• Advanced Photonics
  • Vol. 4, Issue 2, 026004 (2022)
Ying Zuo1、†, Chenfeng Cao1, Ningping Cao2、3, Xuanying Lai4, Bei Zeng1、*, and Shengwang Du4、*
Author Affiliations
  • 1The Hong Kong University of Science and Technology, Department of Physics, Hong Kong, China
  • 2University of Guelph, Department of Mathematics and Statistics, Guelph, Ontario, Canada
  • 3University of Waterloo, Institute for Quantum Computing, Waterloo, Ontario, Canada
  • 4The University of Texas at Dallas, Department of Physics, Richardson, Texas, United States
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    DOI: 10.1117/1.AP.4.2.026004 Cite this Article Set citation alerts
    Ying Zuo, Chenfeng Cao, Ningping Cao, Xuanying Lai, Bei Zeng, Shengwang Du. Optical neural network quantum state tomography[J]. Advanced Photonics, 2022, 4(2): 026004 Copy Citation Text show less

    Abstract

    Quantum state tomography (QST) is a crucial ingredient for almost all aspects of experimental quantum information processing. As an analog of the “imaging” technique in quantum settings, QST is born to be a data science problem, where machine learning techniques, noticeably neural networks, have been applied extensively. We build and demonstrate an optical neural network (ONN) for photonic polarization qubit QST. The ONN is equipped with built-in optical nonlinear activation functions based on electromagnetically induced transparency. The experimental results show that our ONN can determine the phase parameter of the qubit state accurately. As optics are highly desired for quantum interconnections, our ONN-QST may contribute to the realization of optical quantum networks and inspire the ideas combining artificial optical intelligence with quantum information studies.
    P={σi1(1)σin(n)|σik(k)P,k=1nik0},

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    |ψ=k=12nak|ϕk,

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    ρ=12(1+c·σ),

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    Ipout=f(Ic)=IpineOD4γ12γ13Ωc2+4γ12γ13,

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    Ying Zuo, Chenfeng Cao, Ningping Cao, Xuanying Lai, Bei Zeng, Shengwang Du. Optical neural network quantum state tomography[J]. Advanced Photonics, 2022, 4(2): 026004
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