Please wait a minute...
Chin. Phys. B, 2016, Vol. 25(9): 094204    DOI: 10.1088/1674-1056/25/9/094204
SPECIAL TOPIC—Physical research in liquid crystal Prev   Next  

Phase-only stereoscopic hologram calculation based on Gerchberg-Saxton iterative algorithm

Xinyi Xia(夏心怡), Jun Xia(夏军)
Display Center, School of Electronic Science and Engineering, Southeast University, Nanjing 210096, China
Abstract  A phase-only computer-generated holography (CGH) calculation method for stereoscopic holography is proposed in this paper. The two-dimensional (2D) perspective projection views of the three-dimensional (3D) object are generated by the computer graphics rendering techniques. Based on these views, a phase-only hologram is calculated by using the Gerchberg-Saxton (GS) iterative algorithm. Comparing with the non-iterative algorithm in the conventional stereoscopic holography, the proposed method improves the holographic image quality, especially for the phase-only hologram encoded from the complex distribution. Both simulation and optical experiment results demonstrate that our proposed method can give higher quality reconstruction comparing with the traditional method.
Keywords:  phase retrieval      computer-generated holograms      holography  
Received:  16 May 2016      Accepted manuscript online: 
PACS:  42.30.Rx (Phase retrieval)  
  42.40.Jv (Computer-generated holograms)  
  42.40.-i (Holography)  
Fund: Project supported by the National Basic Research Program of China (Grant No. 2013CB328803) and the National High Technology Research and Development Program of China (Grant Nos. 2013AA013904 and 2015AA016301).
Corresponding Authors:  Jun Xia     E-mail:  xiajun@seu.edu.cn

Cite this article: 

Xinyi Xia(夏心怡), Jun Xia(夏军) Phase-only stereoscopic hologram calculation based on Gerchberg-Saxton iterative algorithm 2016 Chin. Phys. B 25 094204

