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Joint-measurability and quantum communication with untrusted devices
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Joint-measurability and quantum communication with untrusted devices
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Photon loss represents a major challenge for the implementation of quantum communication protocols with untrusted devices, e.g. in the device-independent (DI) or semi-DI approaches. Determining critical loss thresholds is usually done in case-by-case studies. In the present work, we develop a general framework for characterizing the admissible levels of loss and noise in a wide range of scenarios and protocols with untrusted measurement devices. In particular, we present general bounds that apply to prepare-and-measure protocols for the semi-DI approach, as well as to Bell tests for DI protocols. A key step in our work is to establish a general connection between quantum protocols with untrusted measurement devices and the fundamental notions of channel extendibility and joint-measurability, which capture essential aspects of the communication and measurement of quantum information. In particular, this leads us to introduce the notion of partial joint-measurability, which naturally arises within quantum cryptography.
Forward citations
Cited by 3 Pith papers
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Transmitter-device-independent quantum key distribution
A proof-of-principle experiment demonstrates the first discrete-variable one-sided device-independent QKD protocol achieving a secure key rate of 1 kbps over an equivalent 20 km fiber distance.
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Generalized measurement incompatibility
Generalized partial joint-measurability of quantum measurements is equivalent to perfect classical guessing by an adversary with side information and is decidable via a single semidefinite program, producing analytica...
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Transmitter-device-independent quantum key distribution
First discrete-variable one-sided-device-independent QKD experiment, using a composable transmitter with an untrusted source and a one-way communication assumption, achieving ~1 kbps at an equivalent 20 km distance.
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