Towards practical physical-optics rendering
Shlomi Steinberg, Pradeep Sen, Ling-Qi Yan
Abstract
Physical light transport (PLT) algorithms can represent the wave nature of light globally in a scene, and are consistent with Maxwell's theory of electromagnetism. As such, they are able to reproduce the wave-interference and diffraction effects of real physical optics. However, the recent works that have proposed PLT are too expensive to apply to real-world scenes with complex geometry and materials. To address this problem, we propose a novel framework for physical light transport based on several key ideas that actually makes PLT practical for complex scenes. First, we restrict the spatial coherence shape of light to an anisotropic Gaussian and justify this restriction with general arguments based on entropy. This restriction serves to simplify the rest of the derivations, without practical loss of generality. To describe partially-coherent light, we present new rendering primitives that generalize the radiometric radiance and irradiance, and are based on the well-known Stokes parameters. We are able to represent light of arbitrary spectral content and states of polarization, and with any coherence volume and anisotropy. We also present the wave BSDF to accurately render diffractions and wave-interference effects. Furthermore, we present an approach to importance sample this wave BSDF to facilitate bi-directional path tracing, which has been previously impossible. We show good agreement with state-of-the-art methods, but unlike them we are able to render complex scenes where all the materials are new, coherence-aware physical optics materials, and with performance approaching that of "classical" rendering methods.
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Cited by top-tier papers5
- Coupling Conduction, Convection and Radiative Transfer in a Single Path-Space: Application to Infrared RenderingMégane Bati, Stéphane Blanco, Christophe Coustet, Vincent Eymet et al.SIGGRAPH 2023 · 24 citations
- A Full-Wave Reference Simulator for Computing Surface ReflectanceYunchen Yu, Mengqi (Mandy) Xia, Bruce Walter, Eric Michielssen et al.SIGGRAPH 2023 · 12 citations
- A Free-Space Diffraction BSDFShlomi Steinberg, Ravi Ramamoorthi, Benedikt Bitterli, Arshiya Mollazainali et al.SIGGRAPH 2024 · 6 citations
- Spin-Weighted Spherical Harmonics for Polarized Light TransportShinyoung Yi, Donggun Kim, Jiwoong Na, Xin Tong et al.SIGGRAPH 2024 · 5 citations
- HoloPathTracer: Fast and Accurate Wave Path Tracing for HolographyWenbin Zhou, Xiangyu Meng, Jiankai Xing, Xin Liu et al.SIGGRAPH 2026 · 1 citation
Builds on3
- Image-based acquisition and modeling of polarimetric reflectanceSeung-Hwan Baek, Tizian Zeltner, Hyunjin Ku, Inseung Hwang et al.SIGGRAPH 2020 · 52 citations
- Chemomechanical simulation of soap film flow on spherical bubblesWeizhen Huang, Julian Iseringhausen, Tom Kneiphof, Ziyin Qu et al.SIGGRAPH 2020 · 35 citations
- A generic framework for physical light transportShlomi Steinberg, Ling-Qi YanSIGGRAPH 2021 · 24 citations
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