DocumentCode :
1018902
Title :
Markov-jump-system-based secure chaotic communication
Author :
Sathyan, Thuraiappah ; Kirubarajan, Thiagaligam
Author_Institution :
Dept. of Electr. & Comput. Eng., McMaster Univ., Hamilton, Ont., Canada
Volume :
53
Issue :
7
fYear :
2006
fDate :
7/1/2006 12:00:00 AM
Firstpage :
1597
Lastpage :
1609
Abstract :
In this paper, a new Markov-jump-system (MJS)-based secure chaotic communication technique is proposed. An MJS evolves by switching from one state evolution model to another according to a finite state Markov chain. The transmitter in the proposed communication system is an MJS consisting of multiple transmission maps, that is, the transmitter switches from one chaotic map to another during the transmission of data. This switching feature makes it difficult to identify and follow the transmission without knowing the transmitter parameters, i.e., to eavesdrop, thereby increasing the security offered by the inherently secure chaotic communication system. If the chaotic maps used at the transmitter, and the corresponding Markov transition probability matrix of the MJS are known to the (authorized) receiver, then a multiple model estimator can be used to track the MJS transmitter. In this paper, the use of the interacting multiple model (IMM) estimator is proposed as part of the receiver to follow the switching transmitter. The effectiveness of the IMM-estimator-based receiver to follow the switching transmitter is evaluated by means of simulations. A new modulation technique that uses the MJS transmitter is also introduced. Further, it is shown that the same receiver framework, when used as a receiver for chaotic parameter modulation, provides significant performance improvement in terms of bit-error rate compared to a receiver that uses extended Kalman filter. In addition, the seemingly more complex IMM-estimator-based receiver is shown to significantly reduce the computational complexity per transmitted bit, thus resulting in increased data rate.
Keywords :
Markov processes; chaotic communication; computational complexity; modulation; telecommunication security; IMM-estimator-based receiver; Markov jump system; Markov transition probability matrix; bit-error rate; chaotic parameter modulation; computational complexity; finite state Markov chain; interacting multiple model estimator; multiple transmission maps; secure chaotic communication; state evolution model; switching transmitter; Bifurcation; Bit error rate; Chaotic communication; Communication switching; Communication system security; Computational complexity; Data security; Demodulation; Switches; Transmitters; Channel equalization; Markov jump system (MJS); chaos; chaotic communication; chaotic parameter modulation (CPM); extended Kalman filter (EKF); interacting multiple model (IMM) estimator;
fLanguage :
English
Journal_Title :
Circuits and Systems I: Regular Papers, IEEE Transactions on
Publisher :
ieee
ISSN :
1549-8328
Type :
jour
DOI :
10.1109/TCSI.2006.877885
Filename :
1652982
Link To Document :
بازگشت