“Acquiring spatially varying appearance of printed holographic surfaces”
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Title:
- Acquiring spatially varying appearance of printed holographic surfaces
Session/Category Title: IM-material
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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.
References:
1. Emmanuel Agu and Francis S. Hill Jr. 2002. Diffraction Shading Models For Iridescent Surfaces. In Proc. IASTED VIIP.Google Scholar
2. Miika Aittala, Tim Weyrich, and Jaakko Lehtinen. 2015. Two-shot SVBRDF Capture for Stationary Materials. ACM Trans. Graph. 34, 4, Article 110 (July 2015), 13 pages. Google ScholarDigital Library
3. Laurent Belcour and Pascal Barla. 2017. A Practical Extension to Microfacet Theory for the Modeling of Varying Iridescence. ACM Trans. Graph. 36, 4, Article 65 (July 2017), 14 pages. Google ScholarDigital Library
4. Kai Berger, Andrea Weidlich, Alexander Wilkie, and Marcus Magnor. 2012. Modeling and Verifying the Polarizing Reflectance of Real-World Metallic Surfaces. IEEE Computer Graphics and Applications 32, 2 (March 2012), 24–33. Google ScholarDigital Library
5. R. L. Cook and K. E. Torrance. 1982. A Reflectance Model for Computer Graphics. ACM Trans. Graph. 1, 1 (Jan. 1982), 7–24. Google ScholarDigital Library
6. Tom Cuypers, Tom Haber, Philippe Bekaert, Se Baek Oh, and Ramesh Raskar. 2012. Reflectance Model for Diffraction. ACM Trans. Graph. 31, 5, Article 122 (Sept. 2012), 11 pages. Google ScholarDigital Library
7. Paul E. Debevec and Jitendra Malik. 1997. Recovering High Dynamic Range Radiance Maps from Photographs. In Proceedings of the 24th Annual Conference on Computer Graphics and Interactive Techniques (SIGGRAPH ’97). ACM Press/Addison-Wesley Publishing Co., New York, NY, USA, 369–378. Google ScholarDigital Library
8. D.S. Dhillon, J. Teyssier, M. Single, I. Gaponenko, M.C. Milinkovitch, and M. Zwicker. 2014. Interactive Diffraction from Biological Nanostructures. Comput. Graph. Forum 33, 8 (Dec. 2014), 177–188. Google ScholarDigital Library
9. Daljit Singh J. Dhillon and Abhijeet Ghosh. 2016. Efficient Surface Diffraction Renderings with Chebyshev Approximations. In SIGGRAPH ASIA 2016 Technical Briefs (SA ’16). ACM, New York, NY, USA, Article 7, 4 pages. Google ScholarDigital Library
10. Zhao Dong, Bruce Walter, Steve Marschner, and Donald P. Greenberg. 2015. Predicting Appearance from Measured Microgeometry of Metal Surfaces. ACM Trans. Graph. 35, 1, Article 9 (Dec. 2015), 13 pages. Google ScholarDigital Library
11. Abhijeet Ghosh, Tongbo Chen, Pieter Peers, Cyrus A. Wilson, and Paul Debevec. 2010. Circularly Polarized Spherical Illumination Reflectometry. ACM Trans. Graph. 29, 6, Article 162 (Dec. 2010), 12 pages. Google ScholarDigital Library
12. Xavier Granier and Wolfgang Heidrich. 2003. A Simple Layered RGB BRDF Model. Graph. Models 65, 4 (July 2003), 171–184. Google ScholarDigital Library
13. Xiao D. He, Kenneth E. Torrance, François X. Sillion, and Donald P. Greenberg. 1991. A comprehensive physical model for light reflection. SIGGRAPH Comput. Graph. 25, 4 (1991), 175–186. Google ScholarDigital Library
14. Nicolas Holzschuch and Romain Pacanowski. 2017. A Two-scale Microfacet Reflectance Model Combining Reflection and Diffraction. ACM Trans. Graph. 36, 4, Article 66 (July 2017), 12 pages. Google ScholarDigital Library
