Design and Implementation of Enterprise-oriented Quantum Key Injection Service Platform
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Abstract
This paper focuses on the application requirements of enterprise-level quantum key injection services in the field of quantum secure communication. The article first introduces the development status of quantum key injection technology and its demand characteristics in enterprise application scenarios, points out the shortcomings of traditional individual user service models in enterprise-level applications such as low management efficiency, coarse permission control, and difficulties in multi-organization collaboration, and then proposes an architecture design and implementation method for enterprise-oriented quantum key injection service platform. The platform adopts multi-tenant architecture and three-terminal service mode to realize hierarchical management of enterprise customers, provincial company operators, and platform operators. Through mechanisms such as injection device authentication, refined permission control, and organizational structure linkage, it can effectively support the large-scale operation of enterprise-level quantum key injection business, providing reliable platform support for the promotion of quantum secure communication technology in enterprise-level application scenarios.
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References
GB/T 42829–2023, Basic Requirements for Quantum Secure Communication Applications. State Administration for Market Regulation, 2023.
GB/T 32918–2016, Information Security Technology—SM2 Elliptic Curve Public Key Cryptographic Algorithm. General Administration of Quality Supervision, Inspection and Quarantine, 2016.
GB/T 32905–2016, Information Security Technology—SM3 Cryptographic Hash Algorithm. General Administration of Quality Supervision, Inspection and Quarantine, 2016.
GB/T 32907–2016, Information Security Technology—SM4 Block Cipher Algorithm. General Administration of Quality Supervision, Inspection and Quarantine, 2016.
GM/T 0028–2014, Technical Requirements for Security of Cryptographic Modules. National Cryptography Administration, 2014.
GlobalPlatform, Card Specification Version 2.3.1. GlobalPlatform Inc., 2018.
ETSI TS 102 225, Smart Cards; Secured Packet Structure for UICC Based Applications. ETSI, 2018.
China Mobile Communications Research Institute, Overall Technical Requirements for the Quantum Communication Application Service System. China Mobile Communications Group Co., Ltd., 2024.
ITU-T Y.3800, Framework for Quantum Key Distribution Networks. International Telecommunication Union, 2020.
GSMA, Post-Quantum Telco Network Impact Assessment Whitepaper. GSM Association, 2024.
C. Jiang, L. X. Hu, W. Z. Yu, et al., “Side-channel-secure quantum key distribution with state-dependent correlated errors and Trojan-horse attack,” Opt. Express, vol. 33, no. 25, pp. 51715–51729, 2025, doi: 10.1364/OE.576910.
H. Hajji, E. M. Baz, and O. W. Krawec, “Optimal eavesdropping in semi-quantum key distribution,” Phys. Lett. A, vol. 567, pp. 131174–131174, 2026, doi: 10.1016/J.PHYSLETA.2025.131174.
M. Kumar and B. Mondal, “Three party quantum key distribution using bilocality,” Opt. Quantum Electron., vol. 58, no. 1, pp. 19–19, 2025, doi: 10.1007/S11082-025-08612-3.
Y. P. Vatskov, M. E. Mavrin, G. V. Potapov, et al., “Quantum key distribution in mobile networks: Modern approaches and prospects,” J. Commun. Technol. Electron., vol. 70, no. 4, pp. 135–141, 2025, doi: 10.1134/S1064226925700287.
R. L. Gilyazov, S. K. Melnik, E. M. Sibgatullin, et al., “Investigating a quantum key distribution scheme with independent detection and sideband encoding,” Bull. Russ. Acad. Sci.: Phys., vol. 89, no. 12, pp. 2285–2290, 2025, doi: 10.1134/S1062873825713546.