Title :
Threshold-Triggered Selective Phase-Forward of Differential PSK in Cooperative Communication
Author :
Tan, Huai ; Ho, Paul
Author_Institution :
Sch. of Eng. Sci., Simon Fraser Univ., Burnaby, BC, Canada
Abstract :
We study in this paper the performance of a one-way cooperative transmission system using differential PSK (DPSK) modulation with differential detection. As opposed to previous works which consider either a decode-and-forward (DF) or an amplify-and-forward (AF) relay, we adopt in this paper a phase-forward (PF) relay, whereby each forwarded symbol has constant modulus and a phase equals the phase of the corresponding relay´s received symbol. The rationale for adopting this relaying strategy is to avoid potential non-linear amplifier distortion in an amplify-and-forward relay, as well as the implicit information loss/quantization in a DF relay. Through analysis and simulation, we found that this PF-DPSK cooperative transmission scheme has a lower bit-error rate (BER) than that of its DF counterpart. Furthermore, by adopting a threshold-based selective forwarding approach, it can attain a BER similar to that of AF. Finally, we anticipate that PF is most useful in two or multi-way relaying, in which any non-linear amplifier distortion on an AF signal will manifest into significant inter-modulation.
Keywords :
amplify and forward communication; cooperative communication; decode and forward communication; differential phase shift keying; error statistics; intermodulation; quantisation (signal); relay networks (telecommunication); AF relay; BER; DF relay; DPSK modulation; PF relay; PF-DPSK cooperative transmission scheme; amplify-and-forward relay; bit-error rate; constant modulus; cooperative communication; decode-and-forward relay; differential PSK; differential detection; information loss; intermodulation; multiway relaying; nonlinear amplifier distortion; one-way cooperative transmission system; phase-forward relay; quantization; relay received symbol; relaying strategy; threshold-triggered selective phase-forward; Bit error rate; Fading; Nonlinear distortion; Phase shift keying; Relays; Signal to noise ratio;
Conference_Titel :
Vehicular Technology Conference (VTC Fall), 2012 IEEE
Conference_Location :
Quebec City, QC
Print_ISBN :
978-1-4673-1880-8
Electronic_ISBN :
1090-3038
DOI :
10.1109/VTCFall.2012.6399193