4.5 Article

An image encryption scheme based on three-dimensional Brownian motion and chaotic system

Journal

CHINESE PHYSICS B
Volume 26, Issue 2, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1674-1056/26/2/020504

Keywords

image encryption; logistic-tent system (LTS); memristive chaotic system; three-dimensional (3D) Brownian motion

Funding

  1. National Natural Science Foundation of China [41571417, 61305042]
  2. National Science Foundation of the United States [CNS-1253424, ECCS-1202225]
  3. Science and Technology Foundation of Henan Province, China [152102210048]
  4. Foundation and Frontier Project of Henan Province, China [162300410196]
  5. China Postdoctoral Science Foundation [2016M602235]
  6. Natural Science Foundation of Educational Committee of Henan Province, China [14A413015]
  7. Research Foundation of Henan University, China [xxjc20140006]

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At present, many chaos-based image encryption algorithms have proved to be unsafe, few encryption schemes permute the plain images as three-dimensional (3D) bit matrices, and thus bits cannot move to any position, the movement range of bits are limited, and based on them, in this paper we present a novel image encryption algorithm based on 3D Brownian motion and chaotic systems. The architecture of confusion and diffusion is adopted. Firstly, the plain image is converted into a 3D bit matrix and split into sub blocks. Secondly, block confusion based on 3D Brownian motion (BCB3DBM) is proposed to permute the position of the bits within the sub blocks, and the direction of particle movement is generated by logistic-tent system (LTS). Furthermore, block confusion based on position sequence group (BCBPSG) is introduced, a four-order memristive chaotic system is utilized to give random chaotic sequences, and the chaotic sequences are sorted and a position sequence group is chosen based on the plain image, then the sub blocks are confused. The proposed confusion strategy can change the positions of the bits and modify their weights, and effectively improve the statistical performance of the algorithm. Finally, a pixel level confusion is employed to enhance the encryption effect. The initial values and parameters of chaotic systems are produced by the SHA 256 hash function of the plain image. Simulation results and security analyses illustrate that our algorithm has excellent encryption performance in terms of security and speed.

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