• Chinese Optics Letters
  • Vol. 15, Issue 12, 120902 (2017)
Hiromitsu Araki1, Naoki Takada2、*, Shohei Ikawa3, Hiroaki Niwase1, Yuki Maeda1, Masato Fujiwara1, Hirotaka Nakayama4, Minoru Oikawa2, Takashi Kakue5, Tomoyoshi Shimobaba5, and Tomoyoshi Ito5
Author Affiliations
  • 1Graduate School of Integrated Arts and Sciences, Kochi University, Kochi, 780-8520, Japan
  • 2Science Department, Natural Sciences Cluster, Research and Education Faculty, Kochi University, Kochi 780-8520, Japan
  • 3Faculty of Science, Kochi University, Kochi 780-8520, Japan
  • 4Center for Computational Astrophysics, National Astronomical Observatory of Japan, Mitaka-shi 181-8588, Japan
  • 5Graduate School of Engineering, Chiba University, Chiba 263-8522, Japan
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    DOI: 10.3788/COL201715.120902 Cite this Article Set citation alerts
    Hiromitsu Araki, Naoki Takada, Shohei Ikawa, Hiroaki Niwase, Yuki Maeda, Masato Fujiwara, Hirotaka Nakayama, Minoru Oikawa, Takashi Kakue, Tomoyoshi Shimobaba, Tomoyoshi Ito. Fast time-division color electroholography using a multiple-graphics processing unit cluster system with a single spatial light modulator[J]. Chinese Optics Letters, 2017, 15(12): 120902 Copy Citation Text show less
    Outline of time-division color electroholography.
    Fig. 1. Outline of time-division color electroholography.
    Proposed multiGPU cluster system for fast time-division color electroholography.
    Fig. 2. Proposed multiGPU cluster system for fast time-division color electroholography.
    Timing chart of fast time-division color electroholography using the proposed multiGPU cluster system.
    Fig. 3. Timing chart of fast time-division color electroholography using the proposed multiGPU cluster system.
    Optical setup for fast color electroholography in the proposed system.
    Fig. 4. Optical setup for fast color electroholography in the proposed system.
    RGB-colored 3D objects for the original color 3D movie; (left) the red-colored 3D object comprising 19,168 points; (center) the green-colored 3D object comprising 27,012 points; (right) the blue-colored 3D object comprising 18,228 points.
    Fig. 5. RGB-colored 3D objects for the original color 3D movie; (left) the red-colored 3D object comprising 19,168 points; (center) the green-colored 3D object comprising 27,012 points; (right) the blue-colored 3D object comprising 18,228 points.
    (left) Snapshots of the original color 3D movie and (right) the reconstructed 3D movie using the proposed method (video 1).
    Fig. 6. (left) Snapshots of the original color 3D movie and (right) the reconstructed 3D movie using the proposed method (video 1).
    Hiromitsu Araki, Naoki Takada, Shohei Ikawa, Hiroaki Niwase, Yuki Maeda, Masato Fujiwara, Hirotaka Nakayama, Minoru Oikawa, Takashi Kakue, Tomoyoshi Shimobaba, Tomoyoshi Ito. Fast time-division color electroholography using a multiple-graphics processing unit cluster system with a single spatial light modulator[J]. Chinese Optics Letters, 2017, 15(12): 120902
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