ABSTRACT
No abstract available.
Supplemental Material
- Jungkwuen An, Kanghee Won, Young Kim, Jong-Young Hong, Hojung Kim, Yongkyu Kim, Hoon Song, Chilsung Choi, Yunhee Kim, Juwon Seo, Alexander Morozov, Hyunsik Park, Sunghoon Hong, Sungwoo Hwang, Kichul Kim, and Hong-Seok Lee. 2020. Slim-panel holographic video display. Nature Communications 11, 1 (2020). https://doi.org/10.1038/s41467-020-19298-4Google Scholar
- Jonah Friedman and Andrew C. Jones. 2015. Fully Automatic ID Mattes with Support for Motion Blur and Transparency. In ACM SIGGRAPH 2015 Posters(SIGGRAPH ’15). Article 47. https://doi.org/10.1145/2787626.2787629Google Scholar
- Peter Hillman. 2018. A Scheme for Storing Object ID Manifests in OpenEXR Images. In Proceedings of the 8th Annual Digital Production Symposium(DigiPro ’18). Article 9. https://doi.org/10.1145/3233085.3233086Google Scholar
Digital Library
- Yifan Peng, Suyeon Choi, Nitish Padmanaban, and Gordon Wetzstein. 2020. Neural Holography with Camera-in-the-Loop Training. ACM Trans. Graph. 39, 6, Article 185 (2020). https://doi.org/10.1145/3414685.3417802Google Scholar
Digital Library
- Erdem Sahin, Elena Stoykova, Jani Mäkinen, and Atanas Gotchev. 2020. Computer-Generated Holograms for 3D Imaging: A Survey. ACM Comput. Surv. 53, 2, Article 32 (2020). https://doi.org/10.1145/3378444Google Scholar
- Liang Shi, Beichen Li, Changil Kim, Petr Kellnhofer, and Wojciech Matusik. 2021. Towards real-time photorealistic 3D holography with deep neural networks. Nature 591, 7849 (2021). https://doi.org/10.1038/s41586-020-03152-0Google Scholar
- Turner Whitted. 1980. An Improved Illumination Model for Shaded Display. Commun. ACM 23, 6 (1980). https://doi.org/10.1145/358876.358882Google Scholar
- T. Widjanarko, M. El Guendy, A. O. Spiess, D. M. Sullivan, T. J. Durrant, O. A. Tastemur, A. J. Newman, D. F. Milne, and A. Kaczorowski. 2020. Clearing key barriers to mass adoption of augmented reality with computer-generated holography. In Optical Architectures for Displays and Sensing in Augmented, Virtual, and Mixed Reality (AR, VR, MR), Vol. 11310. SPIE. https://doi.org/10.1117/12.2544979Google Scholar
Index Terms
Enabling Reflective & Refractive Depth Representation in Computer-Generated Holography
Recommendations
Hogel-Free Holography
Holography is a promising avenue for high-quality displays without requiring bulky, complex optical systems. While recent work has demonstrated accurate hologram generation of 2D scenes, high-quality holographic projections of 3D scenes has been out of ...
An Application of Computer-Generated Holography in Optics
ICICCI '10: Proceedings of the 2010 International Conference on Intelligent Computing and Cognitive InformaticsA basic problem of this paper is the application of computer-generated holography to optics. Firstly, the definition of anamorphic fractional correlation is introduced and it is pointed out this operation is successfully used to compare the similarities ...
High resolution computer-generated cylindrical hologram
IUCS '09: Proceedings of the 3rd International Universal Communication SymposiumWe investigate the computer-generated cylindrical hologram. Since the general flat format hologram has a limited viewable area, we usually cannot see the other side of the reconstructed object. There are some holograms to solve this problem. A ...




Comments