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    Efficient convex optimization for bosonic state tomography

    Shengyong Li1,*, Yanjin Yue2,*, Ying Hu3, Rui-Yang Gong2, Qianchuan Zhao1, Zhihui Peng3, Hou Ian4, Pengtao Song5,†, Ze-Liang Xiang2,‡ et al.

    Jing Zhang5,6,§

    • *These authors contributed equally to this work.
    • †Contact author: ptsong@xjtu.edu.cn
    • ‡Contact author: xiangzliang@mail.sysu.edu.cn
    • §Contact author: zhangjing2022@xjtu.edu.cn

    Phys. Rev. Applied 24, 064051 – Published 18 December, 2025

    DOI: https://doi.org/10.1103/55gp-mfg6

    Abstract

    Quantum states encoded in electromagnetic fields, also known as bosonic states, have been widely applied in quantum sensing, quantum communication, and quantum error correction. Accurate characterization is therefore essential yet difficult when states cannot be reconstructed with sparse Pauli measurements. Tomography must work with dense measurement bases, high-dimensional Hilbert spaces, and often sample-based data. However, existing convex optimization-based techniques are not efficient enough and scale poorly when extended to large and multimode systems. In this work, we explore convex optimization as an effective framework to address problems in bosonic state tomography, introducing three techniques to enhance efficiency and scalability: efficient displacement operator computation, Hilbert-space truncation, and stochastic convex optimization, which mitigate common limitations of existing approaches. Then we propose a sample-based, convex maximum-likelihood estimation method specifically designed for flying-mode tomography. Numerical simulations of flying four-mode and nine-mode problems demonstrate the accuracy and practicality of our methods. This method provides practical tools for reliable bosonic mode quantum state reconstruction in high-dimensional and multimode systems.

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