DocumentCode :
3602705
Title :
Full-Duplex Wireless-Powered Communication Network With Energy Causality
Author :
Xin Kang ; Chin Keong Ho ; Sumei Sun
Author_Institution :
Shield Lab., Central Res. Inst., Singapore, Singapore
Volume :
14
Issue :
10
fYear :
2015
Firstpage :
5539
Lastpage :
5551
Abstract :
In this paper, we consider a wireless communication network with a full-duplex hybrid energy and information access point and a set of wireless users with energy harvesting capabilities. The hybrid access point (HAP) implements full-duplex through two antennas: one for broadcasting wireless energy to users in the downlink and the other for simultaneously receiving information from the users via time division multiple access (TDMA) in the uplink. Each user can continuously harvest wireless power from the HAP until it transmits, i.e., the energy causality constraint is modeled by assuming that energy harvested in the future cannot be used for the current transmission. This leads to the causal dependence of each user´s harvesting time on the transmission time of earlier users, e.g., the second user scheduled to transmit can harvest more energy if the first user has longer transmission time. Under this setup, we investigate the sum-throughput maximization (STM) problem and the total-time minimization (TTM) problem for the proposed full-duplex wireless-powered communication network. For the STM problem, the optimal solution is obtained as a closed-form expression, which can be computed with linear complexity. For the TTM problem, by exploiting the properties of the coupled constraints, we propose a two-step algorithm to obtain an optimal solution. Then, low-complexity suboptimal solutions are proposed for each problem by exploiting the characteristics of the optimal solutions. Finally, simulation studies on the effect of user scheduling show that different scheduling strategies should be adopted for STM and TTM.
Keywords :
energy harvesting; optimisation; telecommunication scheduling; time division multiple access; HAP; STM problem; TDMA; TTM problem; downlink; energy causality constraint; energy harvesting capabilities; full-duplex hybrid energy and information access point; full-duplex wireless-powered communication network; hybrid access point; linear complexity; low-complexity suboptimal solutions; sum-throughput maximization problem; time division multiple access; total-time minimization problem; transmission time; two-step algorithm; uplink; user scheduling; wireless communication network; wireless energy broadcasting; wireless users; Downlink; Energy harvesting; Information processing; Resource management; Uplink; Wireless communication; Wireless sensor networks; Convex Optimization; Energy Harvesting; Energy harvesting; Optimal Time Allocation; Wireless Power Transfer; convex optimization; optimal time allocation; wireless power transfer;
fLanguage :
English
Journal_Title :
Wireless Communications, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1276
Type :
jour
DOI :
10.1109/TWC.2015.2439673
Filename :
7115936
Link To Document :
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