A multi-qubit phase shift keying paradigm for quantum image transmission over error prone channels
Jayasinghe, Udara and Fernando, Thanuj and Fernando, Anil (2025) A multi-qubit phase shift keying paradigm for quantum image transmission over error prone channels. Multimedia, 1 (2). 5. ISSN 3042-6308 (https://doi.org/10.3390/multimedia1020005)
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Abstract
Quantum image transmission is a critical enabler for next-generation communication systems, allowing for the reliable exchange of high-quality visual data over error-prone quantum channels. Existing quantum-encoding schemes, however, often suffer from limited efficiency and reduced robustness under noisy conditions. This work introduces a novel multi-qubit phase-shift keying (PSK) encoding framework to enhance both fidelity and reliability in quantum image transmission. In the proposed system, source-encoded images (JPEG/HEIF) are converted into bitstreams, segmented into varying qubit sizes from 1 to 8, and mapped onto multi-qubit states using quantum PSK modulation. By exploiting multi-qubit superposition and phase modulation, the scheme improves spectral efficiency while maintaining resilience to channel noise. The encoded quantum states are transmitted through noisy channels and reconstructed via inverse quantum operations combined with classical post-processing to recover the original images. Experimental results demonstrate substantial performance improvements, evaluated using peak signal-to-noise ratio (PSNR), structural similarity index (SSIM), and universal quality index (UQI). Compared to superposition-only approaches, the proposed method achieves up to 3 dB SNR gain for higher qubit sizes, while single-qubit encoding remains limited due to reduced phase utilization. Moreover, relative to classical communication systems, the proposed multi-qubit PSK scheme consistently outperforms across all tested qubit sizes, highlighting its effectiveness for reliable, efficient, and high-fidelity quantum image transmission.
ORCID iDs
Jayasinghe, Udara
ORCID: https://orcid.org/0009-0000-1332-9786, Fernando, Thanuj and Fernando, Anil
ORCID: https://orcid.org/0000-0002-2158-2367;
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Item type: Article ID code: 94740 Dates: DateEvent14 November 2025Published13 November 2025AcceptedSubjects: Science > Mathematics > Electronic computers. Computer science Department: Faculty of Science > Computer and Information Sciences Depositing user: Pure Administrator Date deposited: 15 Nov 2025 01:13 Last modified: 22 Jan 2026 09:41 URI: https://strathprints.strath.ac.uk/id/eprint/94740
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