Neural Acceleration of Scattering‐Aware Color 3D Printing
Autor: | Rittig, Tobias, Sumin, Denis, Babaei, Vahid, Didyk, Piotr, Voloboy, Alexey, Wilkie, Alexander, Bickel, Bernd, Myszkowski, Karol, Weyrich, Tim, Křivánek, Jaroslav |
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Rok vydání: | 2021 |
Předmět: |
Speedup
Artificial neural network Computer science business.industry Deep learning Pipeline (computing) Monte Carlo method Process (computing) Subsurface scattering 020207 software engineering 02 engineering and technology 01 natural sciences Computer Graphics and Computer-Aided Design 010309 optics Acceleration 0103 physical sciences 0202 electrical engineering electronic engineering information engineering Artificial intelligence business Algorithm |
Zdroj: | Computer Graphics Forum |
ISSN: | 1467-8659 0167-7055 |
DOI: | 10.1111/cgf.142626 |
Popis: | With the wider availability of full-color 3D printers, color-accurate 3D-print preparation has received increased attention. A key challenge lies in the inherent translucency of commonly used print materials that blurs out details of the color texture. Previous work tries to compensate for these scattering effects through strategic assignment of colored primary materials to printer voxels. To date, the highest-quality approach uses iterative optimization that relies on computationally expensive Monte Carlo light transport simulation to predict the surface appearance from subsurface scattering within a given print material distribution; that optimization, however, takes in the order of days on a single machine. In our work, we dramatically speed up the process by replacing the light transport simulation with a data-driven approach. Leveraging a deep neural network to predict the scattering within a highly heterogeneous medium, our method performs around two orders of magnitude faster than Monte Carlo rendering while yielding optimization results of similar quality level. The network is based on an established method from atmospheric cloud rendering, adapted to our domain and extended by a physically motivated weight sharing scheme that substantially reduces the network size. We analyze its performance in an end-to-end print preparation pipeline and compare quality and runtime to alternative approaches, and demonstrate its generalization to unseen geometry and material values. This for the first time enables full heterogenous material optimization for 3D-print preparation within time frames in the order of the actual printing time. |
Databáze: | OpenAIRE |
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