DocumentCode
2514552
Title
Computation of secrecy capacity for more-capable channel pairs
Author
Gowtham, K.R. ; Thangaraj, Andrew
Author_Institution
Dept. of Electr. Eng., Indian Inst. of Technol., Chennai
fYear
2008
fDate
6-11 July 2008
Firstpage
529
Lastpage
533
Abstract
We prove that the Arimoto-Blahut like algorithm provided by Yasui et al [6] to solve for the Secrecy Capacity of a less-noisy Discrete Memoryless Channel (DMC) pair can be extended to a more-capable DMC pair subject to the availability of a suitable initial guess. In particular, we show that if a cut parallel to the input hyperplane removes a convex piece from the graph of the multi-input function f(q)=I(X;Y) - I(X; Z)rfloorq(x), where q is the input probablity distribution, then for any initial guess chosen within that convex piece, Yasui´s algorithm will converge to the optimal value in that convex piece. We then introduce a new characterization called quasiconcavity of a DMC pair and show that it lies between the less-noisy and more-capable characterizations. We also show that in the binary case, quasiconcavity is equivalent to the more-capable characterization. We then show that we can choose from a wider range of initial guesses by looking at regions around the optimal point where the function is quasiconcave. Finally we establish that the algorithm of Yasui et al can be used for more-capable channel pairs with binary alphabets.
Keywords
channel capacity; discrete systems; graph theory; memoryless systems; probability; Arimoto-Blahut like algorithm; DMC capacity; Yasui algorithm; binary alphabets; less-noisy discrete memoryless channel; multiinput function graph; probablity distribution; quasiconcavity characterization; secrecy capacity computation; Broadcasting; Capacity planning; Channel capacity; Equations; Information security; Memoryless systems; Monte Carlo methods; Mutual information; Transmitters; Wire;
fLanguage
English
Publisher
ieee
Conference_Titel
Information Theory, 2008. ISIT 2008. IEEE International Symposium on
Conference_Location
Toronto, ON
Print_ISBN
978-1-4244-2256-2
Electronic_ISBN
978-1-4244-2257-9
Type
conf
DOI
10.1109/ISIT.2008.4595042
Filename
4595042
Link To Document