Acquiring spatially varying appearance of printed holographic surfaces
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Accepted version
Author(s)
Toisoul, Antoine
Dhillon, Daljit
Ghosh, A
Type
Journal Article
Abstract
We present two novel and complimentary approaches to measure diffraction effects in commonly found planar spatially varying holographic surfaces. Such surfaces are increasingly found in various decorative materials such as gift bags, holographic papers, clothing and security holograms, and produce impressive visual effects that have not been previously acquired for realistic rendering. Such holographic surfaces are usually manufactured with one dimensional diffraction gratings that are varying in periodicity and orientation over an entire sample in order to produce a wide range of diffraction effects such as gradients and kinematic (rotational) effects. Our proposed methods estimate these two parameters and allow an accurate reproduction of these effects in real-time. The first method simply uses a point light source to recover both the grating periodicity and orientation in the case of regular and stochastic textures. Under the assumption that the sample is made of the same repeated diffractive tile, good results can be obtained using just one to five photographs on a wide range of samples. The second method is based on polarization imaging and enables an independent high resolution measurement of the grating orientation and relative periodicity at each surface point. The method requires a minimum of four photographs for accurate results, does not assume repetition of an exemplar tile, and can even reveal minor fabrication defects. We present point light source renderings with both approaches that qualitatively match photographs, as well as real-time renderings under complex environmental illumination.
Date Issued
2018-11-01
Date Acceptance
2018-09-17
Citation
ACM Transactions on Graphics, 2018, 37 (6)
ISSN
0730-0301
Publisher
Association for Computing Machinery
Journal / Book Title
ACM Transactions on Graphics
Volume
37
Issue
6
Copyright Statement
©2018 Copyright held by the owner/author(s). Publication rights licensed to Associationfor Computing Machinery.
Sponsor
The Royal Society
Engineering & Physical Science Research Council (EPSRC)
Grant Number
WM 120040
EP/N006259/1
Subjects
Science & Technology
Technology
Computer Science, Software Engineering
Computer Science
Diffraction
wave optics
spectral
polarization
real-time rendering
DIFFRACTION
COLORS
Computer Science, Theory & Methods
0801 Artificial Intelligence And Image Processing
0806 Information Systems
Software Engineering
Publication Status
Published
Article Number
ARTN 272