Universal Operational Privacy in Distributed Quantum Sensing

Fuente: arXiv
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Main Authors: Namkung, Min, Kim, Dong-Hyun, Hong, Seongjin, Kim, Yong-Su, Lee, Su-Yong, Lim, Hyang-Tag
Format: Preprint
Published: 2026
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author Namkung, Min
Kim, Dong-Hyun
Hong, Seongjin
Kim, Yong-Su
Lee, Su-Yong
Lim, Hyang-Tag
author_facet Namkung, Min
Kim, Dong-Hyun
Hong, Seongjin
Kim, Yong-Su
Lee, Su-Yong
Lim, Hyang-Tag
contents Privacy is a fundamental requirement in distributed quantum sensing networks, where multiple clients estimate spatially distributed parameters using shared quantum resources while interacting with potentially untrusted servers. Despite its importance, existing privacy conditions rely on idealized quantum bounds and do not fully capture the operational constraints imposed by realistic measurements. Here, we introduce a universal operational privacy framework for distributed quantum sensing, formulated in terms of the experimentally accessible classical Fisher information matrix and applicable to arbitrary protocols characterized by singular information structures. The proposed condition provides a protocol-independent criterion ensuring that no information about individual parameters is accessible to untrusted parties. We further experimentally demonstrate that a distributed quantum sensing protocol employing fewer photons than the number of estimated parameters simultaneously satisfies the universal privacy condition and achieves Heisenberg-limited precision. Our results establish universal operational constraints governing privacy in distributed quantum sensing networks and provide a foundation for practical, privacy-preserving quantum sensing beyond full-rank regimes.
format Preprint
id arxiv_https___arxiv_org_abs_2601_19206
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Universal Operational Privacy in Distributed Quantum Sensing
Namkung, Min
Kim, Dong-Hyun
Hong, Seongjin
Kim, Yong-Su
Lee, Su-Yong
Lim, Hyang-Tag
Quantum Physics
Privacy is a fundamental requirement in distributed quantum sensing networks, where multiple clients estimate spatially distributed parameters using shared quantum resources while interacting with potentially untrusted servers. Despite its importance, existing privacy conditions rely on idealized quantum bounds and do not fully capture the operational constraints imposed by realistic measurements. Here, we introduce a universal operational privacy framework for distributed quantum sensing, formulated in terms of the experimentally accessible classical Fisher information matrix and applicable to arbitrary protocols characterized by singular information structures. The proposed condition provides a protocol-independent criterion ensuring that no information about individual parameters is accessible to untrusted parties. We further experimentally demonstrate that a distributed quantum sensing protocol employing fewer photons than the number of estimated parameters simultaneously satisfies the universal privacy condition and achieves Heisenberg-limited precision. Our results establish universal operational constraints governing privacy in distributed quantum sensing networks and provide a foundation for practical, privacy-preserving quantum sensing beyond full-rank regimes.
title Universal Operational Privacy in Distributed Quantum Sensing
topic Quantum Physics
url https://arxiv.org/abs/2601.19206