Satellite-Based Quantum Key Distribution in the Presence of Bypass Channels
arXiv:2212.04807 · doi:10.1103/PRXQuantum.4.040320
Abstract
The security of prepare-and-measure satellite-based quantum key distribution (QKD), under restricted eavesdropping scenarios, is addressed. We particularly consider cases where the eavesdropper, Eve, has limited access to the transmitted signal by Alice, and/or Bob's receiver station. This restriction is modeled by lossy channels between Alice/Bob and Eve, where the transmissivity of such channels can, in principle, be bounded by monitoring techniques. An artefact of such lossy channels is the possibility of having {\it bypass} channels, those which are not accessible to Eve, but may not necessarily be characterized by the users either. This creates interesting, unexplored, scenarios for analyzing QKD security. In this paper, we obtain generic bounds on the key rate in the presence of bypass channels and apply them to continuous-variable QKD protocols with Gaussian encoding with direct and reverse reconciliation. We find regimes of operation in which the above restrictions on Eve can considerably improve system performance. We also develop customised bounds for several protocols in the BB84 family and show that, in certain regimes, even the simple protocol of BB84 with weak coherent pulses is able to offer positive key rates at high channel losses, which would otherwise be impossible under an unrestricted Eve. In this case the limitation on Eve would allow Alice to send signals with larger intensities than the optimal value under an ideal Eve, which effectively reduces the effective channel loss. In all these cases, the part of the transmitted signal that does not reach Eve can play a non-trivial role in specifying the achievable key rate. Our work opens up new security frameworks for spaceborne quantum communications systems.
26 pages, 17 figures
References in corpus (15)
- The Quantum Internet
- Satellite-to-ground quantum key distribution
- Ground-to-satellite quantum teleportation
- Distillation of secret key and entanglement from quantum states
- Unconditional optimality of Gaussian attacks against continuous-variable QKD
- Optimality of Gaussian Attacks in Continuous Variable Quantum Cryptography
- Progress in satellite quantum key distribution
- Sending-or-Not-Sending with Independent Lasers: Secure Twin-Field Quantum Key Distribution Over 509 km
- Quantum cryptography with finite resources: unconditional security bound for discrete-variable protocols with one-way post-processing
- Characterization of Collective Gaussian Attacks and Security of Coherent-State Quantum Cryptography
- Entanglement over global distances via quantum repeaters with satellite links
- Fading channel estimation for free-space continuous-variable secure quantum communication
- Feasibility Assessment For Practical Continuous Variable Quantum Key Distribution Over The Satellite-to-Earth Channel
- Applicability of Squeezed-and Coherent-State Continuous-Variable Quantum Key Distribution over Satellite Links
- Satellite quantum communications when man-in-the-middle attacks are excluded
Cited by in corpus (8)
- Optimizing state-discrimination receivers for continuous-variable quantum key distribution over a wiretap channel
- Efficient source-independent quantum conference key agreement
- Collective attack free controlled quantum key agreement without quantum memory
- Quantum communications in continuous variable systems
- Finite and Asymptotic Key Analysis for CubeSat-Based BB84 QKD with Elliptical Beam Approximation
- Realistic Threat Models for Fiber and Free-Space Continuous-Variable Quantum Key Distribution
- Continuous variable quantum key distribution channel emulator for the SPOQC mission
- Quantum key distribution with displaced thermal states