DocumentCode
1889431
Title
Secrecy capacity region of Gaussian broadcast channel
Author
Bagherikaram, Ghadamali ; Motahari, Abolfazl S. ; Khandani, Amir K.
Author_Institution
Dept. of Electr. & Comput. Eng., Univ. of Waterloo, Waterloo, ON
fYear
2009
fDate
18-20 March 2009
Firstpage
152
Lastpage
157
Abstract
In this paper, we first consider a scenario where a source node wishes to broadcast two confidential messages for two respective receivers, while a wire-taper also receives the transmitted signal. We assume that the signals are transmitted over additive white Gaussian noise channels. We characterize the secrecy capacity region of this channel. Our achievable coding scheme is based on superposition coding and the random binning. We refer to this scheme as secret superposition coding. The converse proof combines the converse proof for the conventional Gaussian broadcast channel and the perfect secrecy constraint. This capacity region matches the capacity region of the broadcast channel without security constraint. It also matches the secrecy capacity of the wire-tap channel. Based on the rate characterization of the secure Gaussian broadcast channel, we then use a multilevel coding approach for the slowly fading wire-tap. We assume that the transmitter only knows the eavesdropper´s channel. In this approach, source node sends secure layered coding and the receiver viewed as a continuum ordered users. We derive optimum power allocation for the layers which maximizes the total average rate.
Keywords
AWGN channels; broadcast channels; channel allocation; channel capacity; channel coding; fading channels; telecommunication security; Gaussian broadcast channel; additive white Gaussian noise channel; channel coding scheme; continuum ordered users; eavesdropper channel; multilevel coding; optimum power allocation; random binning; secrecy capacity region; secret superposition coding; secure layered coding; signal transmission; slowly fading wire-tap channel; source node; Additive white noise; Broadcasting; Communication systems; Councils; Degradation; Entropy; Fading; Laboratories; Security; Transmitters;
fLanguage
English
Publisher
ieee
Conference_Titel
Information Sciences and Systems, 2009. CISS 2009. 43rd Annual Conference on
Conference_Location
Baltimore, MD
Print_ISBN
978-1-4244-2733-8
Electronic_ISBN
978-1-4244-2734-5
Type
conf
DOI
10.1109/CISS.2009.5054708
Filename
5054708
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