4.7 Article

Geometry-Aware Scattering Compensation for 3D Printing

Journal

ACM TRANSACTIONS ON GRAPHICS
Volume 38, Issue 4, Pages -

Publisher

ASSOC COMPUTING MACHINERY
DOI: 10.1145/3306346.3322992

Keywords

computational fabrication; appearance reproduction; appearance enhancement; sub-surface light transport; volumetric optimization; gradient rendering

Funding

  1. European Union's Horizon 2020 research and innovation programme, under the Marie Sklodowska-Curie grant [642841]
  2. European Union's Horizon 2020 research and innovation programme, under the European Research Council [715767]
  3. Czech Science Foundation [16-18964S, 16-08111S, 19-07626S]

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Commercially available full-color 3D printing allows for detailed control of material deposition in a volume, but an exact reproduction of a target surface appearance is hampered by the strong subsurface scattering that causes nontrivial volumetric cross-talk at the print surface. Previous work showed how an iterative optimization scheme based on accumulating absorptive materials at the surface can be used to find a volumetric distribution of print materials that closely approximates a given target appearance. In this work, we first revisit the assumption that pushing the absorptive materials to the surface results in minimal volumetric cross-talk. We design a full-fledged optimization on a small domain for this task and confirm this previously reported heuristic. Then, we extend the above approach that is critically limited to color reproduction on planar surfaces, to arbitrary 3D shapes. Our method enables high-fidelity color texture reproduction on 3D prints by effectively compensating for internal light scattering within arbitrarily shaped objects. In addition, we propose a content-aware gamut mapping that significantly improves color reproduction for the pathological case of thin geometric features. Using a wide range of sample objects with complex textures and geometries, we demonstrate color reproduction whose fidelity is superior to state-of-the-art drivers for color 3D printers.

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