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http://dx.doi.org/10.3807/COPP.2019.3.4.320

Joint-transform Correlator Multiple-image Encryption System Based on Quick-response Code Key  

Chen, Qi (Department of Opto-electronics Engineering, Army Engineering University)
Shen, Xueju (Department of Opto-electronics Engineering, Army Engineering University)
Cheng, Yue (Department of Missile Engineering, Army Engineering University)
Huang, Fuyu (Department of Opto-electronics Engineering, Army Engineering University)
Lin, Chao (Control Engineering Department, Yantai Aeronautical University)
Liu, HeXiong (Department of Opto-electronics Engineering, Army Engineering University)
Publication Information
Current Optics and Photonics / v.3, no.4, 2019 , pp. 320-328 More about this Journal
Abstract
A method for joint-transform correlator (JTC) multiple-image encryption based on a quick-response (QR) code key is proposed. The QR codes converted from different texts are used as key masks to encrypt and decrypt multiple images. Not only can Chinese text and English text be used as key text, but also symbols can be used. With this method, users have no need to transmit the whole key mask; they only need to transmit the text that is used to generate the key. The correlation coefficient is introduced to evaluate the decryption performance of our proposed cryptosystem, and we explore the sensitivity of the key mask and the capability for multiple-image encryption. Robustness analysis is also conducted in this paper. Computer simulations and experimental results verify the correctness of this method.
Keywords
Optical information security; Multiple-image encryption; QR code key; JTC encryption system;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
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1 Y. Qin and Q. Gong, "Optical information encryption based on incoherent superposition with the help of the QR code," Opt. Commun. 310, 69-74 (2014).   DOI
2 J. F. Barrera, A. Mira, and R. Torroba, "Optical encryption and QR codes: Secure and noise-free information retrieval," Opt. Express 21, 5373-5378 (2013).   DOI
3 C. Lin, X. Shen, and B. Li, "Four-dimensional key design in amplitude, phase, polarization and distance for optical encryption based on polarization digital holography and QR code," Opt. Express 22, 20727-20739 (2014).   DOI
4 S. Trejos, J. F. Barrera, and R. Torroba, "Optimized and secure technique for multiplexing QR code images of single characters: application to noiseless messages retrieval," Erratum, J. Opt. 17, 129601 (2015).
5 A. Jaramillo, J. F. Barrera, A. V. Zea, and R. Torroba, "Fractional optical cryptographic protocol for data containers in a noise-free multiuser environment," Opt. Lasers Eng. 102, 119-125 (2018).   DOI
6 S. Jiao, Z. Jin, C. Zhou, W. Zou, and X. Li, "Is QR code an optimal data container in optical encryption systems from an error-correction coding perspective?" J. Opt. Soc. Am. A 35, A23-A29 (2018).   DOI
7 G. Unnikrishnan, J. Joseph, and K. Singh, "Optical encryption by double-random phase encoding in the fractional Fourier domain," Opt. Lett. 25, 887-889 (2000).   DOI
8 P. Refregier and B. Javidi, "Optical image encryption based on input plane and Fourier plane random encoding," Opt. Lett. 20, 767-769 (1995).   DOI
9 G. Unnikrishnan and K. Singh, "Double random fractional Fourier domain encoding for optical security," Opt. Eng. 39, 2853-2859 (2000).   DOI
10 T. Nomura and B. Javidi, "Optical encryption using a joint transform correlator architecture," Opt. Eng. 39, 2031-2035 (2000).   DOI
11 B. Hennelly and J. T. Sheridan, "Optical image encryption by random shifting in fractional Fourier domains," Opt. Lett. 28, 269-271 (2003).   DOI
