DocumentCode
31434
Title
Secrecy Transmission on Parallel Channels: Theoretical Limits and Performance of Practical Codes
Author
Baldi, Mario ; Chiaraluce, Franco ; Laurenti, N. ; Tomasin, Stefano ; Renna, Francesco
Author_Institution
Dipt. di Ing. dell´Inf., Univ. Politec. delle Marche, Ancona, Italy
Volume
9
Issue
11
fYear
2014
fDate
Nov. 2014
Firstpage
1765
Lastpage
1779
Abstract
We consider a system where an agent (Alice) aims at transmitting a message to a second agent (Bob) over a set of parallel channels, while keeping it secret from a third agent (Eve) by using physical layer security techniques. We assume that Alice perfectly knows the set of channels with respect to Bob, but she has only a statistical knowledge of the channels with respect to Eve. We derive bounds on the achievable outage secrecy rates, by considering coding either within each channel or across all parallel channels. Transmit power is adapted to the channel conditions, with a constraint on the average power over the whole transmission. We also focus on the maximum cumulative outage secrecy rate that can be achieved. Moreover, in order to assess the performance in a real life scenario, we consider the use of practical error correcting codes. We extend the definitions of security gap and equivocation rate, previously applied to the single additive white Gaussian noise channel, to Rayleigh distributed parallel channels, on the basis of the error rate targets and the outage probability. Bounds on these metrics are also derived, considering the statistics of the parallel channels. Numerical results are provided, that confirm the feasibility of the considered physical layer security techniques.
Keywords
AWGN channels; Rayleigh channels; error correction codes; telecommunication security; Rayleigh distributed parallel channel; additive white Gaussian noise channel; channel condition; equivocation rate; error rate target; outage probability; physical layer security technique; practical code performance; practical error correcting code; secrecy transmission; security gap; Encoding; Fading; Measurement; Noise; Physical layer; Receivers; Security; Coding; outage probability; parallel channels; physical layer security;
fLanguage
English
Journal_Title
Information Forensics and Security, IEEE Transactions on
Publisher
ieee
ISSN
1556-6013
Type
jour
DOI
10.1109/TIFS.2014.2348915
Filename
6879445
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