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Abstract
In order to study the application of chaos in video image encryption, a real-time video secure communication system based on a new grid multi-wing chaotic system is proposed in this paper. First, by introducing sawtooth wave functions to the Lorenz system, a new grid multi-wing butterfly chaotic system with complicated dynamical behaviors is obtained. Compared with the existing multi-scroll and multi-wing chaotic systems, The system structure is simple and more easier to be implemented in a digital system. Then, a chaos-based pseudorandom random number generator is developed by implementing post-processing procedure. The present video secure communication system is designed with the closed-loop feedback scheme. The corresponding hardware implementation is developed by FPGA platforms, and the experimental results are given to verify its feasibility. Furthermore, a series of widely used secure analyses are applied to prove that the system has good security performance.
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Acknowledgements
The author would like to thank the reviewers and the editor for their invaluable comments on the manuscript of this paper. This work was supported by the National Natural Science Foundation of China [grant number 61471310] and the Natural Science Foundation of Hunan Province, China [grant number 2015JJ2142].
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College of Information Engineering, Xiangtan University, Xiangtan, 411105, Hunan, China
Ying Li, Zhijun Li, Minglin Ma & Mengjiao Wang
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Li, Y., Li, Z., Ma, M.et al. Generation of grid multi-wing chaotic attractors and its application in video secure communication system.Multimed Tools Appl79, 29161–29177 (2020). https://doi.org/10.1007/s11042-020-09448-7
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