Title :
Secrecy Rates in Broadcast Channels with Confidential Messages and External Eavesdroppers
Author :
Geraci, Giovanni ; Singh, Sushil ; Andrews, Jeffrey G. ; Jinhong Yuan ; Collings, Iain B.
Author_Institution :
Sch. of Electr. Eng. & Telecommun., Univ. of New South Wales, Sydney, NSW, Australia
Abstract :
In this paper, we consider the broadcast channel with confidential messages and external eavesdroppers (BCCE), where a multi-antenna base station simultaneously communicates to multiple potentially malicious users, in the presence of randomly located external eavesdroppers. Using the proposed model, we study the secrecy rates achievable with regularized channel inversion (RCI) precoding by performing a large-system analysis that combines results from stochastic geometry and random matrix theory, where the number of users K and the number of transmit antennas N both grow to infinity in a fixed ratio. We obtain explicit expressions for the probability of secrecy outage and an upper bound on the rate loss due to the presence of external eavesdroppers. We show that both these quantities scale as λe/√(N) as the density of external eavesdroppers λe grows, irrespective of their collusion strategy. Furthermore, we derive a practical rule for the choice of the regularization parameter, which is agnostic of channel state information and location of eavesdroppers, and yet provides close to optimal performance.
Keywords :
MIMO communication; broadcast channels; probability; telecommunication security; transmitting antennas; wireless channels; MIMO wireless techniques; RCI; broadcast channel with confidential messages and external eavesdroppers; channel state information; located external eavesdroppers; malicious users; multiantenna base station; optimal performance; random matrix theory; regularization parameter; regularized channel inversion; secrecy outage probability; secrecy rates; stochastic geometry; transmit antennas; Base stations; Interference; MIMO; Signal to noise ratio; Transmitting antennas; Vectors; Wireless communication; Physical layer security; broadcast channel; linear precoding; random matrix theory; stochastic geometry;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2014.041014.131101