Bayesian homodyne and heterodyne tomography

被引:7
作者
Chapman, Joseph C. [1 ]
Lukens, Joseph M. [1 ]
Qi, Bing [1 ,2 ]
Pooser, Raphael C. [1 ]
Peters, Nicholas A. [1 ]
机构
[1] Oak Ridge Natl Lab, Quantum Informat Sci Sect, POB 2009, Oak Ridge, TN 37831 USA
[2] Cisco Syst Inc, San Jose, CA 95134 USA
关键词
STATE TOMOGRAPHY; DENSITY-MATRIX; QUANTUM;
D O I
10.1364/OE.456597
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Continuous-variable (CV) photonic states are of increasing interest in quantum information science, bolstered by features such as deterministic resource state generation and error correction via bosonic codes. Data-efficient characterization methods will prove critical in the fine-tuning and maturation of such CV quantum technology. Although Bayesian inference offers appealing properties-including uncertainty quantification and optimality in mean-squared error-Bayesian methods have yet to be demonstrated for the tomography of arbitrary CV states. Here we introduce a complete Bayesian quantum state tomography workflow capable of inferring generic CV states measured by homodyne or heterodyne detection, with no assumption of Gaussianity. As examples, we demonstrate our approach on experimental coherent, thermal, and cat state data, obtaining excellent agreement between our Bayesian estimates and theoretical predictions. Our approach lays the groundwork for Bayesian estimation of highly complex CV quantum states in emerging quantum photonic platforms, such as quantum communications networks and sensors. (C) 2022 Optics Publishing Group under the terms of the Optics Open Access Publishing Agreement
引用
收藏
页码:15184 / 15200
页数:17
相关论文
共 50 条
  • [21] Witnessing negativity of Wigner function by estimating fidelities of catlike states from homodyne measurements
    Fiurasek, Jaromir
    Jezek, Miroslav
    PHYSICAL REVIEW A, 2013, 87 (06):
  • [22] Homodyne detection with on-off detector systems
    Lipfert, T.
    Sperling, J.
    Vogel, W.
    PHYSICAL REVIEW A, 2015, 92 (05):
  • [23] Bayesian tomography of high-dimensional on-chip biphoton frequency combs with randomized measurements
    Lu, Hsuan-Hao
    Myilswamy, Karthik, V
    Bennink, Ryan S.
    Seshadri, Suparna
    Alshaykh, Mohammed S.
    Liu, Junqiu
    Kippenberg, Tobias J.
    Leaird, Daniel E.
    Weiner, Andrew M.
    Lukens, Joseph M.
    NATURE COMMUNICATIONS, 2022, 13 (01)
  • [24] High-stability time-domain balanced homodyne detector for ultrafast optical pulse applications
    Cooper, Merlin
    Soeller, Christoph
    Smith, Brian J.
    JOURNAL OF MODERN OPTICS, 2013, 60 (08) : 611 - 616
  • [25] Quantum interferences reconstruction with low homodyne detection efficiency
    Esposito, Martina
    Randi, Francesco
    Titimbo, Kelvin
    Kourousias, Georgios
    Curri, Alessio
    Floreanini, Roberto
    Parmigiani, Fulvio
    Fausti, Daniele
    Zimmermann, Klaus
    Benatti, Fabio
    EPJ QUANTUM TECHNOLOGY, 2016, 3
  • [26] Negative Wigner function at telecommunication wavelength from homodyne detection
    Baune, Christoph
    Fiurasek, Jaromir
    Schnabel, Roman
    PHYSICAL REVIEW A, 2017, 95 (06)
  • [27] Polarization-Modulated Quadrant Homodyne Detector for Single-Shot Measurement of the Polarization State of a Weak Signal Field
    Youn, Sun-Hyun
    Jain, Nitin
    JOURNAL OF THE KOREAN PHYSICAL SOCIETY, 2009, 54 (01) : 29 - 33
  • [28] Non-Gaussian entanglement criteria for atomic homodyne detection
    Lee, Jaehak
    Park, Jiyong
    Kim, Jaewan
    Kim, M. S.
    Nha, Hyunchul
    PHYSICAL REVIEW A, 2023, 107 (02)
  • [29] Pulsed entanglement measured by parametric amplifier assisted homodyne detection
    Li, Jiamin
    Liu, Yuhong
    Huo, Nan
    Cui, Liang
    Feng, Chang
    Ou, Z. Y.
    Li, Xiaoying
    OPTICS EXPRESS, 2019, 27 (21): : 30552 - 30562
  • [30] Homodyne estimation of quantum state purity by exploiting the covariant uncertainty relation
    Man'ko, V. I.
    Marmo, G.
    Porzio, A.
    Solimeno, S.
    Ventriglia, F.
    PHYSICA SCRIPTA, 2011, 83 (04)