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Main Authors: Chang, Shoukang, Yang, Yashu, Ye, Wei, Tang, Yawen, Cao, Hui, Zhang, Huan, Zhu, Zunlue, Fei, Shaoming, Zhao, Xingdong
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2601.02689
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author Chang, Shoukang
Yang, Yashu
Ye, Wei
Tang, Yawen
Cao, Hui
Zhang, Huan
Zhu, Zunlue
Fei, Shaoming
Zhao, Xingdong
author_facet Chang, Shoukang
Yang, Yashu
Ye, Wei
Tang, Yawen
Cao, Hui
Zhang, Huan
Zhu, Zunlue
Fei, Shaoming
Zhao, Xingdong
contents The uniformly accelerated Unruh-DeWitt detector serves as a fundamental model in relativistic quantum metrology. While previous studies have mainly concentrated on single-parameter estimation via quantum Cramér-Rao bound, the multi-parameter case remains significantly underexplored. In this paper, we investigate the multiparameter estimation for a uniformly accelerated Unruh-DeWitt detector coupled to a vacuum scalar field in both bounded and unbounded Minkowski vacuum. Our analysis reveals that quantum Cramér-Rao bound fails to provide a tight error bound for the two-parameter estimation involving the initial phase and weight parameters. For this reason, we numerically compute two tighter error bounds, Holevo Cramér-Rao bound and Nagaoka bound, based on a semidefinite program. Notably, our results demonstrate that Nagaoka bound yields the tightest error bound among all the considered error bounds, consistent with the general hierarchy of multiparameter quantum estimation. In the case with a boundary, we observe the introduction of boundary systematically reduces the values of both Holevo Cramér-Rao bound and Nagaoka bound, indicating an improvement on the attainable estimation precision. These results offer valuable insights on and practical guidance for advancing multiparameter estimation in relativistic context.
format Preprint
id arxiv_https___arxiv_org_abs_2601_02689
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Multiparameter quantum estimation with a uniformly accelerated Unruh-DeWitt detector
Chang, Shoukang
Yang, Yashu
Ye, Wei
Tang, Yawen
Cao, Hui
Zhang, Huan
Zhu, Zunlue
Fei, Shaoming
Zhao, Xingdong
Quantum Physics
The uniformly accelerated Unruh-DeWitt detector serves as a fundamental model in relativistic quantum metrology. While previous studies have mainly concentrated on single-parameter estimation via quantum Cramér-Rao bound, the multi-parameter case remains significantly underexplored. In this paper, we investigate the multiparameter estimation for a uniformly accelerated Unruh-DeWitt detector coupled to a vacuum scalar field in both bounded and unbounded Minkowski vacuum. Our analysis reveals that quantum Cramér-Rao bound fails to provide a tight error bound for the two-parameter estimation involving the initial phase and weight parameters. For this reason, we numerically compute two tighter error bounds, Holevo Cramér-Rao bound and Nagaoka bound, based on a semidefinite program. Notably, our results demonstrate that Nagaoka bound yields the tightest error bound among all the considered error bounds, consistent with the general hierarchy of multiparameter quantum estimation. In the case with a boundary, we observe the introduction of boundary systematically reduces the values of both Holevo Cramér-Rao bound and Nagaoka bound, indicating an improvement on the attainable estimation precision. These results offer valuable insights on and practical guidance for advancing multiparameter estimation in relativistic context.
title Multiparameter quantum estimation with a uniformly accelerated Unruh-DeWitt detector
topic Quantum Physics
url https://arxiv.org/abs/2601.02689