Infrared and Laser Engineering, Volume. 51, Issue 8, 20220404(2022)

Research on penetrating imaging LIDAR based on time-correlated single photon counting (invited)

Kai Qiao, Jie Yang, and Chenfei Jin
Author Affiliations
  • School of Physics, Harbin Institute of Technology, Harbin 150001, China
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    References(43)

    [1] Yiming Zhao, Yanhua Li, Yanan Shang, et al. Application and development direction of lidar. Journal of Telemetry, Tracking and Command, 4-22(2014).

    [2] [2] Dailey H J. acterization of surface karst using LiDAR field traverses, Ft hood military installation, cyell county, texas[J]. 2020.

    [3] Runjun Xu, Xinzhong Chen. Application of lidar in military. Physics and Engineering, 36-39(2002).

    [4] R T H Collis. Lidar. Advances in Geophysics, 13, 113-139(1969).

    [5] Junrong Xia, Lei Zhang. Advances in detecting aerosols with mie lidar. Arid Meteorology, 24, 68(2006).

    [6] Haifeng Zhang, Zhien Cheng, Pu Li, et al. Design of lidar cooperative target and its application to space rendezvous and docking. Infrared and Laser Engineering, 44, 2556-2561(2015).

    [7] [7] Lin Hui. Map building obstacle detection based on vehiclemounted multiple lidars[D]. Hangzhou: Zhejiang University, 2017. (in Chinese)

    [8] Xiaodong Chen, Jiachen. Pang Weisong Zhang, et al. Key technology and application algorithm of intelligent driving vehicle LiDAR. Opto-Electronic Engineering, 46, 190182(2019).

    [9] B J Li, Q Q Li, W Z Shi, et al. Feature extraction and modeling of urban building from vehicle-borne laser scanning data. Geomatics and Information Science of Wuhan University, 35, 934-939(2004).

    [10] Dong Kong, Xiaoyuan Wang, Yaqi Liu, et al. Vehicle target identification algorithm based on point cloud of vehicle 32-line laser lidar. Science Technology and Engineering, 18, 81-85(2018).

    [11] [11] Abuhadrous I, Ammoun S, Nashashibi F, et al. Digitizing 3 D modeling of urban environments roads using vehiclebne laser scanner system[C]2004 IEEERSJ International Conference on Intelligent Robots Systems (IROS). IEEE, 2004, 1: 7681.

    [12] Jianmin Duan, Longjie Li, Kaihua Zheng. Preceding drivable area detection based on four-layer laser radar. Automobile Technology, 55-62(2016).

    [13] Zhenmin Shen, Weidong Shang, Bingjie Wang, et al. Lidar with high scattering ratio suppression for underwater detection. Acta Photonica Sinica, 49, 0601001(2020).

    [14] [14] Xie Jiaming. Research of water cloud parameters combined with multiscattering polarization lidar[D]. Nanjing: Nanjing University of Infmation Science Technology, 2020. (in Chinese)

    [15] P C Y Chang, J C Flitton, K I Hopcraft, et al. Improving visibility depth in passive underwater imaging by use of polarization. Applied Optics, 42, 2794-2803(2003).

    [16] Yi Wei, Fei Liu, Kui Yang, et al. Passive underwater polarization imaging detection method in neritic area. Acta Physica Sinica, 67, 154201(2018).

    [17] [17] Nevis A J. Automated processing f streak tube imaging lidar data[C] SPIE, 2003, 5089: 119129.

    [18] Xin Chang, Xiaodong Chen, Jiachen Zhang, et al. An object detection and tracking algorithm based on lidar and camera information fusion. Opto-Electronic Engineering, 46, 180420(2019).

    [19] G R Fournier, D Bonnier, J L Forand, et al. Range-gated underwater laser imaging system. Optical Engineering, 32, 2185-2190(1993).

    [20] Fengmei Cao, Weiqi Jin, Youwei Huang, et al. Review of underwater opto-electrical imaging technology and equipment (I)-underwater laser range-gated imaging technology. Infrared Technology, 33, 63-69(2011).

