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Adaptive synchronization design for chaotic systems via a scalar driving signal

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108 引文 斯高帕斯(Scopus)

摘要

Using a scalar driving signal, synchronization for a class of chaotic systems has been developed in this study. For chaotic systems characterized by nonlinearity, which depends only on the available output, a unified approach is developed by carefully extending the conventional adaptive observer design. For exactly known chaotic systems, an exponential convergence of synchronization is achieved in the large. When mismatched parameters are presented, this method performs the asymptotic synchronization of output state in the large. The convergence of the estimated parameter error is related to an implicit condition of persistent excitation (PE) on internal signals. From the broad spectrum characteristics of the chaotic driving signal, we reformulate the implicit PE condition as an condition on injection inputs. If this condition is satisfied, the estimated parameters converge to true values and exponential synchronization of all internal states is guaranteed. Two typical examples, including Duffing-Holmes system and Chua's circuit, are considered as illustrations to demonstrate the effectiveness of the adaptive synchronizer. Furthermore, the robustness of adaptive synchronization in presence of measurement noise is considered where the update law is modified. Finally, numerical simulations and DSP-based experiments show the validity of theoretical derivations.

原文English
頁(從 - 到)17-27
頁數11
期刊IEEE Transactions on Circuits and Systems I: Fundamental Theory and Applications
49
發行號1
DOIs
出版狀態Published - 1月 2002

文獻附註

Funding Information:
Manuscript received January 24, 2000; revised June 22, 2001. This work was supported by the National Science Council, R.O.C., under Grant NSC-89-2213-E033-006. This paper was recommended by Associate Editor M. J. Ogorzalek. K.-Y. Lian, P. Liu and C.-S. Chiu are with the Department of Electrical Engineering, Chung-Yuan Christian University, Chung-Li 32023, Taiwan, R.O.C. (e-mail: [email protected]). T.-S. Chiang is with the Department of Electrical Engineering, Ching-Yun Institute of Technology, Chung-Li 320, Taiwan, R.O.C. Publisher Item Identifier S 1057-7122(02)00281-7.

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