TY - JOUR
T1 - Secure communication on fractional-order chaotic systems via adaptive sliding mode control with teaching–learning–feedback-based optimization
AU - Li, Rui Guo
AU - Wu, Huai Ning
N1 - Publisher Copyright:
© 2018, Springer Nature B.V.
PY - 2019/1/30
Y1 - 2019/1/30
N2 - Due to the significance of secure communication, we do a research about this problem based on fractional-order chaotic systems, where a communication scheme is presented for encryption and decryption of the signal. Through applying Lyapunov stability theory and property of fractional calculus, an adaptive sliding mode controller is designed to achieve the synchronization phase between encryption system with encryption source and decryption system, which offers a tool to the decryption process. To improve the precision and speed of the decryption, we further put forward an optimization strategy for some parameters of the developed controller based on root mean square error of certain variable as a performance indicator. Meanwhile, as an improved teaching–learning-based optimization algorithm, teaching–learning–feedback-based optimization (TLFBO) algorithm is proposed to optimize the parameters more excellently. Subsequently, the simulation experiments, which contain performance test for TLFBO algorithm and secure communication of the signal, are, respectively, conducted on the benchmark functions as well as fractional-order Lorenz system with encryption source and fractional-order Lü system. At last, the experiment results illustrate the feasibility and practicability of the provided method by comparing with some other ones.
AB - Due to the significance of secure communication, we do a research about this problem based on fractional-order chaotic systems, where a communication scheme is presented for encryption and decryption of the signal. Through applying Lyapunov stability theory and property of fractional calculus, an adaptive sliding mode controller is designed to achieve the synchronization phase between encryption system with encryption source and decryption system, which offers a tool to the decryption process. To improve the precision and speed of the decryption, we further put forward an optimization strategy for some parameters of the developed controller based on root mean square error of certain variable as a performance indicator. Meanwhile, as an improved teaching–learning-based optimization algorithm, teaching–learning–feedback-based optimization (TLFBO) algorithm is proposed to optimize the parameters more excellently. Subsequently, the simulation experiments, which contain performance test for TLFBO algorithm and secure communication of the signal, are, respectively, conducted on the benchmark functions as well as fractional-order Lorenz system with encryption source and fractional-order Lü system. At last, the experiment results illustrate the feasibility and practicability of the provided method by comparing with some other ones.
KW - Adaptive sliding mode control
KW - Fractional-order chaotic systems
KW - Optimization strategy
KW - Secure communication
KW - Teaching–learning–feedback-based optimization (TLFBO) algorithm
UR - https://www.scopus.com/pages/publications/85055984478
U2 - 10.1007/s11071-018-4625-z
DO - 10.1007/s11071-018-4625-z
M3 - 文章
AN - SCOPUS:85055984478
SN - 0924-090X
VL - 95
SP - 1221
EP - 1243
JO - Nonlinear Dynamics
JF - Nonlinear Dynamics
IS - 2
ER -