Title :
Optimal Broadcast Scheduling for an Energy Harvesting Rechargeable Transmitter with a Finite Capacity Battery
Author :
Ozel, Omur ; Yang, Jing ; Ulukus, Sennur
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Maryland, College Park, MD, USA
fDate :
6/1/2012 12:00:00 AM
Abstract :
We consider the minimization of the transmission completion time with a battery limited energy harvesting transmitter in an M-user AWGN broadcast channel where the transmitter is able to harvest energy from the nature, using a finite storage capacity rechargeable battery. The harvested energy is modeled to arrive (be harvested) at the transmitter during the course of transmissions at arbitrary time instants. The transmitter has fixed number of packets for each receiver. Due to the finite battery capacity, energy may overflow without being utilized for data transmission. We derive the optimal offline transmission policy that minimizes the time by which all of the data packets are delivered to their respective destinations. We analyze the structural properties of the optimal transmission policy using a dual problem. We find the optimal total transmit power sequence by a directional water-filling algorithm. We prove that there exist M-1 cut-off power levels such that user i is allocated the power between the i-1st and the ith cut-off power levels subject to the availability of the allocated total power level. Based on these properties, we propose an algorithm that gives the globally optimal offline policy. The proposed algorithm uses directional water-filling repetitively. Finally, we illustrate the optimal policy and compare its performance with several suboptimal policies under different settings.
Keywords :
AWGN channels; broadcast channels; energy harvesting; scheduling; secondary cells; telecommunication power supplies; AWGN broadcast channel; M-1 cut-off power levels; arbitrary time instant; battery-limited energy harvesting transmitter; data packets; data transmission; directional water-filling algorithm; energy harvesting rechargeable transmitter; finite storage capacity rechargeable battery; optimal broadcast scheduling; optimal offline transmission policy; optimal total transmit power sequence; total power level allocation; transmission completion time minimization; Batteries; Data communication; Energy harvesting; Minimization; Phase change materials; Receivers; Transmitters; Energy harvesting; broadcast channels; finite-capacity battery; rechargeable wireless networks; throughput maximization; transmission completion time minimization;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2012.032812.110813