Interactive rendering of translucent materials under area lights using voxels and Poisson disk samples

Interactive rendering of translucent materials in virtual worlds has always proved to be challenging. Rendering their indirect illumination produces further challenges. In our work, we develop a voxel illumination framework for translucent materials illuminated by area lights. Our voxel illumination...

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Main Authors: Koa, Ming Di, Johan, Henry, Sourin, Alexei
Other Authors: School of Computer Science and Engineering
Format: Article
Language:English
Published: 2020
Subjects:
Online Access:https://hdl.handle.net/10356/141408
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1414082020-06-08T05:50:00Z Interactive rendering of translucent materials under area lights using voxels and Poisson disk samples Koa, Ming Di Johan, Henry Sourin, Alexei School of Computer Science and Engineering Engineering::Computer science and engineering Translucent Materials Area Lights Interactive rendering of translucent materials in virtual worlds has always proved to be challenging. Rendering their indirect illumination produces further challenges. In our work, we develop a voxel illumination framework for translucent materials illuminated by area lights. Our voxel illumination uses two existing voxel structures, the Enhanced Subsurface Light Propagation Volumes (ESLPV), which handles the local translucent material appearance and the Light Propagation Volumes (LPV), which handles indirect illumination for the surrounding diffuse surfaces. By using a set of sparse translucent Poisson disk samples (TPDS) and diffuse Poisson disk samples (DPDS) for the ESLPV and LPV, illumination can be gathered from area lights effectively. This allows the direct illumination of the translucent material to be rendered in the ESLPV, and the diffuse indirect illumination of the surrounding scene can be rendered in the LPV. Based on experiments, a small number of Poisson disk samples in each voxel are sufficient to produce good results. A uniform set of Poisson disk samples on the translucent objects is resampled and chosen as Translucent Planar Lights (TPLs) and is used to distribute lighting from translucent objects into the LPV by an additional gathering process. Our technique allows for direct and indirect illuminations from highly scattering translucent materials to be rendered interactively under area lighting at good quality. We can achieve similar effects, such as low-frequency scattered light illumination from translucent materials, when compared to offline renderers without precomputations. NRF (Natl Research Foundation, S’pore) 2020-06-08T05:50:00Z 2020-06-08T05:50:00Z 2018 Journal Article Koa, M. D., Johan, H., & Sourin, A. (2018). Interactive rendering of translucent materials under area lights using voxels and Poisson disk samples. Computers and Graphics, 71, 101-112. doi:10.1016/j.cag.2018.01.001 0097-8493 https://hdl.handle.net/10356/141408 10.1016/j.cag.2018.01.001 2-s2.0-85041412266 71 101 112 en Computers and Graphics © 2018 Elsevier Ltd. All rights reserved.
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic Engineering::Computer science and engineering
Translucent Materials
Area Lights
spellingShingle Engineering::Computer science and engineering
Translucent Materials
Area Lights
Koa, Ming Di
Johan, Henry
Sourin, Alexei
Interactive rendering of translucent materials under area lights using voxels and Poisson disk samples
description Interactive rendering of translucent materials in virtual worlds has always proved to be challenging. Rendering their indirect illumination produces further challenges. In our work, we develop a voxel illumination framework for translucent materials illuminated by area lights. Our voxel illumination uses two existing voxel structures, the Enhanced Subsurface Light Propagation Volumes (ESLPV), which handles the local translucent material appearance and the Light Propagation Volumes (LPV), which handles indirect illumination for the surrounding diffuse surfaces. By using a set of sparse translucent Poisson disk samples (TPDS) and diffuse Poisson disk samples (DPDS) for the ESLPV and LPV, illumination can be gathered from area lights effectively. This allows the direct illumination of the translucent material to be rendered in the ESLPV, and the diffuse indirect illumination of the surrounding scene can be rendered in the LPV. Based on experiments, a small number of Poisson disk samples in each voxel are sufficient to produce good results. A uniform set of Poisson disk samples on the translucent objects is resampled and chosen as Translucent Planar Lights (TPLs) and is used to distribute lighting from translucent objects into the LPV by an additional gathering process. Our technique allows for direct and indirect illuminations from highly scattering translucent materials to be rendered interactively under area lighting at good quality. We can achieve similar effects, such as low-frequency scattered light illumination from translucent materials, when compared to offline renderers without precomputations.
author2 School of Computer Science and Engineering
author_facet School of Computer Science and Engineering
Koa, Ming Di
Johan, Henry
Sourin, Alexei
format Article
author Koa, Ming Di
Johan, Henry
Sourin, Alexei
author_sort Koa, Ming Di
title Interactive rendering of translucent materials under area lights using voxels and Poisson disk samples
title_short Interactive rendering of translucent materials under area lights using voxels and Poisson disk samples
title_full Interactive rendering of translucent materials under area lights using voxels and Poisson disk samples
title_fullStr Interactive rendering of translucent materials under area lights using voxels and Poisson disk samples
title_full_unstemmed Interactive rendering of translucent materials under area lights using voxels and Poisson disk samples
title_sort interactive rendering of translucent materials under area lights using voxels and poisson disk samples
publishDate 2020
url https://hdl.handle.net/10356/141408
_version_ 1681059450515881984