Protecting Compressive Ghost Imaging with Hyperchaotic System and DNA Encoding

As computational ghost imaging is widely used in the military, radar, and other fields, its security and efficiency became more and more important. In this paper, we propose a compressive ghost imaging encryption scheme based on the hyper-chaotic system, DNA encoding, and KSVD algorithm for the firs...

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Main Authors: Jingru Sun, Mu Peng, Fang Liu, Cong Tang
Format: Article
Language:English
Published: Hindawi-Wiley 2020-01-01
Series:Complexity
Online Access:http://dx.doi.org/10.1155/2020/8815315
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spelling doaj-8494b2b2745244c19e4ebaeec72bca392020-11-25T03:44:58ZengHindawi-WileyComplexity1076-27871099-05262020-01-01202010.1155/2020/88153158815315Protecting Compressive Ghost Imaging with Hyperchaotic System and DNA EncodingJingru Sun0Mu Peng1Fang Liu2Cong Tang3College of Computer Science and Electronic Engineering, Hunan University, Changsha 410082, ChinaCollege of Computer Science and Electronic Engineering, Hunan University, Changsha 410082, ChinaCollege of Computer Science and Electronic Engineering, Hunan University, Changsha 410082, ChinaCollege of Computer Science and Electronic Engineering, Hunan University, Changsha 410082, ChinaAs computational ghost imaging is widely used in the military, radar, and other fields, its security and efficiency became more and more important. In this paper, we propose a compressive ghost imaging encryption scheme based on the hyper-chaotic system, DNA encoding, and KSVD algorithm for the first time. First, a 4-dimensional hyper-chaotic system is used to generate four long pseudorandom sequences and diffuse the sequences with DNA operation to get the phase mask sequence, and then N phase mask matrixes are generated from the sequences. Second, in order to improve the reconstruction efficiency, KSVD algorithm is used to generate dictionary D to sparse the image. The transmission key of the proposed scheme includes the initial values of hyper-chaotic and dictionary D, which has plaintext correlation and big key space. Compared with the existing compressive ghost imaging encryption scheme, the proposed scheme is more sensitive to initial values and more complexity and has smaller transmission key, which makes the encryption scheme more secure, and the reconstruction efficiency is higher too. Simulation results and security analysis demonstrate the good performance of the proposed scheme.http://dx.doi.org/10.1155/2020/8815315
collection DOAJ
language English
format Article
sources DOAJ
author Jingru Sun
Mu Peng
Fang Liu
Cong Tang
spellingShingle Jingru Sun
Mu Peng
Fang Liu
Cong Tang
Protecting Compressive Ghost Imaging with Hyperchaotic System and DNA Encoding
Complexity
author_facet Jingru Sun
Mu Peng
Fang Liu
Cong Tang
author_sort Jingru Sun
title Protecting Compressive Ghost Imaging with Hyperchaotic System and DNA Encoding
title_short Protecting Compressive Ghost Imaging with Hyperchaotic System and DNA Encoding
title_full Protecting Compressive Ghost Imaging with Hyperchaotic System and DNA Encoding
title_fullStr Protecting Compressive Ghost Imaging with Hyperchaotic System and DNA Encoding
title_full_unstemmed Protecting Compressive Ghost Imaging with Hyperchaotic System and DNA Encoding
title_sort protecting compressive ghost imaging with hyperchaotic system and dna encoding
publisher Hindawi-Wiley
series Complexity
issn 1076-2787
1099-0526
publishDate 2020-01-01
description As computational ghost imaging is widely used in the military, radar, and other fields, its security and efficiency became more and more important. In this paper, we propose a compressive ghost imaging encryption scheme based on the hyper-chaotic system, DNA encoding, and KSVD algorithm for the first time. First, a 4-dimensional hyper-chaotic system is used to generate four long pseudorandom sequences and diffuse the sequences with DNA operation to get the phase mask sequence, and then N phase mask matrixes are generated from the sequences. Second, in order to improve the reconstruction efficiency, KSVD algorithm is used to generate dictionary D to sparse the image. The transmission key of the proposed scheme includes the initial values of hyper-chaotic and dictionary D, which has plaintext correlation and big key space. Compared with the existing compressive ghost imaging encryption scheme, the proposed scheme is more sensitive to initial values and more complexity and has smaller transmission key, which makes the encryption scheme more secure, and the reconstruction efficiency is higher too. Simulation results and security analysis demonstrate the good performance of the proposed scheme.
url http://dx.doi.org/10.1155/2020/8815315
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