15. Matthias B. Hullin, Johannes Hanika, Boris Ajdin, Hans-Peter Seidel, Jan Kautz, and Hendrik P. A. Lensch. 2010. Acquisition and Analysis of Bispectral Bidirectional Reflectance and Reradiation Distribution Functions. ACM Trans. Graph. 29, 4, Article 97 (July 2010), 7 pages. Google ScholarDigital Library
16. Masataka Imura, Osamu Oshiro, Masahiko Saeki, Yoshitsugu Manabe, Kunihiro Chihara, and Yoshihiro Yasumuro. 2009. A Generic Real-time Rendering Approach for Structural Colors. In Proceedings of the 16th ACM Symposium on Virtual Reality Software and Technology (VRST ’09). ACM, New York, NY, USA, 95–102. Google ScholarDigital Library
17. Wenzel Jakob, Miloš Hašan, Ling-Qi Yan, Jason Lawrence, Ravi Ramamoorthi, and Steve Marschner. 2014. Discrete Stochastic Microfacet Models. ACM Trans. Graph. 33, 4, Article 115 (July 2014), 10 pages. Google ScholarDigital Library
18. Menglin Jiang, Shiwei Lin, Wenkai Jiang, and Nengqian Pan. 2014. Hot embossing holographic images in BOPP shrink films through large-area roll-to-roll nanoimprint lithography. Applied Surface Science 311 (2014), 101–106.Google ScholarCross Ref
19. Young-Min Kang, Do-Hoon Lee, and Hwan-Gue Cho. 2015. Multipeak Anisotropic Microfacet Model for Iridescent Surfaces. Multimedia Tools Appl. 74, 16 (Aug. 2015), 6229–6242. Google ScholarDigital Library
20. Anat Levin, Daniel Glasner, Ying Xiong, Frédo Durand, William Freeman, Wojciech Matusik, and Todd Zickler. 2013. Fabricating BRDFs at High Spatial Resolution Using Wave Optics. ACM Trans. Graph. 32, 4, Article 144 (July 2013), 14 pages. Google ScholarDigital Library
21. Clifford Lindsay and Emmanuel Agu. 2006. Physically-based Real-time Diffraction Using Spherical Harmonics. In Proceedings of the Second International Conference on Advances in Visual Computing – Volume Part I (ISVC’06). Springer-Verlag, Berlin, Heidelberg, 505–517. Google ScholarDigital Library
22. Heylal Mashaal, Alex Goldstein, Daniel Feuermann, and Jeffrey M. Gordon. 2012. First direct measurement of the spatial coherence of sunlight. Optics Letters 37, 17 (2012), 3516–3518.Google ScholarCross Ref
23. Wojciech Matusik, Hanspeter Pfister, Matt Brand, and Leonard McMillan. 2003. A Data-driven Reflectance Model. ACM Trans. Graph. 22, 3 (July 2003), 759–769. Google ScholarDigital Library
24. Addy Ngan, Frédo Durand, and Wojciech Matusik. 2005. Experimental Analysis of BRDF Models. In Rendering Techniques. 117–226. Google ScholarDigital Library
25. Jérémy Riviere, Ilya Reshetouski, Luka Filipi, and Abhijeet Ghosh. 2017. Polarization Imaging Reflectometry in the Wild. ACM Trans. Graph. 36, 6, Article 206 (Nov. 2017), 14 pages. Google ScholarDigital Library
26. William John Roff and John Richard Scott. 2013. Fibres, films, plastics and rubbers: a handbook of common polymers. Elsevier.Google Scholar
27. Jos Stam. 1999. Diffraction Shaders. In Proceedings of the 26th Annual Conference on Computer Graphics and Interactive Techniques (SIGGRAPH ’99). ACM Press/Addison-Wesley Publishing Co., New York, NY, USA, 101–110. Google ScholarDigital Library
28. 311546 Yinlong Sun. 2000. A Spectrum-based Framework for Realistic Image Synthesis. Ph.D. Dissertation. Advisor(s) Fracchia, F. David. AAINQ61686. Google ScholarDigital Library
