Title :
Enhancing Secrecy With Multi-Antenna Transmission in Wireless Ad Hoc Networks
Author :
Xi Zhang ; Xiangyun Zhou ; McKay, Matthew R.
Author_Institution :
Dept. of Electron. & Comput. Eng., Hong Kong Univ. of Sci. & Technol., Hong Kong, China
Abstract :
We study physical-layer security in wireless ad hoc networks and investigate two types of multi-antenna transmission schemes for providing secrecy enhancements. To establish secure transmission against malicious eavesdroppers, we consider the generation of artificial noise with either sectoring or beamforming. For both approaches, we provide a statistical characterization and tradeoff analysis of the outage performance of the legitimate communication and the eavesdropping links. We then investigate the network-wide secrecy throughput performance of both schemes in terms of the secrecy transmission capacity, and study the optimal power allocation between the information signal and the artificial noise. Our analysis indicates that, under transmit power optimization, the beamforming scheme outperforms the sectoring scheme, except for the case where the number of transmit antennas are sufficiently large. Our study also reveals some interesting differences between the optimal power allocation for the sectoring and beamforming schemes.
Keywords :
array signal processing; jamming; mobile ad hoc networks; probability; telecommunication security; transmitting antennas; wireless mesh networks; artificial noise; beamforming scheme; eavesdropping links; information signal; legitimate communication; malicious eavesdroppers; multiantenna transmission; network wide secrecy throughput performance; optimal power allocation; outage performance; physical layer security; secrecy enhancements; secrecy transmission capacity; secure transmission; statistical characterization; tradeoff analysis; transmit power optimization; wireless ad hoc networks; Ad hoc networks; Interference; Jamming; Noise; Throughput; Wireless communication; Ad hoc networks; artificial noise; multi-antenna transmission; outage probability; physical-layer security; power allocation; throughput optimization;
Journal_Title :
Information Forensics and Security, IEEE Transactions on
DOI :
10.1109/TIFS.2013.2279842