A hybrid monte carlo method for accurate and efficient subsurface scattering

Hongsong Li, F. Pellacini, K. Torrance
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引用次数: 33

Abstract

Subsurface scattering is a fundamental aspect of surface appearance responsible for the characteristic look of many materials. Monte Carlo path tracing techniques can be employed with high accuracy to simulate the scattering of light inside a translucent object, albeit at the cost of long computation times. In a seminal work, Jensen et al. [JMLH01] presented a more efficient technique to simulate subsurface scattering that, while producing accurate results for translucent, optically-thick, materials, exhibits artifacts for semi-transparent, optically-thin, ones, especially in regions of high-curvature. This paper presents a hybrid Monte Carlo technique capable of simulating a wide range of materials exhibiting subsurface scattering, from translucent to semi-transparent ones, with an accuracy comparable to Monte Carlo techniques but at a much lower computational cost. Our approach utilizes a Monte Carlo path tracing approach for the first several scattering events, in order to estimate the directional-diffuse component of subsurface scattering, and switches to a dipole diffusion approximation only when the path penetrates deeply enough into the surface. By combining the accuracy of Monte Carlo integration with the efficiency of the dipole diffusion approximation, our hybrid method produces results as accurate as full Monte Carlo simulations at a speed comparable to the Jensen et al. approximation, thus extending its usefulness to a much wider range of materials.
一种混合蒙特卡罗方法用于精确和高效的地下散射
次表面散射是表面外观的一个基本方面,负责许多材料的特征外观。蒙特卡罗路径跟踪技术可以高精度地模拟半透明物体内部的光散射,尽管计算时间较长。在一项开创性的工作中,Jensen等人[JMLH01]提出了一种更有效的技术来模拟亚表面散射,该技术在对半透明、光学厚的材料产生准确结果的同时,对半透明、光学薄的材料,特别是在高曲率区域,会产生伪影。本文提出了一种混合蒙特卡罗技术,能够模拟从半透明到半透明的各种材料的亚表面散射,其精度与蒙特卡罗技术相当,但计算成本要低得多。我们的方法对前几个散射事件使用蒙特卡罗路径跟踪方法,以估计次表面散射的方向扩散分量,并且只有当路径穿透到表面足够深时才切换到偶极子扩散近似。通过将蒙特卡罗积分的准确性与偶极子扩散近似的效率相结合,我们的混合方法产生的结果与完全蒙特卡罗模拟一样精确,速度可与Jensen等人的近似相媲美,从而将其用途扩展到更广泛的材料范围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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