29. Yinlong Sun. 2006. Rendering Biological Iridescences with RGB-based Renderers. ACM Trans. Graph. 25, 1 (Jan. 2006), 100–129. Google ScholarDigital Library
30. Yinlong Sun, Mark S. Drew, and F. David Fracchia. 1999a. Representing Spectral Functions by a Composite Model of Smooth and Spiky Components for Efficient Full-Spectrum Photorealism. In Proceedings of the 1999 IEEE Workshop on Photometric Modeling for Computer Vision and Graphics (PMCVG ’99). IEEE Computer Society, Washington, DC, USA, 4-. http://dl.acm.org/citation.cfm?id=519626.826724 Google ScholarDigital Library
31. Yinlong Sun, F. David Fracchia, Thomas W. Calvert, and Mark S. Drew. 1999b. Deriving Spectra from Colors and Rendering Light Interference. IEEE Comput. Graph. Appl. 19, 4 (July 1999), 61–67. Google ScholarDigital Library
32. Yinlong Sun, F. David Fracchia, Mark S. Drew, and Thomas W. Calvert. 2000. Rendering Iridescent Colors of Optical Disks. In Proceedings of the Eurographics Workshop on Rendering Techniques 2000. Springer-Verlag, London, UK, UK, 341–352. http://dl.acm.org/citation.cfm?id=647652.732138 Google ScholarDigital Library
33. Antoine Toisoul and Abhijeet Ghosh. 2017a. Practical Acquisition and Rendering of Diffraction Effects in Surface Reflectance. ACM Trans. Graph. 36, 5, Article 64c (July 2017). Google ScholarDigital Library
34. Antoine Toisoul and Abhijeet Ghosh. 2017b. Real-time Rendering of Realistic Surface Diffraction with Low Rank Factorisation. In Proceedings of the 14th European Conference on Visual Media Production (CVMP 2017) (CVMP 2017). ACM, New York, NY, USA, Article 2, 7 pages. Google ScholarDigital Library
35. Borom Tunwattanapong, Graham Fyffe, Paul Graham, Jay Busch, Xueming Yu, Abhijeet Ghosh, and Paul Debevec. 2013. Acquiring Reflectance and Shape from Continuous Spherical Harmonic Illumination. ACM Trans. Graph. 32, 4, Article 109 (July 2013), 12 pages. Google ScholarDigital Library
36. Zdravko Velinov, Sebastian Werner, and Matthias B. Hullin. 2018. Real-Time Rendering of Wave-Optical Effects on Scratched Surfaces. (2018). to appear.Google Scholar
37. Chun-Po Wang, Noah Snavely, and Steve Marschner. 2011. Estimating Dual-scale Properties of Glossy Surfaces from Step-edge Lighting. ACM Trans. Graph. 30, 6, Article 172 (Dec. 2011), 12 pages. Google ScholarDigital Library
38. Gregory J. Ward. 1992. Measuring and Modeling Anisotropic Reflection. SIGGRAPH Comput. Graph. 26, 2 (July 1992), 265–272. Google ScholarDigital Library
39. Andrea Weidlich and Alexander Wilkie. 2008. Realistic Rendering of Birefringency in Uniaxial Crystals. ACM Trans. Graph. 27, 1, Article 6 (March 2008), 12 pages. Google ScholarDigital Library
40. Sebastian Werner, Zdravko Velinov, Wenzel Jakob, and Matthias B. Hullin. 2017. Scratch Iridescence: Wave-optical Rendering of Diffractive Surface Structure. ACM Trans. Graph. 36, 6, Article 207 (Nov. 2017), 14 pages. Google ScholarDigital Library
41. Ling-Qi Yan, Miloš Hašan, Bruce Walter, Steve Marschner, and Ravi Ramamoorthi. 2018. Rendering Specular Microgeometry with Wave Optics. ACM Transactions on Graphics (Proc. SIGGRAPH) 37, 4 (2018). Google ScholarDigital Library
42. Genzhi Ye, Sundeep Jolly, V. Micheal Bove, Qionghai Dai, Ramesh Raskar, and Gordon Wetzstein. 2014. Toward BxDF Display using Multilayer Diffraction. ACM Trans. Graph. (SIGGRAPH Asia) 33, 6 (2014). Google ScholarDigital Library


