Accelerated one-step generation of full-color holographic videos using a color-tunable novel-look-up-table method for holographic three-dimensional television broadcasting

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作者
Seung-Cheol Kim
Xiao-Bin Dong
Eun-Soo Kim
机构
[1] HoloDigilog Human Media Research Center (HoloDigilog),
[2] 3D Display Research Center (3DRC),undefined
[3] Kwangwoon University,undefined
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Scientific Reports | / 5卷
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摘要
A color-tunable novel-look-up-table (CT-NLUT) for fast one-step calculation of full-color computer-generated holograms is proposed. The proposed method is composed of four principal fringe patterns (PFPs) such as a baseline, a depth-compensating and two color-compensating PFPs. CGH patterns for one color are calculated by combined use of baseline-PFP and depth-compensating-PFP and from them, those for two other colors are generated by being multiplied by the corresponding color-compensating-PFPs. color-compensating-PFPs compensate for differences in the wavelength between two colors based on their unique achromatic thin-lens properties, enabling transformation of one-color CGH pattern into those for other colors. This color-conversion property of the proposed method enables simultaneous generation of full color-CGH patterns, resulting in a significant reduction of the full color-CGH calculation time. Experimental results with test scenario show that the full color-CGH calculation time of the proposed CT-NLUT has been reduced by 45.10%, compared to the conventional NLUT. It has been further reduced by 96.01% when a data compression algorithm, called temporal redundancy-based NLUT, was used together, which means 25-fold reduction of its full color-CGH calculation time. Successful computational and optical reconstructions of full color-CGH patterns confirm the feasibility of the proposed method.
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[1]  
Gabor D(1948)A new microscopic principle Nature 161 777-778
[2]  
Yaras F(2009)Real-time phase-only color holographic video display system using LED illumination Appl. Opt. 48 H48-H53
[3]  
Kang H(2011)Efficient image projection by Fourier electroholography Opt. Lett 36 3018-3020
[4]  
Onural L(2010)Real-time color electroholography using multiple graphics processing units and multiple high-definition liquid-crystal display panels Appl. Opt. 49 5993-5996
[5]  
Makowski M(2002)Compression of digital holograms for three-dimensional object reconstruction and recognition Appl. Opt. 41 4124-4132
[6]  
Nakayama H(2006)Compression of digital holograms of three-dimensional objects using wavelets Opt. Express 14 2625-2630
[7]  
Naughton TJ(2007)Histogram approaches for lossy compression of digital holograms of three-dimensional objects IEEE Trans. Image Process 16 1548-1556
[8]  
Frauel Y(2011)Compression of digital hologram for three-dimensional object using wavelet-bandelets transform Opt. Express 19 8019-8031
[9]  
Javidi B(2014)Multiview image and depth map coding for holographic TV system Opt. Eng. 53 112302-5995
[10]  
Tajahuerce E(2008)Fast generation of 3-D video holograms by combined use of data compression and look-up table techniques Appl. Opt. 47 5986-11584