay terminals is constrained, then the OPA will activate at most two relays.
Keywords
automatic gain control; error statistics; radio networks; space-time codes; telecommunication control; Dinkelback-type procedure; amplify-and-forward mode; automatic gain control; channel state information; distributed space-time codes; generalized linear fractional program; maximum diversity order; multiple relay terminals; pairwise-error-probability; power allocation strategies; scaling factor; two-way relay networks; Channel state information; Decoding; Fading; Gain control; Mobile communication; Permission; Power system relaying; Relays; Space time codes; Upper bound; Distributed space-time codes; power allocation; two-way relay channel;
fLanguage
English
Journal_Title
Signal Processing, IEEE Transactions on
Publisher
ieee
ISSN
1053-587X
Type
jour
DOI
10.1109/TSP.2010.2055561
Filename
5497214
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