Title :
A Characterization of Delay Performance of Cognitive Medium Access
Author :
Wang, Shanshan ; Zhang, Junshan ; Tong, Lang
Author_Institution :
Sch. of Electr., Comput. & Energy Eng., Arizona State Univ., Tempe, AZ, USA
fDate :
2/1/2012 12:00:00 AM
Abstract :
We consider a cognitive radio network where multiple secondary users (SUs) contend for spectrum usage, using random access, over available primary user (PU) channels. Our focus is on SUs´ queueing delay performance, for which a systematic understanding is lacking. We take a fluid queue approximation approach to study the steady-state delay performance of SUs, for cases with a single PU channel and multiple PU channels. Using stochastic fluid models, we represent the queue dynamics as Poisson driven stochastic differential equations, and characterize the moments of the SUs´ queue lengths accordingly. Since in practical systems, an SU would have no knowledge of other users´ activities, its contention probability has to be set based on local information. With this observation, we develop adaptive algorithms to find the optimal contention probability that minimizes the mean queue lengths. Moreover, we study the impact of multiple channels and multiple interfaces on SUs´ delay performance. As expected, the use of multiple channels and/or multiple interfaces leads to significant delay reduction. Finally, we consider packet generation control to meet the delay requirements for SUs, and develop randomized and queue-length-based control mechanisms accordingly.
Keywords :
approximation theory; cognitive radio; delays; differential equations; probability; queueing theory; stochastic processes; wireless channels; Poisson driven stochastic differential equations; SU queueing delay performance; adaptive algorithms; available primary user channels; cognitive medium access; cognitive radio network; delay performance characterization; delay reduction; fluid queue approximation approach; mean queue lengths; multiple PU channels; multiple secondary users; optimal contention probability; packet generation control; queue-length-based control mechanisms; single PU channel; steady-state delay performance; stochastic fluid models; Approximation methods; Cognitive radio; Delay; Differential equations; Mathematical model; Queueing analysis; Steady-state; Delay analysis; cognitive radio networks; fluid approximation;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2012.010312.110765