Underwater depth imaging using time-correlated single-photon counting at video frame rates

被引:2
|
作者
Maccarone, Aurora [1 ]
McCarthy, Aongus [1 ]
Tachella, Julian [1 ]
Garcia, Diego Aguirre [1 ]
Della Rocca, Francesco Mattioli [2 ]
Altmann, Yoann [1 ]
McLaughlin, Stephen [1 ]
Henderson, Robert [2 ]
Buller, Gerald S. [1 ]
机构
[1] Heriot Watt Univ, Sch Engn & Phys Sci, Edinburgh EH14 4AS, Midlothian, Scotland
[2] Univ Edinburgh, Sch Engn, Edinburgh EH9 3FF, Midlothian, Scotland
来源
基金
英国工程与自然科学研究理事会;
关键词
Single-photon; underwater; scattering; Lidar; MULTISPECTRAL LIDAR; SENSOR;
D O I
10.1117/12.2534303
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
This paper presents the Time-Correlated Single-Photon Counting (TCSPC) technique applied to underwater environments in order to reconstruct three-dimensional scenes. Two different transceiver systems approaches are described. The first transceiver comprised a single-pixel monostatic scanning unit, which used a fiber-coupled silicon single-photon avalanche diode (SPAD) detector, and a fiber-coupled supercontinuum laser source used in conjunction with an acousto-optic tunable filter (AOTF) for wavelength selection. The experiments were performed using the supercontinuum pulsed laser source operating at a repetition rate of 19.5 MHz, fiber coupled to the AOTF in order to select one operational wavelength, tuned for best performance for the level of scattering of the particular underwater environment. Laboratory-based experiments were performed using average optical powers of less than 1 mW and depth profiles were acquired at up to 8 attenuation lengths between the transceiver and target. The second transceiver system was based on a complementary metal-oxide semiconductor (CMOS) SPAD detector array in a bistatic configuration. It comprised an array of 192 x 128 SPAD detectors, with each detector having an integrated time to digital converter, and a laser diode operating at a wavelength of 670 nm, a repetition rate of 40 MHz, and average optical power up to 9 mW. The experiments demonstrated the recovery of intensity and depth profiles associated with moving targets at up to 4 attenuation lengths. Using data from both systems, various image processing techniques were investigated to reconstruct target depth and intensity profiles in highly scattering underwater environments.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Underwater depth imaging using time-correlated single-photon counting
    Maccarone, Aurora
    McCarthy, Aongus
    Ren, Ximing
    Warburton, Ryan E.
    Wallace, Andy M.
    Moffat, James
    Petillot, Yvan
    Buller, Gerald S.
    [J]. OPTICS EXPRESS, 2015, 23 (26): : 33911 - 33926
  • [2] Underwater Depth Imaging using Time-correlated Single Photon Counting
    Maccarone, Aurora
    McCarthy, Aongus
    Ren, Ximing
    Warburton, Ryan E.
    Wallace, Andy M.
    Moffat, James
    Petillot, Yvan
    Buller, Gerald S.
    [J]. ADVANCED PHOTON COUNTING TECHNIQUES IX, 2015, 9492
  • [3] Depth imaging in highly scattering underwater environments using Time-Correlated Single-Photon Counting
    Maccarone, Aurora
    McCarthy, Aongus
    Halimi, Abderrahim
    Tobin, Rachael
    Wallace, Andy M.
    Petillot, Yvan
    McLaughlin, Steve
    Buller, Gerald S.
    [J]. EMERGING IMAGING AND SENSING TECHNOLOGIES, 2016, 9992
  • [4] Depth imaging through obscurants using time-correlated single-photon counting
    Tobin, Rachael
    Halimi, Abderrahim
    McCarthy, Aongus
    Laurenzis, Martin
    Christnacher, Frank
    Buller, Gerald S.
    [J]. ADVANCED PHOTON COUNTING TECHNIQUES XII, 2018, 10659
  • [5] Kilometer range depth imaging using time-correlated single-photon counting
    Buller, Gerald S.
    Krichel, Nils J.
    McCarthy, Aongus
    Gemmell, Nathan R.
    Tanner, Michael G.
    Natarajan, Chandra M.
    Ren, Ximing
    Hadfield, Robert H.
    [J]. INFRARED SENSORS, DEVICES, AND APPLICATIONS AND SINGLE PHOTON IMAGING II, 2011, 8155
  • [6] Long-range depth imaging using time-correlated single-photon counting
    Krichel, Nils J.
    McCarthy, Aongus
    Wallace, Andrew M.
    Ye, Jing
    Buller, Gerald S.
    [J]. DETECTORS AND IMAGING DEVICES: INFRARED, FOCAL PLANE, SINGLE PHOTON, 2010, 7780
  • [7] Fluorescence lifetime imaging by time-correlated single-photon counting
    Becker, W
    Bergmann, A
    Hink, MA
    König, K
    Benndorf, K
    Biskup, C
    [J]. MICROSCOPY RESEARCH AND TECHNIQUE, 2004, 63 (01) : 58 - 66
  • [8] Laser depth measurement based on time-correlated single-photon counting
    Massa, JS
    Wallace, AM
    Buller, GS
    Fancey, SJ
    Walker, AC
    [J]. OPTICS LETTERS, 1997, 22 (08) : 543 - 545
  • [9] Laser depth measurement based on time-correlated single-photon counting
    Department of Physics, Heriot-Watt University, Riccarton, Edinburgh EH14 4AS, United Kingdom
    不详
    [J]. Opt. Lett, 8 (543-545):
  • [10] Imaging diffusion in living cells using time-correlated single-photon counting
    Roth, Christian M.
    Heinlein, Pia I.
    Heilemann, Mike
    Herten, Dirk-Peter
    [J]. ANALYTICAL CHEMISTRY, 2007, 79 (19) : 7340 - 7345