• Laser & Optoelectronics Progress
  • Vol. 56, Issue 15, 150002 (2019)
Xiaoyu Jiang1、*, Fan Fan1、2, Xingpeng Yan1, Teng Zhang1, Chao Han1, Chenqing Wang1, and Haiyang Yu1
Author Affiliations
  • 1 Department of Information commuication, Academy of Army Armored Forces, Chinese People's Liberation Army, Beijing 100072, China
  • 2 Institute of Construction and Development, Academy of Army Research, Chinese People's Liberation Army, Beijing 100012, China
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    DOI: 10.3788/LOP56.150002 Cite this Article Set citation alerts
    Xiaoyu Jiang, Fan Fan, Xingpeng Yan, Teng Zhang, Chao Han, Chenqing Wang, Haiyang Yu. Review of Development of Holographic Stereogram Printing Technology[J]. Laser & Optoelectronics Progress, 2019, 56(15): 150002 Copy Citation Text show less
    Holographic stereogram of ultragram. (a) Rearranged perspective image of full parallax holographic stereogram with infinite camera; (b) principle of double-cone sampling method
    Fig. 1. Holographic stereogram of ultragram. (a) Rearranged perspective image of full parallax holographic stereogram with infinite camera; (b) principle of double-cone sampling method
    3D map of Zebra Imaging. (a) Holographic map of battlefield environment; (b) holographic map of New York city
    Fig. 2. 3D map of Zebra Imaging. (a) Holographic map of battlefield environment; (b) holographic map of New York city
    Direct-writing digital holography and centred camera transform of Geola. (a) Principle of direct-writing digital holography; (b) principle of centred camera image transform
    Fig. 3. Direct-writing digital holography and centred camera transform of Geola. (a) Principle of direct-writing digital holography; (b) principle of centred camera image transform
    Holographic stereogram printing system designed by Geola. (a) Pulse laser printing system of Geola; (b) full color hologphic stereogram with high quality and large format made by this system
    Fig. 4. Holographic stereogram printing system designed by Geola. (a) Pulse laser printing system of Geola; (b) full color hologphic stereogram with high quality and large format made by this system
    Mixed molded holograms with public and optical security features. (a) Photographs of hologram illuminated from direction where deep 3D image is clearly visible; (b) photograph of hologram illuminated from direction where embossed inscriptions are clearly visible; (c)(d) microphotographs of embossed holograms with different magnifications
    Fig. 5. Mixed molded holograms with public and optical security features. (a) Photographs of hologram illuminated from direction where deep 3D image is clearly visible; (b) photograph of hologram illuminated from direction where embossed inscriptions are clearly visible; (c)(d) microphotographs of embossed holograms with different magnifications
    Composite diffraction lens based on holographic optical elements. (a) Composite diffraction lens obtained by holographic printing method; (b) FOV of composite diffraction lens
    Fig. 6. Composite diffraction lens based on holographic optical elements. (a) Composite diffraction lens obtained by holographic printing method; (b) FOV of composite diffraction lens
    FOV expansion of hologram by convex parabolic lens. (a) principle of converting plane wave into spherical wave by convex parabolic mirror; (b) expansion of FOV by convex parabolic mirror; (c) horizontal lateral profile of virtually converging point after expanding FOV
    Fig. 7. FOV expansion of hologram by convex parabolic lens. (a) principle of converting plane wave into spherical wave by convex parabolic mirror; (b) expansion of FOV by convex parabolic mirror; (c) horizontal lateral profile of virtually converging point after expanding FOV
    Basic principle of EPISM method and reconstructed image. (a) Acquisition of single hogel image segments with effective perspecitve; (b) msaic of image segments with effective perspecitve
    Fig. 8. Basic principle of EPISM method and reconstructed image. (a) Acquisition of single hogel image segments with effective perspecitve; (b) msaic of image segments with effective perspecitve
    Analysis of EPISM method by optical transfer function. (a) Exit pupil function model of holographic stereogram based on EPISM method; (b) optical reconstruction images under different conditions
    Fig. 9. Analysis of EPISM method by optical transfer function. (a) Exit pupil function model of holographic stereogram based on EPISM method; (b) optical reconstruction images under different conditions
    Distributions of object light under different conditions. (a) Distribution of object light when diffuser is used; (b) convergence of light when diffuser and field lens are used
    Fig. 10. Distributions of object light under different conditions. (a) Distribution of object light when diffuser is used; (b) convergence of light when diffuser and field lens are used
    Numerical reconstruction principle of holographic stereogram
    Fig. 11. Numerical reconstruction principle of holographic stereogram
    Effects of different geometric distortion factors on reconstructed image of holographic stereogram. (a) κ=0; (b) κ=0.000001; (c) κ=0.00001; (d) κ=0.0001; (e) κ=0.001
    Fig. 12. Effects of different geometric distortion factors on reconstructed image of holographic stereogram. (a) κ=0; (b) κ=0.000001; (c) κ=0.00001; (d) κ=0.0001; (e) κ=0.001
    Comparison between numerical reconstruction images and optical experimental results of EPISM holographic stereogram
    Fig. 13. Comparison between numerical reconstruction images and optical experimental results of EPISM holographic stereogram
    Xiaoyu Jiang, Fan Fan, Xingpeng Yan, Teng Zhang, Chao Han, Chenqing Wang, Haiyang Yu. Review of Development of Holographic Stereogram Printing Technology[J]. Laser & Optoelectronics Progress, 2019, 56(15): 150002
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