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A Low-Complexity 4D Discrete Chaotic System for Secure Image Encryption Based on Reversible Neural Network
Han Chen1, Qingye Huang2, Yingjie Su3
1School of Marine Science and Technology, Shanwei Institute of Technology, Shanwei 516600, China.
Entropy (Basel, Switzerland)
|July 28, 2026
Summary
This study introduces a novel four-dimensional discrete chaotic system (4D-DCS) and a secure image encryption algorithm. The system offers structural simplicity and hyperchaotic properties, enhancing image security against various attacks.
Area of Science:
- Cryptography and Information Security
- Nonlinear Dynamics and Chaos Theory
Background:
- Existing chaotic systems often suffer from complex structures and potential degradation.
- There is a need for robust and simple chaotic systems for secure applications like image encryption.
Purpose of the Study:
- To propose a novel four-dimensional discrete chaotic system (4D-DCS) with a simple structure.
- To develop an image encryption algorithm utilizing the proposed 4D-DCS for enhanced security and practicality.
Main Methods:
- Constructed a 4D-DCS by integrating a feedback controller and modulo operation into a linear discrete-time system.
- Employed mathematical analysis (Li-Yorke chaos) and numerical simulations (Lyapunov exponent, 0-1 test, NIST SP 800-22) to validate chaotic and pseudorandom properties.
- Developed an image encryption algorithm using SHA-256 for key generation, row-column permutation, and a reversible neural network for diffusion.
Main Results:
- The 4D-DCS exhibits hyperchaotic characteristics and excellent pseudorandomness.
- The encryption algorithm achieved high NPCR (∼99.61%) and UACI (∼33.46%), a large key space (2^216), high information entropy (near 8), and low correlation coefficients (near 0).
- Demonstrated strong robustness against differential, cropping, noise, and chosen-plaintext attacks.
Conclusions:
- The proposed 4D-DCS offers structural simplicity and stability compared to existing systems.
- The image encryption algorithm provides superior security and practicality, making it suitable for security-critical applications.