Abstract
This paper focuses on the finite-time generalized synchronization problem of non-identical fractional order chaotic (or hyper-chaotic) systems by a designing adaptive sliding mode controller and its application to secure communication. The effects of both disturbances and model uncertainties are taken into account. A novel fractional order integral sliding mode surface is designed and its stability to the origin is proved in a given finite time. By the aid of the fractional Lyapunov stability theory, a robust controller with adaptive update laws is proposed and its finite-time stability for generalized synchronization between two non-identical fractional-order chaotic systems in the presence of model uncertainties and external disturbances is derived. Numerical simulations are provided to demonstrate the effectiveness and robustness of the presented approach. All simulation results obtained are in good agreement with the theoretical analysis. According to the proposed generalized finite-time synchronization criterion, a novel speech cryptosystem is proposed to send or share voice messages privately via secure channel. Security and performance analyses are given to show the practical effect of the proposed theories.
Funder
Key Field of Artificial Intelligence for Ordinary University
national natural science foundation of china
the guangzhou key laboratory of intelligent building equipment information integration and control
the natural science foundation of guangdong province of china
the introduction of talents project of guangdong polytechnic normal university of china
the Key (natural) Project of Guangdong Provincial
the Introduction of Talents Project of Guangdong Polytechnic Normal University of China
Guangdong Climbing Project
Special projects in key areas of ordinary colleges and universities in Guangdong Province
Intelligent Agricultural Engineering Technology Research Centre of Guangdong University
Innovation Team Project of Ordinary University of Guangdong Province
Guangzhou Yuexiu District Science and Technology Plan Major Project
Publisher
Public Library of Science (PLoS)
Cited by
7 articles.
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