• Chinese Optics Letters
  • Vol. 19, Issue 9, 093301 (2021)
Kohei Suzuki1, Minori Tao2, Yuki Maeda1, Hirotaka Nakayama3, Ren Noguchi1, Minoru Oikawa4, Yuichiro Mori4, Takashi Kakue5, Tomoyoshi Shimobaba5, Tomoyoshi Ito5, and Naoki Takada4、*
Author Affiliations
  • 1Graduate School of Integrated Arts and Sciences, Kochi University, Kochi 780-8520, Japan
  • 2Faculty of Science, Kochi University, Kochi 780-8520, Japan
  • 3National Astronomical Observatory of Japan, Tokyo 181-8588, Japan
  • 4Research and Education Faculty, Kochi University, Kochi 780-8520, Japan
  • 5Graduate School of Engineering, Chiba University, Chiba 263-8522, Japan
  • show less
    DOI: 10.3788/COL202119.093301 Cite this Article Set citation alerts
    Kohei Suzuki, Minori Tao, Yuki Maeda, Hirotaka Nakayama, Ren Noguchi, Minoru Oikawa, Yuichiro Mori, Takashi Kakue, Tomoyoshi Shimobaba, Tomoyoshi Ito, Naoki Takada. High-speed playback of spatiotemporal division multiplexing holographic 3D video stored in a solid-state drive using a digital micromirror device[J]. Chinese Optics Letters, 2021, 19(9): 093301 Copy Citation Text show less
    References

    [1] S. A. Benton, J. V. M. Bove. Holographic Imaging(2008).

    [2] T. Sugie, T. Akamatsu, T. Nishitsuji, R. Hirayama, N. Masuda, H. Nakayama, Y. Ichihashi, A. Shiraki, M. Oikawa, N. Takada, Y. Endo, T. Kakue, T. Shimobaba, T. Ito. High-performance parallel computing for next generation holographic imaging. Nat. Electron., 1, 254(2018).

    [3] N. Masuda, T. Ito, T. Tanaka, A. Shiraki, T. Sugie. Computer generated holography using a graphics processing unit. Opt. Express, 14, 603(2006).

    [4] Y. Pan, X. Xu, S. Solanki, X. Liang, R. B. A. Tanjung, C. Tan, T.-C. Chong. Fast CGH computation using S-LUT on GPU. Opt. Express, 17, 18543(2009).

    [5] P. Tsang, W. K. Cheung, T.-C. Poon, C. Zhou. Holographic video at 40 frames per second for 4-million object points. Opt. Express, 19, 15205(2011).

    [6] J. Weng, T. Shimobaba, N. Okada, H. Nakayama, M. Oikawa, N. Masuda, T. Ito. Generation of real-time large computer generated hologram using wavefront recording method. Opt. Express, 20, 4018(2012).

    [7] G. Li, K. Hong, J. Yeom, N. Chen, J.-H. Park, N. Kim, B. Lee. Acceleration method for computer generated spherical hologram calculation of real objects using graphics processing unit. Chin. Opt. Lett., 12, 060016(2014).

    [8] Z. Chen, X. Sang, Q. Lin, J. Li, X. Yu, X. Gao, B. Yan, C. Yu, W. Dou, L. Xiao. Acceleration for computer-generated hologram in head-mounted display with effective diffraction area recording method for eyes. Chin. Opt. Lett., 14, 080901(2016).

    [9] Y. Zhang, J. Liu, X. Li, Y. Wang. Fast processing method to generate gigabyte computer generated holography for three-dimensional dynamic holographic display. Chin. Opt. Lett., 14, 030901(2016).

    [10] D.-W. Kim, Y.-H. Lee, Y.-H. Seo. High-speed computer-generated hologram based on resource optimization for block-based parallel processing. Appl. Opt., 57, 3511(2018).

    [11] H. Niwase, N. Takada, H. Araki, H. Nakayama, A. Sugiyama, T. Kakue, T. Shimobaba, T. Ito. Real-time spatiotemporal division multiplexing electroholography with a single graphics processing unit utilizing movie features. Opt. Express, 22, 28052(2014).

    [12] N. Takada, T. Shimobaba, H. Nakayama, A. Shiraki, N. Okada, M. Oikawa, N. Masuda, T. Ito. Fast high-resolution computer-generated hologram computation using multiple graphics processing unit cluster system. Appl. Opt., 51, 7303(2012).

    [13] H. Niwase, N. Takada, H. Araki, Y. Maeda, M. Fujiwara, H. Nakayama, T. Kakue, T. Shimobaba, T. Ito. Real-time electroholography using a multiple-graphics processing unit cluster system with a single spatial light modulator and the InfiniBand network. Opt. Eng., 55, 093108(2016).

    [14] H. Araki, N. Takada, S. Ikawa, H. Niwase, Y. Maeda, M. Fujiwara, H. Nakayama, M. Oikawa, T. Kakue, T. Shimobaba, T. Ito. Fast time-division color electro-holography using a multiple-graphics processing unit cluster system with a single spatial light modulator. Chin. Opt. Lett., 15, 120902(2017).

