• Photonics Research
  • Vol. 10, Issue 12, 2693 (2022)
Daixuan Wu1, Jiawei Luo1, Zhibing Lu1, Hanpeng Liang1, Yuecheng Shen1、2、3、5、*, and Zhaohui Li1、2、4、6、*
Author Affiliations
  • 1School of Electronics and Information Technology, Guangdong Provincial Key Laboratory of Optoelectronic Information Processing Chips and Systems, Sun Yat-sen University, Guangzhou 510006, China
  • 2State Key Laboratory of Optoelectronic Materials and Technologies, Sun Yat-sen University, Guangzhou 510006, China
  • 3State Key Laboratory of Advanced Communication Systems and Networks, Shanghai Jiao Tong University, Shanghai 200240, China
  • 4Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Zhuhai 519000, China
  • 5e-mail:
  • 6e-mail:
  • show less
    DOI: 10.1364/PRJ.473783 Cite this Article Set citation alerts
    Daixuan Wu, Jiawei Luo, Zhibing Lu, Hanpeng Liang, Yuecheng Shen, Zhaohui Li. Two-stage matrix-assisted glare suppression at a large scale[J]. Photonics Research, 2022, 10(12): 2693 Copy Citation Text show less
    References

    [1] J. Bertolotti, E. G. van Putten, C. Blum, A. Lagendijk, W. L. Vos, A. P. Mosk. Non-invasive imaging through opaque scattering layers. Nature, 491, 232-234(2012).

    [2] H. He, Y. Guan, J. Zhou. Image restoration through thin turbid layers by correlation with a known object. Opt. Express, 21, 12539-12545(2013).

    [3] O. Katz, P. Heidmann, M. Fink, S. Gigan. Non-invasive single-shot imaging through scattering layers and around corners via speckle correlations. Nat. Photonics, 8, 784-790(2014).

    [4] E. Edrei, G. Scarcelli. Memory-effect based deconvolution microscopy for super-resolution imaging through scattering media. Sci. Rep., 6, 33558(2016).

    [5] M. Qiao, H. Liu, G. Pang, S. Han. Non-invasive three-dimension control of light between turbid layers using a surface quasi-point light source for precorrection. Sci. Rep., 7, 9792(2017).

    [6] I. M. Vellekoop, A. P. Mosk. Focusing coherent light through opaque strongly scattering media. Opt. Lett., 32, 2309-2311(2007).

    [7] S. Popoff, G. Lerosey, M. Fink, A. C. Boccara, S. Gigan. Image transmission through an opaque material. Nat. Commun., 1, 81(2010).

    [8] X. Xu, H. Liu, L. V. Wang. Time-reversed ultrasonically encoded optical focusing into scattering media. Nat. Photonics, 5, 154-157(2011).

    [9] Y. M. Wang, B. Judkewitz, C. A. DiMarzio, C. Yang. Deep-tissue focal fluorescence imaging with digitally time-reversed ultrasound-encoded light. Nat. Commun., 3, 928(2012).

    [10] I. N. Papadopoulos, J.-S. Jouhanneau, J. F. A. Poulet, B. Judkewitz. Scattering compensation by focus scanning holographic aberration probing (F-SHARP). Nat. Photonics, 11, 116-123(2017).

    [11] J.-H. Park, Z. Yu, K. Lee, P. Lai, Y. Park. Perspective: wavefront shaping techniques for controlling multiple light scattering in biological tissues: toward in vivo applications. APL Photon., 3, 100901(2018).

    [12] P. Pai, J. Bosch, M. Kühmayer, S. Rotter, A. P. Mosk. Scattering invariant modes of light in complex media. Nat. Photonics, 15, 431-434(2021).

    [13] H. Ruan, J. Xu, C. Yang. Optical information transmission through complex scattering media with optical-channel-based intensity streaming. Nat. Commun., 12, 2411(2021).

    [14] K. M. Yoo, Q. Xing, R. R. Alfano. Imaging objects hidden in highly scattering media using femtosecond second-harmonic-generation cross-correlation time gating. Opt. Lett., 16, 1019-1021(1991).

    [15] G. W. Faris, M. Banks. Unconverting time gate for imaging through highly scattering media. Opt. Lett., 19, 1813-1815(1994).

    [16] M. Dahan, T. Laurence, F. Pinaud, D. S. Chemla, A. P. Alivisatos, M. Sauer, S. Weiss. Time-gated biological imaging by use of colloidal quantum dots. Opt. Lett., 26, 825-827(2001).

    [17] I. Grulkowski, J. J. Liu, B. Potsaid, V. Jayaraman, J. Jiang, J. G. Fujimoto, A. E. Cable. High-precision, high-accuracy ultralong-range swept-source optical coherence tomography using vertical cavity surface emitting laser light source. Opt. Lett., 38, 673-675(2013).

    [18] S. Woo, S. Kang, C. Yoon, H. Ko, W. Choi. Depth-selective imaging of macroscopic objects hidden behind a scattering layer using low-coherence and wide-field interferometry. Opt. Commun., 372, 210-214(2016).

