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Security of quantum key distribution using weak coherent states with nonrandom phases

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arxiv quant-ph/0610203 v2 pith:Z34H42CZ submitted 2006-10-23 quant-ph

classification quant-ph
keywords pulsephasecoherent-statereferenceweakbb84caseprotocol
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We prove the security of the Bennett-Brassard (BB84) quantum key distribution protocol in the case where the key information is encoded in the relative phase of a coherent-state reference pulse and a weak coherent-state signal pulse, as in some practical implementations of the protocol. In contrast to previous work, our proof applies even if the eavesdropper knows the phase of the reference pulse, provided that this phase is not modulated by the source, and even if the reference pulse is bright. The proof also applies to the case where the key is encoded in the photon polarization of a weak coherent-state pulse with a known phase, but only if the phases of the four BB84 signal states are judiciously chosen. The achievable key generation rate scales quadratically with the transmission in the channel, just as for BB84 with phase-randomized weak coherent-state signals (when decoy states are not used). For the case where the phase of the reference pulse is strongly modulated by the source, we exhibit an explicit attack that allows the eavesdropper to learn every key bit in a parameter regime where a protocol using phase-randomized signals is provably secure.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Semi-Device-Independent Quantum Key Distribution from Operational Assumptions

    quant-ph 2026-07 accept novelty 7.5 of 10

    Operational bounds on state exclusion (not only identification) plus a three-setting retained-key protocol certify positive SDI-QKD rates down to nearly vanishing preparation visibility.

  2. Public-Key Quantum Authentication and Digital Signature Schemes Based on the QMA-Complete Problem

    quant-ph 2025-06 reject novelty 5.0 of 10

    A proposed public-key quantum signature scheme based on local density matrices, claimed secure via QMA-hardness, is broken by a simple re-signing attack and an invalid security reduction.

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