Title :
Max-min fair wireless energy transfer for secure multiuser communication systems
Author :
Ng, Derrick Wing Kwan ; Schober, Robert
Author_Institution :
Friedrich-Alexander-Univ. Erlangen-Nurnberg (FAU), Erlangen, Germany
Abstract :
This paper considers max-min fairness for wireless energy transfer in a downlink multiuser communication system. Our resource allocation design maximizes the minimum harvested energy among multiple multiple-antenna energy harvesting receivers (potential eavesdroppers) while providing quality of service (QoS) for secure communication to multiple single-antenna information receivers. In particular, the algorithm design is formulated as a non-convex optimization problem which takes into account a minimum required signal-to-interference-plus-noise ratio (SINR) constraint at the information receivers and a constraint on the maximum tolerable channel capacity achieved by the energy harvesting receivers for a given transmit power budget. The proposed problem formulation exploits the dual use of artificial noise generation for facilitating efficient wireless energy transfer and secure communication. A semidefinite programming (SDP) relaxation approach is exploited to obtain a global optimal solution of the considered problem. Simulation results demonstrate the significant performance gain in harvested energy that is achieved by the proposed optimal scheme compared to two simple baseline schemes.
Keywords :
MIMO communication; antenna arrays; channel capacity; energy harvesting; next generation networks; optimisation; quality of service; resource allocation; telecommunication security; MIMO communication; QoS; artificial noise generation; max-min fair wireless energy transfer; maximum tolerable channel capacity; minimum harvested energy; multiple multiple-antenna energy harvesting receivers; multiple single-antenna information receivers; multiuser communication system security; next generation wireless communication system; nonconvex optimization problem; potential eavesdroppers; quality of service; resource allocation; semidefinite programming relaxation approach; Energy harvesting; Interference; Noise; Optimization; Receivers; Resource management; Wireless communication;
Conference_Titel :
Information Theory Workshop (ITW), 2014 IEEE
Conference_Location :
Hobart, TAS
DOI :
10.1109/ITW.2014.6970847