Multiparameter quantum-enhanced adaptive metrology with squeezed light

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Minati, Giorgio, Urbani, Enrico, Spagnolo, Nicolò, Cimini, Valeria, Sciarrino, Fabio
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866912652800819200
author Minati, Giorgio
Urbani, Enrico
Spagnolo, Nicolò
Cimini, Valeria
Sciarrino, Fabio
author_facet Minati, Giorgio
Urbani, Enrico
Spagnolo, Nicolò
Cimini, Valeria
Sciarrino, Fabio
contents Squeezed light enables quantum-enhanced phase estimation, with crucial applications in both fundamental physics and emerging technologies. To fully exploit the advantage provided by this approach, estimation protocols must remain optimal across the entire parameter range and resilient to instabilities in the probe state. In this context, strategies that rely on pre-calibrated squeezing levels are vulnerable to degradation over time and become sub-optimal when experimental conditions fluctuate. Here, we develop an adaptive multiparameter estimation strategy for ab-initio phase estimation, achieving sub-standard quantum limit precision in the full periodicity interval $[0,π)$, without relying on prior knowledge of the squeezing parameter. Our approach employs real-time feedback to jointly estimate both the optical phase and the squeezing level, ensuring robustness against experimental drifts and calibration errors. This self-calibrating scheme establishes a reliable quantum-enhanced sensing framework, opening new routes for practical scenarios and scalable distributed sensor networks using squeezed light.
format Preprint
id arxiv_https___arxiv_org_abs_2510_14739
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Multiparameter quantum-enhanced adaptive metrology with squeezed light
Minati, Giorgio
Urbani, Enrico
Spagnolo, Nicolò
Cimini, Valeria
Sciarrino, Fabio
Quantum Physics
Squeezed light enables quantum-enhanced phase estimation, with crucial applications in both fundamental physics and emerging technologies. To fully exploit the advantage provided by this approach, estimation protocols must remain optimal across the entire parameter range and resilient to instabilities in the probe state. In this context, strategies that rely on pre-calibrated squeezing levels are vulnerable to degradation over time and become sub-optimal when experimental conditions fluctuate. Here, we develop an adaptive multiparameter estimation strategy for ab-initio phase estimation, achieving sub-standard quantum limit precision in the full periodicity interval $[0,π)$, without relying on prior knowledge of the squeezing parameter. Our approach employs real-time feedback to jointly estimate both the optical phase and the squeezing level, ensuring robustness against experimental drifts and calibration errors. This self-calibrating scheme establishes a reliable quantum-enhanced sensing framework, opening new routes for practical scenarios and scalable distributed sensor networks using squeezed light.
title Multiparameter quantum-enhanced adaptive metrology with squeezed light
topic Quantum Physics
url https://arxiv.org/abs/2510.14739