4.7 Article

Image compression-encryption scheme based on hyper-chaotic system and 2D compressive sensing

Journal

OPTICS AND LASER TECHNOLOGY
Volume 82, Issue -, Pages 121-133

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.optlastec.2016.02.018

Keywords

Image compression-encryption; Compressive sensing; Hyper-chaotic system

Funding

  1. National Natural Science Foundation of China [61262084, 61462061]
  2. Foundation for Young Scientists of Jiangxi Province (Jinggang Star) [20122BCB23002]
  3. Opening Project of Shanghai Key Laboratory of Integrate Administration Technologies for Information Security [AGK2014004]
  4. Innovation Project of Jiangxi Graduate Education [YC2015-S036, YC2014-S070]

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Most image encryption algorithms based on low-dimensional chaos systems bear security risks and suffer encryption data expansion when adopting nonlinear transformation directly. To overcome these weaknesses and reduce the possible transmission burden, an efficient image compression-encryption scheme based on hyper-chaotic system and 2D compressive sensing is proposed. The original image is measured by the measurement matrices in two directions to achieve compression and encryption simultaneously, and then the resulting image is re-encrypted by the cycle shift operation controlled by a hyper-chaotic system. Cycle shift operation can change the values of the pixels efficiently. The proposed cryptosystem decreases the volume of data to be transmitted and simplifies the keys distribution simultaneously as a nonlinear encryption system. Simulation results verify the validity and the reliability of the proposed algorithm with acceptable compression and security performance. (C) 2016 Elsevier Ltd. All rights reserved.

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