Title :
Waveform Design for Secure SISO Transmissions and Multicasting
Author :
Ming Li ; Kundu, Sandipan ; Pados, Dimitris A. ; Batalama, Stella N.
Author_Institution :
Dept. of Electr. Eng., State Univ. of New York at Buffalo, Buffalo, NY, USA
Abstract :
Wireless physical-layer security is an emerging field of research aiming at preventing eavesdropping in an open wireless medium. In this paper, we propose a novel waveform design approach to minimize the likelihood that a message transmitted between trusted single-antenna nodes is intercepted by an eavesdropper. In particular, with knowledge first of the eavesdropper´s channel state information (CSI), we find the optimum waveform and transmit energy that minimize the signal-to-interference-plus-noise ratio (SINR) at the output of the eavesdropper´s maximum-SINR linear filter, while at the same time provide the intended receiver with a required pre-specified SINR at the output of its own max-SINR filter. Next, if prior knowledge of the eavesdropper´s CSI is unavailable, we design a waveform that maximizes the amount of energy available for generating disturbance to eavesdroppers, termed artificial noise (AN), while the SINR of the intended receiver is maintained at the pre-specified level. The extensions of the secure waveform design problem to multiple intended receivers are also investigated and semidefinite relaxation (SDR) -an approximation technique based on convex optimization- is utilized to solve the arising NP-hard design problems. Extensive simulation studies confirm our analytical performance predictions and illustrate the benefits of the designed waveforms on securing single-input single-output (SISO) transmissions and multicasting.
Keywords :
convex programming; filtering theory; multicast communication; radio receivers; telecommunication security; CSI; NP-hard design problems; SDR; SISO transmissions; artificial noise; channel state information; convex optimization; max-SINR linear filter; multicasting; open wireless medium; radio receiver; semidefinite relaxation; signal-to-interference-plus-noise ratio; single antenna nodes; single-input single-output transmissions; waveform design; wireless physical layer security; Correlation; Interference; Receivers; Security; Signal to noise ratio; Vectors; Wireless communication; Artificial noise; SISO wiretap channel; broadcast channel; eavesdropping; physical-layer security; power allocation; semidefinite relaxation; signal-to-interference-plus-noise ratio; waveform design;
Journal_Title :
Selected Areas in Communications, IEEE Journal on
DOI :
10.1109/JSAC.2013.130918