Multiparameter estimation with position-momentum correlated Gaussian probes

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Porto, João C. P., Vieira, Carlos H. S., Dieguez, Pedro R., da Paz, Irismar G., Marinho, Lucas S.
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866908838543753216
author Porto, João C. P.
Vieira, Carlos H. S.
Dieguez, Pedro R.
da Paz, Irismar G.
Marinho, Lucas S.
author_facet Porto, João C. P.
Vieira, Carlos H. S.
Dieguez, Pedro R.
da Paz, Irismar G.
Marinho, Lucas S.
contents Gaussian quantum probes have been widely used in quantum metrology and thermometry, where the goal is to estimate the temperature of an environment with which the probe interacts. It was recently shown that introducing initial position-momentum (PM) correlations in such probes can enhance the estimation precision compared to standard, uncorrelated Gaussian states. Motivated by these findings, we investigate whether PM correlations can also be advantageous in a simultaneous estimation setting, specifically, when estimating both the PM correlations themselves and the effective environment temperature that interacts with the probe. Using the Quantum Fisher Information Matrix, we derive new precision bounds for this joint estimation task. Additionally, we demonstrate that such correlations can serve as a resource to improve temperature estimation within this multiparameter context. Finally, we analyze the compatibility between the two parameters, establishing conditions under which the derived bounds can be saturated.
format Preprint
id arxiv_https___arxiv_org_abs_2507_16742
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Multiparameter estimation with position-momentum correlated Gaussian probes
Porto, João C. P.
Vieira, Carlos H. S.
Dieguez, Pedro R.
da Paz, Irismar G.
Marinho, Lucas S.
Quantum Physics
Gaussian quantum probes have been widely used in quantum metrology and thermometry, where the goal is to estimate the temperature of an environment with which the probe interacts. It was recently shown that introducing initial position-momentum (PM) correlations in such probes can enhance the estimation precision compared to standard, uncorrelated Gaussian states. Motivated by these findings, we investigate whether PM correlations can also be advantageous in a simultaneous estimation setting, specifically, when estimating both the PM correlations themselves and the effective environment temperature that interacts with the probe. Using the Quantum Fisher Information Matrix, we derive new precision bounds for this joint estimation task. Additionally, we demonstrate that such correlations can serve as a resource to improve temperature estimation within this multiparameter context. Finally, we analyze the compatibility between the two parameters, establishing conditions under which the derived bounds can be saturated.
title Multiparameter estimation with position-momentum correlated Gaussian probes
topic Quantum Physics
url https://arxiv.org/abs/2507.16742