Title :
Opportunistic Control Over Shared Wireless Channels
Author :
Gatsis, Konstantinos ; Pajic, Miroslav ; Ribeiro, Alejandro ; Pappas, George J.
Author_Institution :
Dept. of Electr. & Syst. Eng., Univ. of Pennsylvania, Philadelphia, PA, USA
Abstract :
We consider a wireless control architecture with multiple control loops over a shared wireless medium. A scheduler observes the random channel conditions that each control system experiences over the shared medium and opportunistically selects systems to transmit at a set of non-overlapping frequencies. The transmit power of each system also adapts to channel conditions and determines the probability of successfully receiving and closing the loop. We formulate the optimal design of channel-aware scheduling and power allocation that minimize the total power consumption while meeting control performance requirements for all systems. In particular, it is required that for each control system a given Lyapunov function decreases at a specified rate in expectation over the random channel conditions. We develop an offline algorithm to find the optimal communication design, as well as an online protocol which selects scheduling and power variables based on a random observed channel sequence and converges almost surely to the optimal operating point. Simulations illustrate the power savings of our approach compared to other non-channel-aware schemes.
Keywords :
Lyapunov methods; control system synthesis; fading channels; probability; random processes; telecommunication power management; telecommunication scheduling; Lyapunov function; control performance requirements; multiple control loops; nonoverlapping frequencies; online protocol; optimal channel-aware scheduling design; optimal communication design; optimal operating point; power allocation; power savings; power variables; random channel conditions; random observed channel sequence; shared medium; shared wireless fading channels; total power consumption minimization; wireless control architecture; Control systems; Fading; Optimal scheduling; Resource management; Time-frequency analysis; Wireless communication; Wireless sensor networks; Networked control systems; Scheduling; networked control systems; opportunistic adaptation; power management; scheduling; wireless fading channels;
Journal_Title :
Automatic Control, IEEE Transactions on
DOI :
10.1109/TAC.2015.2416922