[1] King M C, Noll A M and Berry D H 1970 Appl. Opt. 9 471
[2] Ma J S, Xia F P and Su P 2012 Opt. Precis. Eng. 20 1141 (in Chinese)
[3] Slinger C, Cameron C and Coomber S 2004 Proc. SPIE 5290 27
[4] Slinger C, Cameron C and Stanley M 2005 IEEE Computer 38 46
[5] Zhang X, Liu X and Chen X 2005 International Society for Optics and Photonics (Photonics Asia) p. 109
[6] Liu Y Z, Dong J W and Pu Y Y 2010 Opt. Express 18 3345
[7] Liu Y Z, Dong J W and Pu Y Y 2011 Opt. Lett. 36 2128
[8] Leseberg D and Frére C 1988 Appl. Opt. 27 3010
[9] Leseberg D 1992 Appl. Opt. 31 223
[10] Matsushima K, Schimmel H and Wyrowski F 2003 JOSAA 20 1755
[11] Ahrenberg L, Benzie P and Magnor M 2008 Appl. Opt. 47 1567
[12] Kim H, Hahn J and Lee B 2008 Appl. Opt. 47 D117
[13] Yatagai T 1976 Appl. Opt. 15 2722
[14] Zhang H, Zhao Y and Cao L C 2015 Opt. Express 23 3901
[15] Zhou Q, Lu J F and Yin J P 2013 Chin. J. Liq. Cryst. Disp. 28 349
[16] Hu L F 2005 Chin. J. Liq. Cryst. Disp 20 93 (in Chinese)
[17] Wu G Z, Zhang H S and Mao W Y 2014 Chin. J. Liq. Cryst. Disp. 29 1010
[18] Kang H J, Yamaguchi T and Yoshikawa H 2008 Appl. Opt. 47 D44
[19] Zhao Y, Cao L C and Zhang H 2015 Opt. Express 23 25440.
[20] Gerschberg R W and Saxton W O 1972 Optik 35 237
[21] Qu W D, Gu H R and Zhang H 2015 Appl. Opt. 54 10018
[22] Chang C L, Xia J and Lei W 2012 Opt. Commun. 285 24
[23] Exarhos G J, Guenther A H and Kaiser N 2002 34th Annual Boulder Damage Symposium on Optical Materials for High-Power Lasers/7th International Workshop on Laser Beam and Optics Characterization, September 16-19, 2002, Natl Inst Stand & Technol, Boulder, Co, p. 590
[24] Park J H, Kim M S and Baasantseren G 2009 Opt. Express 17 6320
[25] Zhang H, Xie J H and Liu J 2009 Appl. Opt. 48 5834
[1] Deep-learning-based cryptanalysis of two types of nonlinear optical cryptosystems
Xiao-Gang Wang(汪小刚) and Hao-Yu Wei(魏浩宇). Chin. Phys. B, 2022, 31(9): 094202.
[2] Reconstruction resolution enhancement of EPISM based holographic stereogram with hogel spatial multiplexing
Yunpeng Liu(刘云鹏), Teng Zhang(张腾), Jian Su(苏健), Tao Jing(荆涛), Min Lin(蔺敏), Pei Li(李沛), and Xingpeng Yan(闫兴鹏). Chin. Phys. B, 2022, 31(4): 044201.
[3] Nearfield acoustic holography in a moving medium based on particle velocity input using nonsingular propagator
Bi-Chun Dong(董必春), Run-Mei Zhang(张润梅), Bin Yuan(袁彬), and Chuan-Yang Yu(俞传阳). Chin. Phys. B, 2022, 31(2): 024303.
[4] Possibility to break through limitation of measurement range in dual-wavelength digital holography
Tuo Li(李拓), Wen-Xiu Lei(雷文秀), Xin-Kai Sun(孙鑫凯), Jun Dong(董军), Ye Tao(陶冶), and Yi-Shi Shi(史祎诗). Chin. Phys. B, 2021, 30(9): 094201.
[5] Impact of the spatial coherence on self-interference digital holography
Xingbing Chao(潮兴兵), Yuan Gao(高源), Jianping Ding(丁剑平), and Hui-Tian Wang(王慧田). Chin. Phys. B, 2021, 30(8): 084212.
[6] Broad-band phase retrieval method for transient radial shearing interference using chirp Z transform technique
Fang Xue(薛芳), Ya-Xuan Duan(段亚轩), Xiao-Yi Chen(陈晓义), Ming Li(李铭), Suo-Chao Yuan(袁索超), and Zheng-Shang Da(达争尚). Chin. Phys. B, 2021, 30(8): 084209.
[7] Convolutional neural network for transient grating frequency-resolved optical gating trace retrieval and its algorithm optimization
Siyuan Xu(许思源), Xiaoxian Zhu(朱孝先), Ji Wang(王佶), Yuanfeng Li(李远锋), Yitan Gao(高亦谈), Kun Zhao(赵昆), Jiangfeng Zhu(朱江峰), Dacheng Zhang(张大成), Yunlin Chen(陈云琳), and Zhiyi Wei(魏志义). Chin. Phys. B, 2021, 30(4): 048402.
[8] Incoherent digital holographic spectral imaging with high accuracy of image pixel registration
Feng-Ying Ma(马凤英), Xi Wang(王茜), Yuan-Zhuang Bu(卜远壮), Yong-Zhi Tian(田勇志), Yanli Du(杜艳丽) , Qiao-Xia Gong(弓巧侠), Ceyun Zhuang(庄策云), Jinhai Li(李金海), and Lei Li(李磊). Chin. Phys. B, 2021, 30(4): 044202.
[9] Taking snapshots of a moving electron wave packet in molecules using photoelectron holography in strong-field tunneling ionization
Mingrui He(何明睿), Yang Fan(樊洋), Yueming Zhou(周月明), and Peixiang Lu(陆培祥). Chin. Phys. B, 2021, 30(12): 123202.
[10] Two-step phase-shifting Fresnel incoherent correlation holography based on discrete wavelet transform
Meng-Ting Wu(武梦婷), Yu Zhang(张雨), Ming-Yu Tang(汤明玉), Zhi-Yong Duan(段智勇), Feng-Ying Ma(马凤英), Yan-Li Du(杜艳丽), Er-Jun Liang(梁二军), and Qiao-Xia Gong(弓巧侠). Chin. Phys. B, 2020, 29(12): 124201.
[11] Phase retrieval algorithm for optical information security
Shi-Qing Wang(王诗晴), Xiang-Feng Meng(孟祥锋), Yu-Rong Wang(王玉荣), Yong-Kai Yin(殷永凯), Xiu-Lun Yang(杨修伦). Chin. Phys. B, 2019, 28(8): 084203.
[12] Single-shot phase-shifting digital holography with a photon-sieve-filtering telescope
You Li(李优), Yao-Cun Li(李垚村), Jun-Yong Zhang(张军勇), Yan-Li Zhang(张艳丽), Xue-Mei Li(李雪梅). Chin. Phys. B, 2019, 28(8): 084205.
[13] Off-axis electron holography of manganite-based heterojunctions: Interface potential and charge distribution
Zhi-Bin Ling(令志斌), Gui-Ju Liu(刘桂菊), Cheng-Peng Yang(杨成鹏), Wen-Shuang Liang(梁文双), Yi-Qian Wang(王乙潜). Chin. Phys. B, 2019, 28(4): 046101.
[14] Theory and method of dual-energy x-ray grating phase-contrast imaging
Feng Rong(荣锋), Yan Gao(高艳), Cui-Juan Guo(郭翠娟), Wei Xu(徐微), Wei Xu(徐伟). Chin. Phys. B, 2019, 28(10): 108702.
[15] Rapid measurement of transmission matrix with the sequential semi-definite programming method
Zhenfeng Zhang(张振峰), Bin Zhang(张彬), Qi Feng(冯祺), Huimei He(何惠梅), Yingchun Ding(丁迎春). Chin. Phys. B, 2018, 27(8): 084201.
No Suggested Reading articles found!