Neural SSS: Lightweight Object Appearance Representation

Author:

TG T.1ORCID,Tran D. M.1ORCID,Jensen H. W.2,Ramamoorthi R.3ORCID,Frisvad J. R.1ORCID

Affiliation:

1. Technical University of Denmark Denmark

2. Keyshot USA

3. University of California San Diego USA

Abstract

AbstractWe present a method for capturing the BSSRDF (bidirectional scattering‐surface reflectance distribution function) of arbitrary geometry with a neural network. We demonstrate how a compact neural network can represent the full 8‐dimensional light transport within an object including heterogeneous scattering. We develop an efficient rendering method using importance sampling that is able to render complex translucent objects under arbitrary lighting. Our method can also leverage the common planar half‐space assumption, which allows it to represent one BSSRDF model that can be used across a variety of geometries. Our results demonstrate that we can render heterogeneous translucent objects under arbitrary lighting and obtain results that match the reference rendered using volumetric path tracing.

Funder

H2020 Marie Skłodowska-Curie Actions

National Science Foundation

Publisher

Wiley

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