    [19] E. H. Zhou, A. Shibukawa, J. Brake, H. Ruan, C. Yang. Glare suppression by coherence gated negation. Optica, 3, 1107-1113(2016).

    [20] A. Daniel, L. Liberman, Y. Silberberg. Wavefront shaping for glare reduction. Optica, 3, 1104-1106(2016).

    [21] D. B. Conkey, A. N. Brown, A. M. Caravaca-Aguirre, R. Piestun. Genetic algorithm optimization for focusing through turbid media in noisy environments. Opt. Express, 20, 4840-4849(2012).

    [22] J. Luo, Z. Wu, D. Wu, Z. Liu, X. Wei, Y. Shen, Z. Li. Efficient glare suppression with Hadamard-encoding-algorithm-based wavefront shaping. Opt. Lett., 44, 4067-4070(2019).

    [23] G. Huang, D. Wu, J. Luo, L. Lu, F. Li, Y. Shen, Z. Li. Generalizing the Gerchberg–Saxton algorithm for retrieving complex optical transmission matrices. Photon. Res., 9, 34-42(2021).

    [24] R. N. Mahalati, D. Askarov, J. P. Wilde, J. M. Kahn. Adaptive control of input field to achieve desired output intensity profile in multimode fiber with random mode coupling. Opt. Express, 20, 14321-14337(2012).

    [25] A. Drémeau, A. Liutkus, D. Martina, O. Katz, C. Schülke, F. Krzakala, S. Gigan, L. Daudet. Reference-less measurement of the transmission matrix of a highly scattering material using a DMD and phase retrieval techniques. Opt. Express, 23, 11898-11911(2015).

    [26] M. N’Gom, M.-B. Lien, N. M. Estakhri, T. B. Norris, E. Michielssen, R. R. Nadakuditi. Controlling light transmission through highly scattering media using semi-definite programming as a phase retrieval computation method. Sci. Rep., 7, 2518(2017).

    [27] L. Deng, J. D. Yan, D. S. Elson, L. Su. Characterization of an imaging multimode optical fiber using a digital micro-mirror device based single-beam system. Opt. Express, 26, 18436-18447(2018).

    [28] T. Zhao, L. Deng, W. Wang, D. S. Elson, L. Su. Bayes’ theorem-based binary algorithm for fast reference-less calibration of a multimode fiber. Opt. Express, 26, 20368-20378(2018).

    [29] G. Huang, D. Wu, J. Luo, Y. Huang, Y. Shen. Retrieving the optical transmission matrix of a multimode fiber using the extended Kalman filter. Opt. Express, 28, 9487-9500(2020).

    [30] Z. Wang, D. Wu, G. Huang, J. Luo, B. Ye, Z. Li, Y. Shen. Feedback-assisted transmission matrix measurement of a multimode fiber in a referenceless system. Opt. Lett., 46, 5542-5545(2021).

    [31] R. W. Gerchberg. A practical algorithm for the determination of plane from image and diffraction pictures. Optik, 35, 237-246(1972).

    [32] D. Loterie, S. Farahi, I. Papadopoulos, A. Goy, D. Psaltis, C. Moser. Digital confocal microscopy through a multimode fiber. Opt. Express, 23, 23845-23858(2015).

    [33] S. Popoff, G. Lerosey, M. Fink, A. C. Boccara, S. Gigan. Controlling light through optical disordered media: transmission matrix approach. New J. Phys., 13, 123021(2011).

    [34] R. Li, T. Peng, Y. Liang, Y. Yang, B. Yao, X. Yu, J. Min, M. Lei, S. Yan, C. Zhang, T. Ye. Interleaved segment correction achieves higher improvement factors in using genetic algorithm to optimize light focusing through scattering media. J. Opt., 19, 105602(2017).

    [35] J. Xu, H. Ruan, Y. Liu, H. Zhou, C. Yang. Focusing light through scattering media by transmission matrix inversion. Opt. Express, 25, 27234-27246(2017).

    [36] Y. Shen, Y. Liu, C. Ma, L. V. Wang. Sub-Nyquist sampling boosts targeted light transport through opaque scattering media. Optica, 4, 97-102(2017).

    [37] C. Ma, J. Di, Y. Li, F. Xiao, J. Zhang, K. Liu, X. Bai, J. Zhao. Rotational scanning and multiple-spot focusing through a multimode fiber based on digital optical phase conjugation. Appl. Phys. Express, 11, 062501(2018).

    [38] Y. Luo, S. Yan, H. Li, P. Lai, Y. Zheng. Towards smart optical focusing: deep learning-empowered dynamic wavefront shaping through nonstationary scattering media. Photon. Res., 9, B262-B278(2021).

    Daixuan Wu, Jiawei Luo, Zhibing Lu, Hanpeng Liang, Yuecheng Shen, Zhaohui Li. Two-stage matrix-assisted glare suppression at a large scale[J]. Photonics Research, 2022, 10(12): 2693
    Download Citation