Title :
On the balance between cooperation and interference in dense wireless networks
Author :
Altieri, Andrés ; Vega, Leonardo Rey ; Galarza, Cecilia G. ; Piantanida, Pablo
Author_Institution :
Sch. of Eng., Univ. of Buenos Aires, Buenos Aires, Argentina
Abstract :
This paper explores the balance between cooperation through relay nodes and aggregated interference generation in large decentralized wireless networks using decode-and-forward. The source nodes in the network are modeled using a marked Poisson process. We consider the case in which only a single randomly located relay is added to one source in the network and study the outage probability gains obtained. Then, using a simple model, we study the case in which all sources can potentially use their nearest neighbor from the set of inactive nodes as relays, leading to a mixed transmission scheme in which some users employ decode-and-forward and others employ direct transmission. The optimal relay activation probability for the second case is found, observing that in the small outage probability regime it exhibits a binary behavior, being zero or one. Comparing both scenarios we conclude that activating more relays rapidly reduces the gains observed when only one source can use a relay. We derive closed-form approximations to the upper bounds on the error probability, averaging over all node positions and fading gains realizations, to support our claims.
Keywords :
approximation theory; cooperative communication; decode and forward communication; error statistics; radio networks; radiofrequency interference; stochastic processes; aggregated interference generation; binary behavior; closed-form approximations; cooperative communication; decode-and-forward strategy; dense wireless networks; error probability; fading gain realizations; large decentralized wireless networks; marked Poisson process; mixed transmission scheme; optimal relay activation probability; outage probability gains; relay nodes; single randomly located relay; source nodes; upper bounds; Artificial neural networks; Error probability; Fading; Interference; Relays; Upper bound; Wireless networks;
Conference_Titel :
Wireless Communication Systems (ISWCS), 2012 International Symposium on
Conference_Location :
Paris
Print_ISBN :
978-1-4673-0761-1
Electronic_ISBN :
2154-0217
DOI :
10.1109/ISWCS.2012.6328520