Optimal Moment-based Characterization of a Gaussian State

Fuente: arXiv
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Autori principali: Tripier-Mondancin, Niels, Karuseichyk, Ilya, Walschaers, Mattia, Parigi, Valentina, Treps, Nicolas
Natura: Preprint
Pubblicazione: 2025
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author Tripier-Mondancin, Niels
Karuseichyk, Ilya
Walschaers, Mattia
Parigi, Valentina
Treps, Nicolas
author_facet Tripier-Mondancin, Niels
Karuseichyk, Ilya
Walschaers, Mattia
Parigi, Valentina
Treps, Nicolas
contents Fast and precise characterization of Gaussian states is crucial for their effective use in quantum technologies. In this work, we apply a multi-parameter moment-based estimation method that enables rapid and accurate determination of squeezing, antisqueezing, and the squeezing angle of the squeezed vacuum state. Compared to conventional approaches, our method achieves faster parameter estimation with reduced uncertainty, reaching the Cramér-Rao bound. We validate its effectiveness using the two most common measurement schemes in continuous-variable quantum optics: homodyne detection and double homodyne detection. This rapid estimation framework is well-suited for dynamically characterizing sources with time-dependent parameters, potentially enabling real-time feedback stabilization.
format Preprint
id arxiv_https___arxiv_org_abs_2503_14188
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Optimal Moment-based Characterization of a Gaussian State
Tripier-Mondancin, Niels
Karuseichyk, Ilya
Walschaers, Mattia
Parigi, Valentina
Treps, Nicolas
Quantum Physics
Fast and precise characterization of Gaussian states is crucial for their effective use in quantum technologies. In this work, we apply a multi-parameter moment-based estimation method that enables rapid and accurate determination of squeezing, antisqueezing, and the squeezing angle of the squeezed vacuum state. Compared to conventional approaches, our method achieves faster parameter estimation with reduced uncertainty, reaching the Cramér-Rao bound. We validate its effectiveness using the two most common measurement schemes in continuous-variable quantum optics: homodyne detection and double homodyne detection. This rapid estimation framework is well-suited for dynamically characterizing sources with time-dependent parameters, potentially enabling real-time feedback stabilization.
title Optimal Moment-based Characterization of a Gaussian State
topic Quantum Physics
url https://arxiv.org/abs/2503.14188