4.5 Article

A Block Compressive Sensing Based Scalable Encryption Framework for Protecting Significant Image Regions

Journal

Publisher

WORLD SCIENTIFIC PUBL CO PTE LTD
DOI: 10.1142/S0218127416501911

Keywords

Scalable encryption framework; block compressive sensing; significant block encryption; insignificant block encryption

Funding

  1. National Natural Science Foundation of China [61502399, 61402547, 61502314, 61462032, 61572089]
  2. Natural Science Foundation Project of Chongqing CSTC [cstc2015jcyjA40039]
  3. Macau Science and Technology Development Fund [FDCT/009/2013/A1, FDCT/046/2014/A1]
  4. Science and Technology Plan Projects of Shenzhen [JCYJ20160307115030281, 20160224144857159]
  5. Technology Planning Project from Guangdong Province, China [20148010118005]
  6. Tencent Rhinoceros Birds Scientific Research Foundation
  7. Research Committee at University of Macau [MRG007/ZJT/2015/FST, MRG021/ZJT/2013/FST, MYRG2014-00031-FST, MYRG 2015-00056-FST]

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The existing Block Compressive Sensing (BCS) based image ciphers adopted the same sampling rate for all the blocks, which may lead to the desirable result that after subsampling, significant blocks lose some more-useful information while insignificant blocks still retain some less-useful information. Motivated by this observation, we propose a scalable encryption framework (SEF) based on BCS together with a Sobel Edge Detector and Cascade Chaotic Maps. Our work is firstly dedicated to the design of two new fusion techniques, chaos-based structurally random matrices and chaos-based random convolution and subsampling. The basic idea is to divide an image into some blocks with an equal size and then diagnose their respective significance with the help of the Sobel Edge Detector. For significant block encryption, chaos-based structurally random matrix is applied to significant blocks whereas chaos-based random convolution and subsampling are responsible for the remaining insignificant ones. In comparison with the BCS based image ciphers, the SEF takes lightweight subsampling and severe sensitivity encryption for the significant blocks and severe subsampling and lightweight robustness encryption for the insignificant ones in parallel, thus better protecting significant image regions.

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