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Improving Gaussian channel simulation using non-unity gain heralded quantum teleportation

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arxiv 2408.08667 v1 pith:YWV7OU3I submitted 2024-08-16 quant-ph

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keywords channelsgaussianquantumchannelnoiseamplifiersimulationsuppression
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Gaussian channel simulation is an essential paradigm in understanding the evolution of bosonic quantum states. It allows us to investigate how such states are influenced by the environment and how they transmit quantum information. This makes it an essential tool for understanding the properties of Gaussian quantum communication. Quantum teleportation provides an avenue to effectively simulate Gaussian channels such as amplifier channels, loss channels and classically additive noise channels. However, implementations of these channels, particularly quantum amplifier channels and channels capable of performing Gaussian noise suppression are limited by experimental imperfections and non-ideal entanglement resources. In this work, we overcome these difficulties using a heralded quantum teleportation scheme that is empowered by a measurement-based noiseless linear amplifier. The noiseless linear amplification enables us to simulate a range of Gaussian channels that were previously inaccessible. In particular, we demonstrate the simulation of non-physical Gaussian channels otherwise inaccessible using conventional means. We report Gaussian noise suppression, effectively converting an imperfect quantum channel into a near-identity channel. The performance of Gaussian noise suppression is quantified by calculating the transmitted entanglement.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Software-enhanced simultaneous quantum-classical communication protocol with Gaussian post-selection

    quant-ph 2025-10 conditional novelty 6.0 of 10

    Gaussian post-selection on Alice's modulation data lets SQCC key rates and reach approach the best fixed-variance choice in fluctuating fibre and satellite channels.

  2. Enhanced continuous-variable quantum key distribution protocol via adaptive signal processing

    quant-ph 2025-07 reject novelty 6.0 of 10

    A CV-QKD protocol with Gaussian post-selection by Alice and non-Gaussian notch filtering by Bob claims key rates that reach or exceed the optimal GG02 protocol, with experimental and simulated evidence.

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