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Journal article ยท Preprint article

Continuous-variable protocol for oblivious transfer in the noisy-storage model

From

The University of Tokyo1

Department of Physics, Technical University of Denmark2

Quantum Physics and Information Technology, Department of Physics, Technical University of Denmark3

University of Amsterdam4

Austrian Institute of Technology5

University of Hamburg6

Delft University of Technology7

Cryptographic protocols are the backbone of our information society. This includes two-party protocols which offer protection against distrustful players. Such protocols can be built from a basic primitive called oblivious transfer. We present and experimentally demonstrate here a quantum protocol for oblivious transfer for optical continuous-variable systems, and prove its security in the noisy-storage model.

This model allows us to establish security by sending more quantum signals than an attacker can reliably store during the protocol. The security proof is based on uncertainty relations which we derive for continuous-variable systems, that differ from the ones used in quantum key distribution. We experimentally demonstrate in a proof-of-principle experiment the proposed oblivious transfer protocol for various channel losses by using entangled two-mode squeezed states measured with balanced homodyne detection.

Our work enables the implementation of arbitrary two-party quantum cryptographic protocols with continuous-variable communication systems.

Language: English
Publisher: Nature Publishing Group UK
Year: 2018
Pages: 1450
ISSN: 20411723
Types: Journal article and Preprint article
DOI: 10.1038/s41467-018-03729-4
ORCIDs: Gehring, Tobias , 0000-0002-1754-1415 and 0000-0003-4174-659X
Keywords

Q Science quant-ph

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