Affiliation:
1. National Centre for Software Technology, Bombay, India
Abstract
In this paper we introduce the potential equation that along with the rendering equation forms an adjoint system of equations and provides a mathematical frame work for all known approaches to illumination computation based on geometric optics. The potential equation is more natural for illumination computations that simulate light propagation starting from the light sources, such as progressive radiosity and particle tracing. Using the mathematical handles provided by this framework and the random-walk solution model, we present a number of importance sampling schemes for improving the computation of flux estimation. Of particular significance is the use of approximately computed potential for directing a majority of the random walks through regions of importance in the environment, thus reducing the variance in the estimates of luminous flux in these regions. Finally, results from a simple implementation are presented to demonstrate the high-efficiency improvements made possible by the use of these techniques.
Publisher
Association for Computing Machinery (ACM)
Subject
Computer Graphics and Computer-Aided Design
Cited by
22 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
1. Metropolis Light Transport;Seminal Graphics Papers: Pushing the Boundaries, Volume 2;2023-08
2. References;Physically Based Rendering;2017
3. Solid-State Lighting: Toward Smart and Ultraefficient Materials, Devices, Lamps, and Systems;Photonics;2015-02-27
4. Toward Smart and Ultra-efficient Solid-State Lighting;Advanced Optical Materials;2014-06-27
5. Future Directions in LED Applications;Solid State Lighting Technology and Application Series;2013-09-17