12 B. Javidi, A. Carnicer, M. Yamaguchi, T. Nomura, E. Perez-Cabre, M. S. Millán, N. K. Nishchal, R. Torroba, J. F. Barrera, W. He, X. Peng, A. Stern, Y. Rivenson, A. Alfalou, C. Brosseau, C. Guo, J. T. Sheridan, G. Situ, M. Naruse, T. Matsumoto, I. Juvells, E. Tajahuerce, J. Lancis, W. Chen, X. Chen, P. W. H. Pinkse, A. P, Mosk, and A. Markman, "Roadmap on optical security," J. Opt. 18, 083001 (2016).   DOI
13 S. J. Park, J. Y. Kim, J. K. Bae, and S. J. Kim, "Fourier-plane encryption technique based on removing the effect of phase terms in a joint transform correlator," Opt. Rev. 8, 413-415 (2001).   DOI
14 S. Yuan, X. Liu, X. Zhou, and Z. Li, "Optical encryption scheme with multiple users based on computational ghost imaging and orthogonal modulation," J. Opt. Soc. Korea 20, 476-480 (2016).   DOI
15 W. Sun, L. Wang, J. Wang, H. Li, and Q. Wu, "Optical image encryption technique based on hybrid-pattern phase keys," Curr. Opt. Photon. 2, 540-546 (2018)   DOI
16 S. H. Jeon and S. K. Gil, "Secret key sharing cryptosystem using optical phase-shifting digital holography," Curr. Opt. Photon. 3, 119-127 (2019)   DOI
17 C. L. Mela and C. Iemmi, "Optical encryption using phase-shifting interferometry in a joint transform correlator," Opt. Lett. 31, 2562-2564 (2006).   DOI
18 G. Situ and J. Zhang, "Multiple-image encryption by wavelength multiplexing," Opt. Lett. 30, 1306-1308 (2005).   DOI
19 E. Rueda, J. F. Barrera, R. Henao, and R. Torroba, "Optical encryption with a reference wave in a joint transform correlator architecture," Opt. Commun. 282, 3243-3249 (2009).   DOI
20 A. V. Zea, J. F. Barrera, and R. Torroba, "Three-dimensional joint transform correlator cryptosystem," Opt. Lett. 41, 599-602 (2016).   DOI
21 G. Situ and J. Zhang, "Position multiplexing for multiple-image encryption," J. Opt. A: Pure Appl. Opt. 8, 391-397 (2006).   DOI
22 D. Amaya, M. Tebaldi, R. Torroba, and N. Bolognini, "Multichanneled encryption via a joint transform correlator architecture," Appl. Opt. 47, 5903-5907 (2008).   DOI
23 A. Alfalou and A. Mansour, "Double random phase encryption scheme to multiplex and simultaneous encode multiple images," Appl. Opt. 48, 5933-5947 (2009).   DOI
24 Q. Chen, X. Shen, S. Dou, C. Lin, and L. Wang, "Topological charge number multiplexingfor JTC multiple-image encryption," Opt. Commun. 412, 155-160 (2018).   DOI
25 D. Amaya, M. Tebaldi, R. Torroba, and N. Bolognini, "Wavelength multiplexing encryption using joint transform correlator architecture," Appl. Opt. 48, 2099-2104 (2009).   DOI
26 X. Wang and D. Zhao, "Fully phase multiple-image encryption based on superposition principle and the digital holographic technique," Opt. Commun. 285, 4280-4284 (2012).   DOI
27 J. F. Barrera, M. Tebaldi, C. Rios, E. Rueda, N. Bolognini, and R. Torroba, "Experimental multiplexing of encrypted movies using a JTC architecture," Opt. Express 20, 3388-3393 (2012).   DOI
28 D. Kong, X. Shen, Q. Xu, W. Xin, and H. Guo, "Multiple-image encryption scheme based on cascaded fractional Fourier transform," Appl. Opt. 52, 2619-2625 (2013).   DOI
29 E. Rueda, C. Rios, J. F. Barrera, R. Henao, and R. Torroba, "Experimental multiplexing approach via code key rotations under a joint transform correlator scheme," Opt. Commun. 284, 2500-2504 (2011).   DOI
30 J. Liu, T. Bai, X. Shen, S. Dou, C. Lin, and J. Cai, "Parallel encryption for multi-channel images based on an optical joint transform correlator," Opt. Commun. 396, 174-184 (2017).   DOI
31 J. F. Barrera, A. Mira-Agudelo, and R. Torroba, "Experimental QR code optical encryption: noise-free data recovering," Opt. Lett. 39, 3074-3077 (2014).   DOI
32 Z.-P. Wang, S. Zhang, H.-Z. Liu, and Y. Qin, "Single-intensity-recording optical encryption technique based on phase retrieval algorithm and QR code," Opt. Commun. 332, 36-41 (2014).   DOI
33 Z. Ren, P. Su, J. Ma, and G. Jin, "Secure and noise-free holographic encryption with a quick-response code," Chin. Opt. Lett. 12, 010601 (2014).   DOI