2 August 2013 Double image encryption using phase-shifting interferometry and random mixed encoding method in fractional Fourier transform domain
Qu Wang, Qing Guo, Liang Lei, Jinyun Zhou
Author Affiliations +
Abstract
Based on the two-step phase-shifting interference (PSI) technique in fractional Fourier transform (FRT) domain and random mixed encoding, we present a new scheme for double image encryption. In the proposed scheme, information of each primitive image is recorded in two intensity interference patterns of FRT spectra by PSI technique, from which an encrypted image for each primitive image can be digitally derived. Random mixed encoding is then employed to divide and recombine both encrypted images into a single synthetic encrypted image. During the mixed encoding process, repositioning operations based on shift-variance of FRT are performed on the encrypted images to realize the spatial separation of decoded results in the output plane. By inverse FRT with correct fractional order, any of the primitive images can be easily retrieved directly from the synthetic encoded image with the corresponding phase encoding key. Crosstalk effect due to the overlapping of decoded images is alleviated for their spatial separation. Computer simulation and experimental results are presented to verify the validity and efficiency of our scheme.
© 2013 Society of Photo-Optical Instrumentation Engineers (SPIE) 0091-3286/2013/$25.00 © 2013 SPIE
Qu Wang, Qing Guo, Liang Lei, and Jinyun Zhou "Double image encryption using phase-shifting interferometry and random mixed encoding method in fractional Fourier transform domain," Optical Engineering 52(8), 084101 (2 August 2013). https://doi.org/10.1117/1.OE.52.8.084101
Published: 2 August 2013
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CITATIONS
Cited by 4 scholarly publications.
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KEYWORDS
Image encryption

Computer programming

Image restoration

Binary data

Phase interferometry

Fractional fourier transform

Phase shifts

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