DocumentCode :
1198911
Title :
Dynamic power allocation and routing for time-varying wireless networks
Author :
Neely, M.J. ; Modiano, E. ; Rohrs, C.E.
Author_Institution :
Dept. of Electr. Eng., Univ. of Southern California, Los Angeles, CA, USA
Volume :
23
Issue :
1
fYear :
2005
Firstpage :
89
Lastpage :
103
Abstract :
We consider dynamic routing and power allocation for a wireless network with time-varying channels. The network consists of power constrained nodes that transmit over wireless links with adaptive transmission rates. Packets randomly enter the system at each node and wait in output queues to be transmitted through the network to their destinations. We establish the capacity region of all rate matrices (/spl lambda//sub ij/) that the system can stably support-where /spl lambda//sub ij/ represents the rate of traffic originating at node i and destined for node j. A joint routing and power allocation policy is developed that stabilizes the system and provides bounded average delay guarantees whenever the input rates are within this capacity region. Such performance holds for general arrival and channel state processes, even if these processes are unknown to the network controller. We then apply this control algorithm to an ad hoc wireless network, where channel variations are due to user mobility. Centralized and decentralized implementations are compared, and the stability region of the decentralized algorithm is shown to contain that of the mobile relay strategy developed by Grossglauser and Tse (2002).
Keywords :
ad hoc networks; channel capacity; matrix algebra; mobile radio; optimisation; queueing theory; radio links; telecommunication network routing; telecommunication traffic; time-varying channels; ad hoc wireless network; adaptive transmission rate; centralized algorithm; channel state process; channel variation; decentralized algorithm; dynamic power allocation policy; joint dynamic routing; matrice rate; mobile relay strategy; network capacity region; network controller; network delay; network traffic; optimization; output queueing; power constrained node; stability region; time-varying channel; wireless link; Control systems; Delay; Peer to peer computing; Relays; Routing; Stability; Telecommunication traffic; Time-varying channels; Traffic control; Wireless networks; Capacity; control; optimization; queueing;
fLanguage :
English
Journal_Title :
Selected Areas in Communications, IEEE Journal on
Publisher :
ieee
ISSN :
0733-8716
Type :
jour
DOI :
10.1109/JSAC.2004.837349
Filename :
1374962
Link To Document :
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