    [15] S. Ikawa, N. Takada, H. Araki, H. Niwase, H. Sannomiya, H. Nakayama, M. Oikawa, Y. Mori, T. Kakue, T. Shimobaba, T. Ito. Real-time color holographic video reconstruction using multiple-graphics processing unit cluster acceleration and three spatial light modulators. Chin. Opt. Lett., 18, 010901(2020).

    [16] H. Sannomiya, N. Takada, T. Sakaguchi, H. Nakayama, M. Oikawa, Y. Mori, T. Kakue, T. Shimobaba, T. Ito. Real-time electroholography using a single spatial light modulator and a cluster of graphics-processing units connected by a gigabit Ethernet network. Chin. Opt. Lett., 18, 070901(2020).

    [17] P. Tsang, T.-C. Poon, W. K. Cheung, J.-P. Liu. Computer generation of binary Fresnel holography. Appl. Opt., 50, B88(2011).

    [18] W. K. Cheung, P. Tsang, T.-C. Poon, C. Zhou. Enhanced method for the generation of binary Fresnel holograms based on grid-cross downsampling. Chin. Opt. Lett., 9, 120005(2011).

    [19] P. Tsang, W. K. Cheung, T.-C. Poon, J.-P. Liu. An enhanced method for generation of binary Fresnel hologram based on adaptive and uniform grid-cross down-sampling. Opt. Commun., 285, 4027(2012).

    [20] P. W. M. Tsang, T.-C. Poon, A. S. M. Jiao. Embedding intensity image in grid-cross down-sampling (GCD) binary holograms based on block truncation coding. Opt. Commun., 304, 62(2013).

    [21] P. W. M. Tsang, T.-C. Poon. Generation of integrated binary Fresnel hologram for multiple images. J. Opt., 16, 105403(2014).

    [22] Y. Takaki, M. Yokouchi. Speckle-free and grayscale hologram reconstruction using time-multiplexing technique. Opt. Express, 19, 7567(2011).

    [23] Y. Mori, T. Fukuoka, T. Nomura. Speckle reduction in holographic projection by random pixel separation with time multiplexing. Appl. Opt., 53, 8182(2014).

    [24] B. Lee, D. Yoo, J. Jeong, S. Lee, D. Lee, B. Lee. Wide-angle speckleless DMD holographic display using structured illumination with temporal multiplexing. Opt. Lett., 45, 2148(2020).

    [25] J-P. Liu, M-H. Wu, P. W. M. Tsang. 3D display by binary computer-generated holograms with localized random down-sampling and adaptive intensity accumulation. Opt. Express, 28, 24526(2020).

    [26] N. Takada, M. Fujiwara, C. W. Ooi, Y. Maeda, H. Nakayama, T. Kakue, T. Shimobaba, T. Ito. High-speed 3-D electroholographic movie playback using a digital micromirror device. IEICE Trans. Electron., E100.C, 978(2017).

    [27] M. Fujiwara, N. Takada, H. Araki, C. W. Ooi, S. Ikawa, Y. Maeda, H. Niwase, T. Kakue, T. Shimobaba, T. Ito. Gradation representation method using binary-weighted computer-generated hologram based on pulse width modulation. Chin. Opt. Lett., 15, 060901(2017).

    [28] M. Fujiwara, N. Takada, H. Araki, S. Ikawa, Y. Maeda, H. Niwase, M. Oikawa, T. Kakue, T. Shimobaba, T. Ito. Color representation method using RGB color binary-weighted computer-generated holograms. Chin. Opt. Lett., 16, 080901(2018).

    [29] Y. Sando, K. Satoh, D. Barada, T. Yatagai. Real-time interactive holographic 3D display with a 360° horizontal viewing zone. Appl. Opt., 58, G1(2019).

    [30] Y. Takaki, K. Fujii. Viewing-zone scanning holographic display using a MEMS spatial light modulator. Opt. Express, 22, 24713(2014).

    [31] Y. Yamamoto, H. Nakayama, N. Takada, T. Nishitsuji, T. Sugie, T. Kakue, T. Shimobaba, T. Ito. Large-scale electroholography by HORN-8 from a point-cloud model with 400,000 points. Opt. Express, 26, 34259(2018).

    [32] H. Sannomiya, N. Takada, K. Suzuki, T. Sakaguchi, H. Nakayama, M. Oikawa, Y. Mori, T. Kakue, T. Shimobaba, T. Ito. Real-time spatiotemporal division multiplexing electroholography for 1,200,000 object points using multiple-graphics processing unit cluster. Chin. Opt. Lett., 18, 070901(2020).

    [33] . DLPC900 Programmer’s Guide(2014).

    Data from CrossRef

    [1] Vladimir Semenov, A. Lukyanov, E.H. Abderrazzak, P.D. Tung, V. Mladenovic, M. Petkovic, S. Antipov. Registration of the dispersed composition of aerosol media by the holographic method. E3S Web of Conferences, 279, 02001(2021).

    Kohei Suzuki, Minori Tao, Yuki Maeda, Hirotaka Nakayama, Ren Noguchi, Minoru Oikawa, Yuichiro Mori, Takashi Kakue, Tomoyoshi Shimobaba, Tomoyoshi Ito, Naoki Takada. High-speed playback of spatiotemporal division multiplexing holographic 3D video stored in a solid-state drive using a digital micromirror device[J]. Chinese Optics Letters, 2021, 19(9): 093301
    Download Citation