DocumentCode
55709
Title
Half-Duplex Relaying Over Slow Fading Channels Based on Quantize-and-Forward
Author
Sha Yao ; Kim, Tony T. ; Skoglund, Mikael ; Poor, H. Vincent
Author_Institution
Sch. of Electr. Eng., R. Inst. of Technol., Stockholm, Sweden
Volume
59
Issue
2
fYear
2013
fDate
Feb. 2013
Firstpage
860
Lastpage
872
Abstract
The focus of this paper is to study the performance of the quantize-and-forward (QF) scheme over a half-duplex relay channel that is slowly fading, with the assumption that the channel state information (CSI) is available only at the receiver side. In order to do so, three steps are taken. The first step is to characterize the achievable rate of the QF scheme over a discrete memoryless half-duplex relay channel. Then, the achievable rate over a corresponding additive white Gaussian noise channel is obtained (the specific assumption regarding the CSI in this paper makes this step nontrivial). With the results from the first two steps, performance measures such as outage probability, expected rate, and diversity-multiplexing tradeoff (DMT) over slow fading channels are evaluated. It is shown that the QF scheme can significantly outperform the compress-and-forward scheme at finite signal-to-noise ratio (SNR) and it can achieve the optimal DMT at asymptotically high SNR. Moreover, it is shown that simple feedback from the destination node to the relay node can further improve the performance of the QF scheme.
Keywords
AWGN channels; channel coding; decode and forward communication; diversity reception; fading channels; probability; relay networks (telecommunication); CSI; DMT; QF scheme; SNR; additive white Gaussian noise channel; channel state information; compress-and-forward scheme; discrete memoryless half-duplex relay channel; diversity-multiplexing tradeoff; finite signal-to-noise ratio; half-duplex relaying; outage probability; quantize-and-forward; slow fading channel; AWGN; AWGN channels; Encoding; Fading; Random variables; Relays; Signal to noise ratio; Half-duplex relay channels; outage probability; partial feedback; quantize-and-forward (QF); slow fading channels;
fLanguage
English
Journal_Title
Information Theory, IEEE Transactions on
Publisher
ieee
ISSN
0018-9448
Type
jour
DOI
10.1109/TIT.2012.2224318
Filename
6329962
Link To Document