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    Persistent quantum advantage with definite photon-number states in lossy multiple-phase estimation

    Min Namkung1, Dong-Hyun Kim1,2, Seongjin Hong2, Changhyoup Lee3,4,*, and Hyang-Tag Lim1,5,†

    • *Contact author: changhyoup.lee@gmail.com
    • †Contact author: hyangtag.lim@kist.re.kr

    Phys. Rev. A 112, 013714 – Published 18 July, 2025

    DOI: https://doi.org/10.1103/l44c-d76x

    Abstract

    Multiple-phase estimation exploiting quantum states has broad applications in novel sensing and imaging technologies. However, the unavoidable presence of lossy environments in practical settings often diminishes the precision of phase estimations. To address this challenge, we propose an optimal multiple-phase estimation scheme that is inherently robust against photon loss, ensuring a persistent quantum advantage across all levels of photon loss. The scheme employs a multimode definite photon-number (DPN) state with weights optimized for given levels of photon loss. We theoretically demonstrate that the DPN state can sustain quantum enhancement in estimation precision under all levels of photon loss, compared to the classical benchmark that employs a coherent state input. The proposed scheme using DPN states generalizes earlier studies employing NOON states, which are only optimal when photon loss is small. We believe that our study, demonstrating persistent robustness to photon loss, paves the way for significant advancements in quantum-enhanced sensing technologies, enabling practical applications and quantum advantages in real-world scenarios.

    Physics Subject Headings (PhySH)

    Corrections

    16 September, 2025

    Correction: A second affiliation was added for the fourth author.

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