Layer-Wise Security Framework and Analysis for the Quantum Internet
arXiv:2501.06989 · doi:10.1109/JSAC.2025.3568063
Abstract
With its significant security potential, the quantum internet is poised to revolutionize technologies like cryptography and communications. Although it boasts enhanced security over traditional networks, the quantum internet still encounters unique security challenges essential for safeguarding its Confidentiality, Integrity, and Availability (CIA). This study explores these challenges by analyzing the vulnerabilities and the corresponding mitigation strategies across different layers of the quantum internet, including physical, link, network, and application layers. We assess the severity of potential attacks, evaluate the expected effectiveness of mitigation strategies, and identify vulnerabilities within diverse network configurations, integrating both classical and quantum approaches. Our research highlights the dynamic nature of these security issues and emphasizes the necessity for adaptive security measures. The findings underline the need for ongoing research into the security dimension of the quantum internet to ensure its robustness, encourage its adoption, and maximize its impact on society.
This article has been accepted for publication in the IEEE Journal on Selected Areas in Communications (JSAC) UCP-QuantumEra special issue
References in corpus (16)
- The Quantum Internet
- Hacking commercial quantum cryptography systems by tailored bright illumination
- Unconditional optimality of Gaussian attacks against continuous-variable QKD
- Improving the security of multiparty quantum secret sharing against Trojan horse attack
- Micius quantum experiments in space
- Trojan-horse attacks threaten the security of practical quantum cryptography
- Advances in device-independent quantum key distribution
- Risk analysis of Trojan-horse attacks on practical quantum key distribution systems
- Entanglement-Assisted Quantum Networks: Mechanics, Enabling Technologies, Challenges, and Research Directions
- Distributed Quantum Computing and Network Control for Accelerated VQE
- Neural Error Mitigation of Near-Term Quantum Simulations
- Asynchronous Entanglement Routing for the Quantum Internet
- Error-correcting entanglement swapping using a practical logical photon encoding
- Feasibility of the interlock protocol against man-in-the-middle attacks on quantum cryptography
- Multi-tree Quantum Routing in Realistic Topologies
- Comparing One- and Two-way Quantum Repeater Architectures