From microfacets to participating media: A unified theory of light transport with stochastic geometry

Author:

Seyb Dario1ORCID,d'Eon Eugene2ORCID,Bitterli Benedikt3ORCID,Jarosz Wojciech45ORCID

Affiliation:

1. Dartmouth College, Springfield, United States of America

2. NVIDIA, Wellington, New Zealand

3. NVIDIA, Kirkland, United States of America

4. Dartmouth College, Hanover, United States of America

5. NVIDIA, Hanover, United States of America

Abstract

Stochastic geometry models have enjoyed immense success in graphics for modeling interactions of light with complex phenomena such as participating media, rough surfaces, fibers, and more. Although each of these models operates on the same principle of replacing intricate geometry by a random process and deriving the average light transport across all instances thereof, they are each tailored to one specific application and are fundamentally distinct. Each type of stochastic geometry present in the scene is firmly encapsulated in its own appearance model, with its own statistics and light transport average, and no cross-talk between different models or deterministic and stochastic geometry is possible. In this paper, we derive a theory of light transport on stochastic implicit surfaces , a geometry model capable of expressing deterministic geometry, microfacet surfaces, participating media, and an exciting new continuum in between containing aggregate appearance, non-classical media, and more. Our model naturally supports spatial correlations , missing from most existing stochastic models. Our theory paves the way for tractable rendering of scenes in which all geometry is described by the same stochastic model, while leaving ample future work for developing efficient sampling and rendering algorithms.

Funder

NSF

Publisher

Association for Computing Machinery (ACM)

Reference82 articles.

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3. Shadowing of random rough surfaces

4. A Radiative Transfer Framework for Non-Exponential Media;Bitterli Benedikt;ACM Transactions on Graphics (Proceedings of SIGGRAPH Asia),2018

5. Patrick Boissé. 1990. Radiative transfer inside clumpy media-The penetration of UV photons inside molecular clouds. Astronomy and Astrophysics 228 (1990). http://adsabs.harvard.edu/abs/1990A%26A...228..483B

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