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      Transceiver designs to attain the entanglement assisted communications capacity

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          Abstract

          Pre-shared entanglement can significantly boost communication rates in the high thermal noise and low-brightness transmitter regime. In this regime, for a lossy-bosonic channel with additive thermal noise, the ratio between the entanglement-assisted capacity and the Holevo capacity - the maximum reliable-communications rate permitted by quantum mechanics without any pre-shared entanglement - scales as log(1/ˉNS), where the mean transmitted photon number per mode, ˉNS1. Thus, pre-shared entanglement, e.g., distributed by the quantum internet or a satellite-assisted quantum link, promises to significantly improve low-power radio-frequency communications. In this paper, we propose a pair of structured quantum transceiver designs that leverage continuous-variable pre-shared entanglement generated, e.g., from a down-conversion source, binary phase modulation, and non-Gaussian joint detection over a code word block, to achieve this scaling law of capacity enhancement. Further, we describe a modification to the aforesaid receiver using a front-end that uses sum-frequency generation sandwiched with dynamically-programmable in-line two-mode squeezers, and a receiver back-end that takes full advantage of the output of the receiver's front-end by employing a non-destructive multimode vacuum-or-not measurement to achieve the entanglement-assisted classical communications capacity.

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          Author and article information

          Journal
          16 August 2022
          Article
          2208.07979
          7d94c24a-b760-4b0e-8117-80dd91b79f74

          http://creativecommons.org/licenses/by/4.0/

          History
          Custom metadata
          23 pages excluding appendices, 35 pages including appendices and bibliography. 33 figures. Work extending arXiv:2001.03934
          quant-ph cs.IT math.IT

          Quantum physics & Field theory,Numerical methods,Information systems & theory

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