TY - GEN
T1 - Quantum Image Encryption with Reduced Gate Complexity for Gate-Efficient Encryption Pipelines in IoT Networks
AU - Khan, Muhammad Shahbaz
AU - Al-Dubai, Ahmed
AU - Ahmad, Jawad
AU - Pitropakis, Nikolaos
AU - Boulila, Wadii
AU - Ghaleb, Baraq
PY - 2025/9/22
Y1 - 2025/9/22
N2 - In IoT networks and systems, the security of digital image data is a critical concern, which becomes even more critical in the post-quantum era where traditional encryption schemes will be vulnerable and can be easily compromised. This paper introduces a gate-efficient Quantum Image Encryption scheme that comprises pre-encryption quantum compression and chaos-based qubit encryption. By simplifying the quantum circuits that encode classical images into their quantum representations, the proposed scheme reduces the total number of quantum gates required before the actual encryption begins. This results in a more gate-efficient encryption pipeline for resource-constrained IoT systems. The encryption scheme comprises a quantum compression stage—by employing Boolean expression minimization— to simplify the quantum circuits in image preparation phase, followed by a two-stage encryption mechanism that employs quantum cellular automata and chaos-based qubit transformations. Extensive evaluation against key security parameters demonstrates close-to-ideal results for information entropy, and correlation analysis. The scheme also exhibits strong resilience against differential attacks, proving its effectiveness in securing image data for IoT devices in post-quantum environments.
AB - In IoT networks and systems, the security of digital image data is a critical concern, which becomes even more critical in the post-quantum era where traditional encryption schemes will be vulnerable and can be easily compromised. This paper introduces a gate-efficient Quantum Image Encryption scheme that comprises pre-encryption quantum compression and chaos-based qubit encryption. By simplifying the quantum circuits that encode classical images into their quantum representations, the proposed scheme reduces the total number of quantum gates required before the actual encryption begins. This results in a more gate-efficient encryption pipeline for resource-constrained IoT systems. The encryption scheme comprises a quantum compression stage—by employing Boolean expression minimization— to simplify the quantum circuits in image preparation phase, followed by a two-stage encryption mechanism that employs quantum cellular automata and chaos-based qubit transformations. Extensive evaluation against key security parameters demonstrates close-to-ideal results for information entropy, and correlation analysis. The scheme also exhibits strong resilience against differential attacks, proving its effectiveness in securing image data for IoT devices in post-quantum environments.
UR - https://ieeexplore.ieee.org/document/11162326
U2 - 10.1109/ICCWorkshops67674.2025.11162326
DO - 10.1109/ICCWorkshops67674.2025.11162326
M3 - Conference publication
T3 - International Conference on Communications Workshops (ICC Workshops)
SP - 1444
EP - 1449
BT - 2025 IEEE International Conference on Communications Workshops (ICC Workshops)
PB - IEEE
T2 - 2025 IEEE International Conference on Communications Workshops (ICC Workshops)
Y2 - 8 June 2025 through 12 June 2025
ER -