Quantum Key Distribution with Basis-Dependent Detection Probability
arXiv:2411.19874 · doi:10.1103/PhysRevApplied.23.044011
Abstract
Quantum Key Distribution (QKD) is a promising technology for secure communication. Nevertheless, QKD is still treated with caution in certain contexts due to potential gaps between theoretical models and actual QKD implementations. A common assumption in security proofs is that the detection probability at the receiver, for a given input state, is independent of the measurement basis, which might not always be verified and could lead to security loopholes. This paper presents a security proof for QKD protocols that does not rely on the above assumption and is thus applicable in scenarios with detection probability mismatches, even when induced by the adversary. We demonstrate, through simulations, that our proof can extract positive key rates for setups vulnerable to large detection probability mismatches. This is achieved by monitoring whether an adversary is actively exploiting such vulnerabilities, instead of considering the worst-case scenario as in previous proofs. Our work highlights the importance of accounting for basis-dependent detection probabilities and provides a concrete solution for improving the security of practical QKD systems.
14 pages and 5 figures in main text; 5 appendices; v2 with added explanations in the main text
References in corpus (34)
- Decoy State Quantum Key Distribution
- Advances in Quantum Cryptography
- Quantum Key Distribution with High Loss: Toward Global Secure Communication
- Secure quantum key distribution with realistic devices
- Beating the PNS attack in practical quantum cryptography
- Hacking commercial quantum cryptography systems by tailored bright illumination
- Practical Decoy State for Quantum Key Distribution
- Distillation of secret key and entanglement from quantum states
- The Uncertainty Principle in the Presence of Quantum Memory
- Quantum Hacking: Experimental demonstration of time-shift attack against practical quantum key distribution systems
- The Uncertainty Relation for Smooth Entropies
- Concise Security Bounds for Practical Decoy-State Quantum Key Distribution
- Provably-Secure and High-Rate Quantum Key Distribution with Time-Bin Qudits
- Post-selection technique for quantum channels with applications to quantum cryptography
- Loss-tolerant quantum cryptography with imperfect sources
- Large-Alphabet Time-Frequency Entangled Quantum Key Distribution by means of Time-to-Frequency Conversion
- A largely self-contained and complete security proof for quantum key distribution
- Reliable numerical key rates for quantum key distribution
- Simple 2.5 GHz time-bin quantum key distribution
- Efficient time-bin encoding for practical high-dimensional quantum key distribution
- Security loophole in free-space quantum key distribution due to spatial-mode detector-efficiency mismatch
- Position-Momentum Uncertainty Relations in the Presence of Quantum Memory
- Security proof of practical quantum key distribution with detection-efficiency mismatch
- Operational interpretation of coherence in quantum key distribution
- A high-speed tunable beam splitter for feed-forward photonic quantum information processing
- Detector decoy quantum key distribution
- Security of quantum key distribution with detection-efficiency mismatch in the single-photon case: Tight bounds
- Security of quantum key distribution with detection-efficiency mismatch in the multiphoton case
- Postselection technique for optical Quantum Key Distribution with improved de Finetti reductions
- Imperfect Phase-Randomisation and Generalised Decoy-State Quantum Key Distribution
- Entanglement verification with detection-efficiency mismatch
- Numerical Assessment and Optimization of Discrete-Variable Time-Frequency Quantum Key Distribution
- Entropic uncertainty relations and the measurement range problem, with consequences for high-dimensional quantum key distribution
- Efficient detection of multidimensional single-photon time-bin superpositions
Cited by in corpus (4)
- Quantum key distribution with imperfectly isolated devices
- High-dimensional quantum key distribution with resource-efficient detection
- Phase error rate estimation in QKD with imperfect detectors
- Practical Countermeasure Against Attacks Exploiting Detection Efficiency Mismatch in Quantum Key Distribution