[1] Mcmanamon P F, Banks P, Beck J, et al. A comparison flash lidar detector options[C]//SPIE Defense+Security, 2016, 9832: 983202.
[2] Laurenzis M, Christnacher F, Monnin D. Long-range three-dimensional active imaging with superresolution depth mapping[J]. Optics Letters, 2007, 32(21): 3146-3148.
[3] Molebny V, McManamon P, Steinvall O, et al. Laser radar: historical prospective-from the East to the West [J]. Optical Engineering, 2017, 56(3): 031220.
[4] Schmidt B,Tuvey S, Banks P S. 3D sensor development to support EDL(entry, descent, and landing) for autonomous missions to Mars[C]// Proceedings of SPIE, 2012, 8519: 851905.
[5] Mcmanamon P. Review of ladar: a historic, yet emerging, sensor technology with rich phenomenology[J]. Optical Engineering, 2012, 51(6): 0901.
[6] Jo S, Kong H J, Bang H. High definition 3D imaging lidar system using CCD[C]//SPIE Sensors, Systems, and Next-Generation Satellites XX, 2016, 10000: 100001Y.
[7] Jo S, Kong H J, Bang H, et al. High range precision laser radar system using a Pockels cell and a quadrant photodiode[J]. Applied Physics B, 2016, 122(5): 1-5.
[8] Dussault D, Hoess P. Noise performance comparison of ICCD with CCD and EMCCD cameras[C]//SPIE International Symposium on Optical Science and Technology-International Society for Optics and Photonics, 2004, 5563: 195-204.
[9] Bai Caixun, Li Jianxin, Zhou Jianqiang, et al. Interferometric hyperspectral polarization imaging method based on micro-polarization array[J]. Infrared and Laser Engineering, 2017, 46(1): 0136003. (in Chinese)
[12] Zhang P, Du X, Zhao J, et al. High resolution flash three-dimensional LIDAR systems based on polarization modulation[J]. Applied Optics, 2017, 56(13): 3889-3894.
[13] Chen Z, Liu B, Liu E, et al. Adaptive polarization-modulated Method for high-resolution 3D imaging[J]. IEEE Photonics Technology Letters, 2016, 28(3): 295-298.