• Laser & Optoelectronics Progress
  • Vol. 57, Issue 20, 201104 (2020)
Dong Zhou1, Jie Cao1、*, Yahui Jiang1, Yongchao Feng2, and Qun Hao1
Author Affiliations
  • 1Key Laboratory of Robotics and Systems, Ministry of Education, School of Optoelectronics, Beijing Institute of Technology, Beijing 100081, China
  • 2China Electronics Technology Instruments Co., Ltd, Qingdao, Shandong 266555, China
  • show less
    DOI: 10.3788/LOP57.201104 Cite this Article Set citation alerts
    Dong Zhou, Jie Cao, Yahui Jiang, Yongchao Feng, Qun Hao. Speckle Design Method Based on Principal Component Analysis[J]. Laser & Optoelectronics Progress, 2020, 57(20): 201104 Copy Citation Text show less
    References

    [1] Hanbury-Brown R. Correlation between photons in two coherent beams of light[J]. Nature, 15, 192-196(1983).

    [2] Pittman T B, Shih Y H, Strekalov D V et al. Optical imaging by means of two-photon quantum entanglement[J]. Physical Review. A, Atomic, Molecular, and Optical Physics, 52, R3429-R3432(1995).

    [3] Abouraddy A F, Saleh B E, Sergienko A V et al. Role of entanglement in two-photon imaging[J]. Physical Review Letters, 87, 123602(2001). http://scitation.aip.org/getabs/servlet/GetabsServlet?prog=normal&id=PRLTAO000087000012123602000001&idtype=cvips&gifs=Yes

    [4] Bennink R S, Bentley S J, Boyd R W. “Two-photon” coincidence imaging with a classical source[J]. Physical Review Letters, 89, 113601(2002).

    [5] Gatti A, Brambilla E, Bache M et al. Ghost imaging with thermal light: comparing entanglement and classical correlation[J]. Physical Review Letters, 93, 093602(2004).

    [6] Ferri F, Magatti D, Gatti A et al. High-resolution ghost image and ghost diffraction experiments with thermal light[J]. Physical Review Letters, 94, 183602(2005). http://www.researchgate.net/publication/253748538_High-resolution_ghost_image_and_ghost_diffraction_experiments_with_incoherent_pseudo-thermal_light/download

    [7] Meyers R, Deacon K S, Shih Y. Ghost-imaging experiment by measuring reflected photons[J]. Physical Review A, 77, 041801(2008).

    [8] Tian N, Guo Q C, Wang A L et al. Fluorescence ghost imaging with pseudothermal light[J]. Optics Letters, 36, 3302-3304(2011).

    [9] Chen W, Chen X D. Ghost imaging for three-dimensional optical security[J]. Applied Physics Letters, 103, 221106(2013).

    [10] Phillips D B, Sun M J, Taylor J M et al. Adaptive foveated single-pixel imaging with dynamic supersampling[J]. Science Advances, 3, e1601782(2017).

    [11] Romberg J. Imaging via compressive sampling[J]. Signal Processing Magazine IEEE, 25, 14-20(2008).

    [12] Candes E J, Tao T. Decoding by linear programming[J]. IEEE Transactions on Information Theory, 51, 4203-4215(2005).

    [13] Li H B. Influence of different measurement matrix based on TVAL3 algorithm on image reconstruction quality[J]. Electro-Optic Technology Application, 33, 48-51(2018).

    [14] Li M F, Mo X F, Zhao L J et al. Single-pixel remote imaging based on Walsh-Hadamard transform[J]. Acta Physica Sinica, 65, 064201(2016).

    [15] Wang L, Zhao S M. Fast reconstructed and high-quality ghost imaging with fast Walsh-Hadamard transform[J]. Photonics Research, 4, 240-244(2016). http://www.opticsjournal.net/Articles/Abstract?aid=OJ161223000457SpVrYu

    CLP Journals

    [1] GUO Hui, YE Zhiqiu. Orthogonal optimization of random speckle patterns for computational ghost imaging[J]. Chinese Journal of Quantum Electronics, 2023, 40(1): 48

    Dong Zhou, Jie Cao, Yahui Jiang, Yongchao Feng, Qun Hao. Speckle Design Method Based on Principal Component Analysis[J]. Laser & Optoelectronics Progress, 2020, 57(20): 201104
    Download Citation