DocumentCode :
738022
Title :
Resource Allocation for Secret Key Agreement Over Parallel Channels With Full and Partial Eavesdropper CSI
Author :
Tomasin, Stefano ; Dall´Arche, Alberto
Author_Institution :
Dept. of Inf. Eng., Univ. of Padova, Padua, Italy
Volume :
10
Issue :
11
fYear :
2015
Firstpage :
2314
Lastpage :
2324
Abstract :
We consider the distillation phase of the secret key agreement (SKA) channel model for users connected through parallel additive white Gaussian noise fading channels. Alice sends binary phase shift keying modulated random bits to Bob who selects the subset of bits that have a log-likelihood ratio higher than a given threshold, i.e., they are sufficiently reliable. Alice has either full or partial channel state information (CSI) on her channel to the eavesdropper Eve. The main contributions of this paper are: 1) the derivation of the expression of outage probability when partial CSI is available; 2) the introduction of (outage) secret key throughput (SKT) as a metric in the full (partial) CSI scenario; 3) the derivation of SKT bounds; 4) the proposal of a new power allocation and threshold choice algorithm that maximizes the SKT under an outage probability constraint; and 5) the derivation of a suboptimal version of the allocation algorithm amenable for practical implementation obtained by approximating the objective functions with a closed-form expression. Moreover, we show that when power allocation and thresholds are optimized, per-channel and joint SKA are equivalent.
Keywords :
AWGN channels; fading channels; phase shift keying; private key cryptography; probability; resource allocation; telecommunication network reliability; Secret Key Agreement; binary phase shift keying modulated random bit; full eavesdropper CSI; joint SKA channel model; log-likelihood ratio; outage probability; parallel additive white Gaussian noise fading channel; partial channel state information; partial eavesdropper CSI; power allocation; resource allocation; Binary phase shift keying; Forensics; Joints; Resource management; Security; Signal to noise ratio; OFDM; Physical Layer Security; Resource Allocation; Secret Key Agreement; physical layer security; resource allocation; secret key agreement;
fLanguage :
English
Journal_Title :
Information Forensics and Security, IEEE Transactions on
Publisher :
ieee
ISSN :
1556-6013
Type :
jour
DOI :
10.1109/TIFS.2015.2455412
Filename :
7154470
Link To Document :
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