Title :
Throughput Optimal Distributed Power Control of Stochastic Wireless Networks
Author :
Xi, Yufang ; Yeh, Edmund M.
Author_Institution :
Dept. of Electr. Eng., Yale Univ., New Haven, CT, USA
Abstract :
The maximum differential backlog (MDB), or “backpressure” control policy of Tassiulas and Ephremides has been shown to adaptively maximize the stable throughput of multihop wireless networks with random traffic arrivals and queueing. The practical implementation of the MDB policy in wireless networks with mutually interfering links, however, requires the development of distributed optimization algorithms. Within the context of code-division multiple-access (CDMA)-based multihop wireless networks, we develop a set of node-based scaled gradient projection power control algorithms which solves the MDB optimization problem based on the high-signal-to-interference-plus-noise ratio (SINR) approximation of link capacities using low communication overhead. We investigate the impact of the high-SINR approximation and the nonnegligible convergence time required by the power control algorithms on the throughput region achievable by the iterative MDB policy. We show that the policy can achieve at least the stability region induced by the high-SINR capacity region.
Keywords :
approximation theory; code division multiple access; distributed control; gradient methods; power control; queueing theory; radio networks; telecommunication traffic; MDB optimization problem; MDB policy; backpressure control policy; code division multiple access; distributed optimization algorithms; high-signal-to-interference-plus-noise ratio approximation; link capacity; low communication overhead; maximum differential backlog; multihop wireless networks; node-based scaled gradient projection power control algorithms; queueing; random traffic arrivals; stochastic wireless networks; throughput optimal distributed power control; Distributed optimization; multihop wireless networks; stochastic control;
Journal_Title :
Networking, IEEE/ACM Transactions on
DOI :
10.1109/TNET.2009.2035919