Author Affiliations
Abstract
1 Faculty of Science, Kochi University, Kochi 780-8520, Japan
2 Research and Education Faculty, Kochi University, Kochi 780-8520, Japan
3 Graduate School of Integrated Arts and Sciences, Kochi University, Kochi 780-8520, Japan
4 Center for Computational Astrophysics, National Astronomical Observatory of Japan, Mitaka-shi 181-8588, Japan
5 Graduate School of Engineering, Chiba University, Chiba 263-8522, Japan
We demonstrate real-time three-dimensional (3D) color video using a color electroholographic system with a cluster of multiple-graphics processing units (multi-GPU) and three spatial light modulators (SLMs) corresponding respectively to red, green, and blue (RGB)-colored reconstructing lights. The multi-GPU cluster has a computer-generated hologram (CGH) display node containing a GPU, for displaying calculated CGHs on SLMs, and four CGH calculation nodes using 12 GPUs. The GPUs in the CGH calculation node generate CGHs corresponding to RGB reconstructing lights in a 3D color video using pipeline processing. Real-time color electroholography was realized for a 3D color object comprising approximately 21,000 points per color.
color electroholography real-time electroholography multiple-graphics processing unit cluster graphics processing unit 
Chinese Optics Letters
2020, 18(1): 010901
Author Affiliations
Abstract
1 Graduate School of Integrated Arts and Sciences, Kochi University, Kochi 780-8520, Japan
2 Science Department, Natural Sciences Cluster, Research and Education Faculty, Kochi University, Kochi 780-8520, Japan
3 Faculty of Science, Kochi University, Kochi 780-8520, Japan
4 Graduate School of Engineering, Chiba University, Chiba 263-8522, Japan
We propose a method for color electroholography using a simple red–green–blue (RGB) gradation representation method without controlling the respective brightness of the reference RGB-colored lights. The proposed method uses RGB multiple bit planes comprising RGB binary-weighted computer-generated holograms with various light transmittances. The object points of a given three-dimensional (3D) object are assigned to RGB multiple bit planes according to their RGB gradation levels. The RGB multiple bit planes are sequentially displayed in a time-division-multiplexed manner. Consequently, the proposed method yields a color gradation representation of a reconstructed 3D object.
090.1705 Color holography 090.1760 Computer holography 
Chinese Optics Letters
2018, 16(8): 080901
Author Affiliations
Abstract
1 Graduate School of Integrated Arts and Sciences, Kochi University, Kochi, 780-8520, Japan
2 Science Department, Natural Sciences Cluster, Research and Education Faculty, Kochi University, Kochi 780-8520, Japan
3 Faculty of Science, Kochi University, Kochi 780-8520, Japan
4 Graduate School of Engineering, Chiba University, Chiba, 263-8522, Japan
We propose a simple gradation representation method using a binary-weighted computer-generated hologram (CGH) to be displayed on a high-speed spatial light modulator that can be controlled by the pulse-width modulation technique. The proposed method uses multiple bit planes comprising binary-weighted CGHs with various pulse widths. The object points of a three-dimensional (3D) object are assigned to multiple bit planes according to their gray levels. The bit planes are sequentially displayed in a time-division-multiplexed manner. Consequently, the proposed method realizes a gradation representation of a reconstructed 3D object.
090.1760 Computer holography 090.0090 Holography 090.2870 Holographic display 
Chinese Optics Letters
2017, 15(6): 060901
Author Affiliations
Abstract
1 Graduate School of Integrated Arts and Sciences, Kochi University, Kochi, 780-8520, Japan
2 Science Department, Natural Sciences Cluster, Research and Education Faculty, Kochi University, Kochi 780-8520, Japan
3 Faculty of Science, Kochi University, Kochi 780-8520, Japan
4 Center for Computational Astrophysics, National Astronomical Observatory of Japan, Mitaka-shi 181-8588, Japan
5 Graduate School of Engineering, Chiba University, Chiba 263-8522, Japan
We demonstrate fast time-division color electroholography using a multiple-graphics-processing-unit (GPU) cluster system with a spatial light modulator and a controller to switch the color of the reconstructing light. The controller comprises a universal serial bus module to drive the liquid crystal optical shutters. By using the controller, the computer-generated hologram (CGH) display node of the multiple-GPU cluster system synchronizes the display of the CGH with the color switching of the reconstructing light. Fast time-division color electroholography at 20 fps is realized for a three-dimensional object comprising 21,000 points per color when 13 GPUs are used in a multiple-GPU cluster system.
090.1705 Color holography 090.5694 Real-time holography 
Chinese Optics Letters
2017, 15(12): 120902

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