Title :
Cross-Layer Design of Wireless Multihop Networks Over Stochastic Channels With Time-Varying Statistics
Author :
Stai, Eleni ; Loulakis, Michail ; Papavassiliou, Symeon
Author_Institution :
Sch. of Electr. & Comput. Eng., Nat. Tech. Univ. of Athens, Athens, Greece
Abstract :
Network utility maximization is often applied for the cross-layer design of wireless networks considering known wireless channels. However, realistic wireless channel capacities are stochastic bearing time-varying statistics, necessitating the redesign and solution of NUM problems to capture such effects. Based on NUM theory we develop a framework for scheduling, routing, congestion control and power control in wireless multihop networks that considers stochastic long or short term fading wireless channels. Specifically, the wireless channel is modeled via stochastic differential equations alleviating several assumptions that exist in state-of-the-art channel modeling within the NUM framework such as the finite number of states or the stationarity. Our consideration of wireless channel modeling leads to a NUM problem formulation that accommodates non-convex and time-varying utilities. We consider both cases of non orthogonal and orthogonal access of users to the medium. In the first case, scheduling is performed via power control, while the latter separates scheduling and power control and the role of power control is to further increase users´ optimal utility by exploiting random reductions of the stochastic channel power loss while also considering energy efficiency. Finally, numerical results evaluate the performance and operation of the proposed approach and study the impact of several involved parameters on convergence.
Keywords :
energy conservation; power control; radio networks; statistical analysis; telecommunication congestion control; telecommunication network routing; telecommunication scheduling; wireless channels; NUM problems; NUM theory; congestion control; cross-layer design; energy efficiency; network utility maximization; power control; routing; scheduling; short term fading wireless channels; stochastic bearing time-varying statistics; stochastic channel power loss; stochastic channels; stochastic differential equations; time-varying statistics; wireless multihop networks; wireless networks; Fading; Mathematical model; Optimization; Power control; Routing; Stochastic processes; Wireless communication; Network Utility Maximization; Short Term Fading; Wireless multihop networks; long term fading; network utility maximization; non stationarity; non-convex utilities; short term fading; stochastic wireless channels; time-varying utilities; transient phenomena;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2015.2462845