Title :
Joint Beamforming Design and Time Allocation for Wireless Powered Communication Networks
Author :
Qian Sun ; Gang Zhu ; Chao Shen ; Xuan Li ; Zhangdui Zhong
Author_Institution :
State Key Lab. of Rail Traffic Control & Safety, Jiaotong Univ., Beijing, China
Abstract :
This paper investigates a multi-input single-output (MISO) wireless powered communication network (WPCN) under the protocol of harvest-then-transmit. The power station (PS) with reliable power supply first replenishes the passive user nodes by radio-frequency wireless power transfer (WPT) in the downlink, then each user node transmits independent information to the sink by a time division multiple access (TDMA) scheme in the uplink. We consider the joint time allocation and beamforming design to maximize the system sum-throughput. With perfect channel station information (CSI) at the PS, a semi-closed form solution is proposed by exploiting the strict concavity of the joint design problem. Then, in the case with Gaussian CSI errors, a robust algorithm is proposed to maximize the system throughput subject to the signal-to-noise ratio (SNR) outage probability constraints. Simulation results demonstrate the efficiency of the proposed fast algorithm and validate the robust algorithm.
Keywords :
array signal processing; channel allocation; energy harvesting; inductive power transmission; probability; protocols; radio networks; radiofrequency power transmission; telecommunication power supplies; time division multiple access; Gaussian CSI errors; MISO WPCN; PS; SNR outage probability constraints; TDMA; WPT; energy harvesting; harvest-then-transmit protocol; joint design problem; joint time allocation-beamforming design; multiinput single-output wireless powered communication network; passive user nodes; perfect channel station information; power station; radiofrequency wireless power transfer; reliable power supply; semiclosed form solution; signal-to-noise ratio; system sum-throughput maximization; time division multiple access scheme; Array signal processing; Communication networks; Joints; Resource management; Robustness; Throughput; Wireless communication; Energy harvesting; energy beamforming; robust design; time allocation; wireless powered communication;
Journal_Title :
Communications Letters, IEEE
DOI :
10.1109/LCOMM.2014.2347958