DocumentCode :
922060
Title :
QoS and energy trade off in distributed energy-limited mesh/relay networks: a queuing analysis
Author :
Fallahi, Afshin ; Hossain, Ekram ; Alfa, Attahiru S.
Author_Institution :
Dept. of Electr. & Comput. Eng., Manitoba Univ., Winnipeg, Man.
Volume :
17
Issue :
6
fYear :
2006
fDate :
6/1/2006 12:00:00 AM
Firstpage :
576
Lastpage :
592
Abstract :
In a distributed multihop mesh/relay network (e.g., wireless ad hoc/sensor network, cellular multihop network), each node acts as a relay node to forward data packets from other nodes. These nodes are often energy-limited and also have limited buffer space. Therefore, efficient power saving mechanisms (e.g., sleeping mechanisms) are required so that the lifetime of these nodes can be extended while at the same time the quality of service (QoS) requirements (e.g., packet delay and packet loss rate) for the relayed packets can be satisfied. In this paper, we present a novel queueing analytical framework to study the tradeoff between the energy saving and the QoS at a relay node. Specifically, by modeling the bursty traffic arrival process as a MAP (Markovian arrival process) and the packet service process as having a phase-type (PH) distribution, we model each node as a MAP/PH/1 nonpreemptive priority queue. The relayed packets and the node´s own packets form two priority classes and the medium access control (MAC)/physical (PHY) layer protocol in the transmission protocol stack acts as the server process. Moreover, we use a phase-type vacation model for the energy-saving mechanism in a node when the MAC/PHY protocol refrains from transmitting in order to save battery power. Two different power saving mechanisms due to the standard exhaustive and the number-limited exhaustive vacation models (both in multiple vacation cases) are analyzed to study the tradeoff between the QoS performance of the relayed packets and the energy saving at a relay node. Also, an optimization formulation is presented to design an optimal wakeup strategy for the server process under QoS constraints. We use matrix-geometric method to obtain the stationary probability distribution for the system states from which the performance metrics are derived. Using phase-type distribution for both the service and the vacation processes and combining the priority queueing model with the vacation queueing- - model make the analysis very general and comprehensive
Keywords :
Markov processes; access protocols; ad hoc networks; performance evaluation; power consumption; quality of service; queueing theory; statistical distributions; wireless sensor networks; Markovian arrival process; QoS; bursty traffic arrival process; distributed energy-limited mesh network; distributed multihop relay network; energy-saving mechanism; matrix-geometric method; medium access control layer protocol; nonpreemptive priority queueing model; optimization formulation; packet service process; phase-type distribution; power saving mechanism; quality of service requirement; queuing analysis; server process; stationary probability distribution; transmission protocol; vacation queueing model; wireless ad hoc network; wireless sensor network; Access protocols; Cellular networks; Media Access Protocol; Physical layer; Power system relaying; Quality of service; Queueing analysis; Relays; Spread spectrum communication; Wireless sensor networks; Markovian arrival process; Wireless ad hoc/sensor networks; energy efficiency; matrix-geometric method; phase-type distribution; priority queues; quality of service; queuing analysis; vacation queuing model.;
fLanguage :
English
Journal_Title :
Parallel and Distributed Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1045-9219
Type :
jour
DOI :
10.1109/TPDS.2006.76
Filename :
1626223
Link To Document :
بازگشت