• Acta Optica Sinica
  • Vol. 43, Issue 5, 0509002 (2023)
Xiaofeng Cai1、1、2, Gongyu Song1、1、2, Xin Yang, Zengyao Wang1、1、2, Qing Wen1、1、2, Fuyang Xu1、1、2、*, and Zhijun Ren1、1、2
Author Affiliations
  • 1Institute of Information Optics, College of Physics and Electronic Information Engineering, Zhejiang Normal University, Jinhua 321004, Zhejiang, China
  • 1Lochn Optics-Micro/Nano Photonics Research Center, Shenzhen 518000, Guangdong, China
  • 2Key Laboratory of Researching Optical Information Detecting and Display Technology in Zhejiang Province, Jinhua 321004, Zhejiang, China
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    DOI: 10.3788/AOS221697 Cite this Article Set citation alerts
    Xiaofeng Cai, Gongyu Song, Xin Yang, Zengyao Wang, Qing Wen, Fuyang Xu, Zhijun Ren. Compact Phase-Only Holographic Near-Eye 3D Display[J]. Acta Optica Sinica, 2023, 43(5): 0509002 Copy Citation Text show less
    Schematic diagram of holographic near-eye 3D display system
    Fig. 1. Schematic diagram of holographic near-eye 3D display system
    Derivation diagram of quadratic phase factor used to control zi
    Fig. 2. Derivation diagram of quadratic phase factor used to control zi
    Schematic diagram of hologram iterative algorithm
    Fig. 3. Schematic diagram of hologram iterative algorithm
    Quadratic phase and its spectrum. (a) Phase; (b) spectrum
    Fig. 4. Quadratic phase and its spectrum. (a) Phase; (b) spectrum
    Numerical reconstruction and partial local magnification of different depth planes. (a)-(d) Reconstructions with initial quadratic phase; (e)-(h) reconstructions with initial random phase; (i)(k) partial local magnification of Fig. 5(a); (j)(l) partial local magnification of Fig. 5(e)
    Fig. 5. Numerical reconstruction and partial local magnification of different depth planes. (a)-(d) Reconstructions with initial quadratic phase; (e)-(h) reconstructions with initial random phase; (i)(k) partial local magnification of Fig. 5(a); (j)(l) partial local magnification of Fig. 5(e)
    PSNR and CC of reconstructions varying with number of iterations. (a)(b) PSNR; (c)(d) CC
    Fig. 6. PSNR and CC of reconstructions varying with number of iterations. (a)(b) PSNR; (c)(d) CC
    Optical reconstructions obtained by camera focused on different depth planes. (a)-(d) Reconstructions with initial quadratic phase; (e)-(h) reconstructions with initial random phase
    Fig. 7. Optical reconstructions obtained by camera focused on different depth planes. (a)-(d) Reconstructions with initial quadratic phase; (e)-(h) reconstructions with initial random phase
    Numerical reconstructions of 3D model focused on different depth planes with occlusions. (a)-(d) Original images at different depths; (e)-(h) numerical reconstructions at different depths with initial quadratic phase; (i)-(l) numerical reconstructions at different depths with initial random phase
    Fig. 8. Numerical reconstructions of 3D model focused on different depth planes with occlusions. (a)-(d) Original images at different depths; (e)-(h) numerical reconstructions at different depths with initial quadratic phase; (i)-(l) numerical reconstructions at different depths with initial random phase
    [in Chinese]
    Fig. 9. [in Chinese]
    PSNR and CC varying with number of iterations. (a) PSNR; (b) CC
    Fig. 10. PSNR and CC varying with number of iterations. (a) PSNR; (b) CC
    Relationship between real image depth range and eyepiece focal length
    Fig. 11. Relationship between real image depth range and eyepiece focal length
    Xiaofeng Cai, Gongyu Song, Xin Yang, Zengyao Wang, Qing Wen, Fuyang Xu, Zhijun Ren. Compact Phase-Only Holographic Near-Eye 3D Display[J]. Acta Optica Sinica, 2023, 43(5): 0509002
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