Work place: Mathematics Department, Faculty of Science Mansoura University, Mansoura 35516, Egypt
E-mail: abibka@mans.edu.eg
Website: https://orcid.org/0000-0001-9819-9860
Research Interests:
Biography
Abdelrahman Karawia is a Full Professor of Computer Science specializing in Information Security at the Department of Mathematics, Faculty of Science, Mansoura University, Egypt. He received his B.Sc. degree in statistics and scientific computation, the M.Sc. degree in statistic and computer science, and Ph.D. in Statistics and Computer Science from Mansoura University in 1994, 1999, and 2004, respectively, with research focused on image enhancement using wavelets. Prof. Karawia has extensive experience in teaching and research, having held academic positions in both Egypt and Saudi Arabia. His research interests encompass encryption and decryption algorithms, image processing, and steganography, with significant contributions in chaotic systems for cryptographic applications. Prof. Karawia has supervised numerous graduate students and has an extensive publication record in leading journals in applied mathematics, computer science, and image processing.
By Shimaa A. Elanany Abdelrahman A. Karawia Yasser M. Fouda
DOI: https://doi.org/10.5815/ijwmt.2025.01.01, Pub. Date: 8 Feb. 2025
The integration of chaos theory and orthogonal moments has gained significant traction in contemporary image analysis. This paper presents a novel approach to image encryption and decryption, leveraging a modified logistic chaotic map and discrete orthogonal moments. The coefficients derived from Charlier polynomials and the image function are utilized to obfuscate the plaintext image. Furthermore, to bolster security measures, the pixel values of the obfuscated image are shuffled employing a modified logistic chaotic map. The encryption key is constructed from the parameters of both the chaotic map and Charlier polynomials, enhancing the robustness of the encryption scheme. Extensive experimental validation is conducted to assess the security of the proposed image encryption algorithm. Results demonstrate a considerable deviation in pixel values following diffusion via Charlier moments’ coefficients. Statistical tests and comprehensive security analyses affirm the resilience of the proposed algorithm against data loss attacks. The experimental result with Pearson correlation coefficient is almost 0, key space is greater than 2^210, and information entropy can reach 7.8404, which establish its superior security posture relative to existing algorithms within the domain of image encryption. The findings underscore the efficacy and reliability of the proposed scheme, positioning it as a viable solution for safeguarding sensitive image data in various applications.
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