Practical device-independent quantum cryptography via entropy accumulation

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作者
Rotem Arnon-Friedman
Frédéric Dupuis
Omar Fawzi
Renato Renner
Thomas Vidick
机构
[1] ETH-Zürich,Institute for Theoretical Physics
[2] Masaryk University,Faculty of Informatics
[3] Université de Lorraine,CNRS, LORIA
[4] ENS de Lyon,Laboratoire de l’Informatique du Parallélisme, LIP
[5] California Institute of Technology,Department of Computing and Mathematical Sciences
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Device-independent cryptography goes beyond conventional quantum cryptography by providing security that holds independently of the quality of the underlying physical devices. Device-independent protocols are based on the quantum phenomena of non-locality and the violation of Bell inequalities. This high level of security could so far only be established under conditions which are not achievable experimentally. Here we present a property of entropy, termed “entropy accumulation”, which asserts that the total amount of entropy of a large system is the sum of its parts. We use this property to prove the security of cryptographic protocols, including device-independent quantum key distribution, while achieving essentially optimal parameters. Recent experimental progress, which enabled loophole-free Bell tests, suggests that the achieved parameters are technologically accessible. Our work hence provides the theoretical groundwork for experimental demonstrations of device-independent cryptography.
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