arXiv · 2605.11767
Security of decoy-state quantum key distribution with correlated bit-and-basis encoders
Abstract
Practical quantum key distribution (QKD) modulators inevitably introduce correlations, causing the state emitted in a given round to depend on the setting choices made in previous rounds. These correlations break the round-by-round independence structure on which many widely used security proof techniques rely, leaving a significant gap between available theoretical guarantees and the reality of practical implementations. In this work, we develop a fully analytical finite-key security proof for decoy-state BB84 against general coherent attacks that rigorously incorporates correlations introduced by Alice's bit-and-basis encoder, while requiring only partial characterization of such correlations. Crucially, it does so without requiring the round partitioning of the data used for phase-error estimation introduced in previous works, showing that this technique is not indispensable for dealing with correlated encoders, and resulting in improved finite-key performance. Moreover, we also analyze the case of ideal single-photon sources, and our results reveal a counterintuitive effect: in the presence of strong encoding correlations, decoy-state BB84 can outperform single-photon implementations.
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Guillermo Currás-Lorenzo, Margarida Pereira, Alessandro Marcomini, Kiyoshi Tamaki, Marcos Curty. 2026-05-12. Security of decoy-state quantum key distribution with correlated bit-and-basis encoders. https://arxiv.org/abs/2605.11767
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