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

    [22] Jing Wang, Xing Bai, Jinchao Wang, et al. Multi-frame speckle imaging based on phase diversity using spatial light modulator. Optics & Optoelectronic Technology, 18, 70(2020).

    [23] H Liu, Z Liu, M Chen, et al. Physical picture of the optical memory effect. Photonics Research, 7, 1323-1330(2019).

    [24] X Wang, X Jin, J Li. Blind position detection for large field-of-view scattering imaging. Photonics Research, 8, 920-928(2020).

    [25] S Zhu, E Guo, J Gu, et al. Imaging through unknown scattering media based on physics-informed learning. Photonics Research, 9, B210-B219(2021).

    [26] L Zhu, F Soldevila, C Moretti, et al. Large field-of-view non-invasive imaging through scattering layers using fluctuating random illumination. Nature Communications, 13, 1-6(2022).

    [27] X Xu, X Xie, A Thendiyammal, et al. Imaging of objects through a thin scattering layer using a spectrally and spatially separated reference. Optics Express, 26, 15073-15083(2018).

    [28] A McCarthy, X Ren, Frera A Della, et al. Kilometer-range depth imaging at 1550 nm wavelength using an InGaAs/InP single-photon avalanche diode detector. Optics Express, 21, 22098-22113(2013).

    [29] A Maccarone, A McCarthy, X Ren, et al. Underwater depth imaging using time-correlated single-photon counting. Optics Express, 23, 33911-33926(2015).

    [30] [30] Satat G, Tancik M, Raskar R. Towards photography through realistic fog[C]2018 IEEE International Conference on Computational Photography (ICCP). IEEE, 2018: 110.

    [31] R Tobin, A Halimi, A McCarthy, et al. Three-dimensional single-photon imaging through obscurants. Optics Express, 27, 4590-4611(2019).

    [32] G Mie. Beiträge zur optik trüber medien, speziell kolloidaler metallösungen. Annalen der Physik, 330, 377-445(1908).

    [33] Jianqi Shen, Lei Liu. An improved algorithm of classical mie scattering calculation. China Powder Science and Technology, 11, 1-5(2005).

    [34] W J Lentz. Generating bessel functions in mie scattering calculations using continued fractions. Applied Optics, 15, 668-671(1976).

    [35] W J Wiscombe. Improved mie scattering algorithms. Applied Optics, 19, 1505-1509(1980).

    [36] [36] Wu Dehuai. Research on fast algithm f MIE scattering coefficients in wide rang[D]. Xi''an: Xidian University, 2009. (in Chinese)

    [37] J V Dave. Scattering of visible light by large water spheres. Applied Optics, 8, 155-164(1969).

    [38] [38] Bohren C F, Huffman D R. Absption Scattering of Light by Small Particles[M]. US: John Wiley & Sons, 2008.

    [39] Jue Huang, Fanlin Yang, Liqiong Chen, et al. Effects of nonuniform vertical profile of suspended particulate matter on water optical properties. Guangxi Sciences, 23, 507-512(2016).

    [40] [40] Wang L, Jacques S L. Monte Carlo Modeling of Light Transpt in Multilayered Tissues in Stard C[M]. Houston: The University of Texas, MD erson Cancer Center, 1992.

    [41] D Toublanc. Henyey-greenstein and mie phase functions in monte carlo radiative transfer computations. Applied Optics, 35, 3270-3274(1996).

    [42] X Wang, L V Wang. Propagation of polarized light in birefringent turbid media: A Monte Carlo study. Journal of Biomedical Optics, 7, 279-290(2002).

    [43] [43] Qiao Kai. Threedimensional imaging via timecrelated singlephoton counting in turbid media[D]. Harbin: Harbin Institute of Technology, 2021. (in Chinese)

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    Kai Qiao, Jie Yang, Chenfei Jin. Research on penetrating imaging LIDAR based on time-correlated single photon counting (invited)[J]. Infrared and Laser Engineering, 2022, 51(8): 20220404

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    Paper Information

    Category: Special issue——Scattering imaging and non-line-of-sight imaging

    Received: Dec. 20, 2021

    Accepted: --

    Published Online: Jan. 9, 2023

    The Author Email:

    DOI:10.3788/IRLA20220404

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