DocumentCode :
53904
Title :
On the Secrecy Rate Region of Multiple-Access Wiretap Channel With Noncausal Side Information
Author :
Sonee, Amir ; Hodtani, Ghosheh Abed
Author_Institution :
Ferdowsi Univ. of Mashhad, Mashhad, Iran
Volume :
10
Issue :
6
fYear :
2015
fDate :
Jun-15
Firstpage :
1151
Lastpage :
1166
Abstract :
In this paper, we study the two transmitter multiple-access channel (MAC) with noncausal side information at one (single-sided) or both (two-sided) of the encoders in the presence of an external wiretapper (WT) and under individual and collective secrecy constraints. Our work consists of four parts. First, we consider the discrete memoryless (DM-MAC-WT) case of the model and derive inner and outer bounds on the secrecy capacity region under both of the secrecy constraints. Second, the results are extended to the Gaussian memoryless case [Gaussian multiple-access channel WT (GMAC-WT)] in detail and are used to illustrate numerically that the secrecy rate region is enlarged by increasing the power of the interference signal which is known noncausally at the encoder. Third, we analyze the strong interference regime as an important regime in GMAC with side information and show that under collective secrecy constraint, we can achieve the secrecy capacity region of the single-sided channel asymptotically for a special case in which the signal and noise powers satisfy specific constraints. To the best of our knowledge, this capacity region is the first one obtained for GMAC-WT. Finally, we show that our results include previous works as its special cases for both the single-sided and two-sided channel models.
Keywords :
Gaussian processes; access protocols; encoding; radio transmitters; radiofrequency interference; wireless channels; DM-MAC-WT; GMAC-WT; Gaussian memoryless case; Gaussian multiple access channel WT; collective secrecy constraints; discrete memoryless; external wiretapper; interference signal; multiple access wiretap channel; noise powers; noncausal side information; secrecy capacity region; secrecy rate region; signal powers; Decoding; Encoding; Interference; Noise; Receivers; Security; Silicon; Individual and collective secrecy constraints; Multiple-access wiretap channel; Secrecy capacity region; noncausal side information; secrecy capacity region;
fLanguage :
English
Journal_Title :
Information Forensics and Security, IEEE Transactions on
Publisher :
ieee
ISSN :
1556-6013
Type :
jour
DOI :
10.1109/TIFS.2015.2400416
Filename :
7031882
Link To Document :
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