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Secure quantum key distribution with realistic devices
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In principle, quantum key distribution (QKD) offers information-theoretic security based on the laws of physics. In practice, however, the imperfections of realistic devices might introduce deviations from the idealized models used in security analyses. Can quantum code-breakers successfully hack real systems by exploiting the side channels? Can quantum code-makers design innovative counter-measures to foil quantum code-breakers? This article reviews theoretical and experimental progress in the practical security aspects of quantum code-making and quantum code-breaking. After numerous attempts, researchers now thoroughly understand and are able to manage the practical imperfections. Recent advances, such as the measurement-device-independent protocol, have closed the critical side channels in the physical implementations, paving the way for secure QKD with realistic devices.
Forward citations
Cited by 3 Pith papers
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Experimental Semi-quantum Key Distribution With Classical Users
A QKD protocol lets two fully classical users establish a secure key using only detection or reflection of a single photon supplied by an untrusted quantum server, with a finite-key security proof and a proof-of-princ...
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Teleportation-based collective attacks in Gaussian quantum key distribution
An all-optical teleportation attack can perform collective eavesdropping in Gaussian QKD without channel purification, reaching optimality only with infinite entanglement and beating individual attacks with finite resources.
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Experimental quantum repeater without quantum memory
A 12-photon experiment demonstrates a 2x2 parallel all-photonic quantum repeater with a 1.89x entanglement-rate enhancement over standard parallel entanglement swapping, and verifies the output is genuinely entangled.
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