• Chinese Journal of Lasers
  • Vol. 47, Issue 4, 409002 (2020)
We Ping1、2、3、4, Li Xinyang1、3、*, Luo Xi1、3, and Li Jianfeng2
Author Affiliations
  • 1Key Laboratory on Adaptive Optics, Chinese Academy of Sciences, Chengdu, Sichuan 610209, China
  • 2School of Optoelectronic Science and Engineering, University of Electronic Science and Technology of China, Chengdu, Sichuan 610054, China
  • 3Institute of Optics and Electronics, Chinese Academy of Sciences, Chengdu, Sichuan 610209, China
  • 4University of Chinese Academy of Sciences, Beijing 100049, China
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    DOI: 10.3788/CJL202047.0409002 Cite this Article Set citation alerts
    We Ping, Li Xinyang, Luo Xi, Li Jianfeng. Influence of Lack of Light in Partial Subapertures on Wavefront Reconstruction for Shack-Hartmann Wavefront Sensor[J]. Chinese Journal of Lasers, 2020, 47(4): 409002 Copy Citation Text show less
    Working principle of SHWS. (a) Schematic of working principle of SHWS; (b) detection principle of average slope of single wave surface
    Fig. 1. Working principle of SHWS. (a) Schematic of working principle of SHWS; (b) detection principle of average slope of single wave surface
    Simulation and verification of random distorted wavefront phase different of atmospheric turbulence. (a) Typical simulated wavefront phase; (b) theoretical and simulation values of Zernike coefficient variance
    Fig. 2. Simulation and verification of random distorted wavefront phase different of atmospheric turbulence. (a) Typical simulated wavefront phase; (b) theoretical and simulation values of Zernike coefficient variance
    Subaperture arrangement and light pattern of SHWS. (a) Subaperture segmentation; (b) light pattern
    Fig. 3. Subaperture arrangement and light pattern of SHWS. (a) Subaperture segmentation; (b) light pattern
    Southwell model
    Fig. 4. Southwell model
    Reconstruction process diagram of modal and zonal algorithms. (a) Zonal algorithm: original wavefront; (b) zonal algorithm: reconstructed wavefront; (c) zonal algorithm: residual plot; (d) modal algorithm: original wavefront; (e) modal algorithm: reconstructed wavefront; (f) modal algorithm: residual plot
    Fig. 5. Reconstruction process diagram of modal and zonal algorithms. (a) Zonal algorithm: original wavefront; (b) zonal algorithm: reconstructed wavefront; (c) zonal algorithm: residual plot; (d) modal algorithm: original wavefront; (e) modal algorithm: reconstructed wavefront; (f) modal algorithm: residual plot
    Wavefront reconstruction error impact factors of the slope zeroing for single subaperture. (a) Zonal algorithm; (b) modal algorithm
    Fig. 6. Wavefront reconstruction error impact factors of the slope zeroing for single subaperture. (a) Zonal algorithm; (b) modal algorithm
    Wavefront reconstruction error impact factors after single subaperture removal
    Fig. 7. Wavefront reconstruction error impact factors after single subaperture removal
    Discontinuous subaperture region A--J of lack of light
    Fig. 8. Discontinuous subaperture region A--J of lack of light
    Continuous subaperture region K--P of lack of light
    Fig. 9. Continuous subaperture region K--P of lack of light
    Relative wavefront reconstruction errors of subapertures slope zeroing and removal. (a) A--J region; (b) K--P region
    Fig. 10. Relative wavefront reconstruction errors of subapertures slope zeroing and removal. (a) A--J region; (b) K--P region
    We Ping, Li Xinyang, Luo Xi, Li Jianfeng. Influence of Lack of Light in Partial Subapertures on Wavefront Reconstruction for Shack-Hartmann Wavefront Sensor[J]. Chinese Journal of Lasers, 2020, 47(4): 409002
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