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Directional Dipole Model for Subsurface Scattering

机译:地下散射的定向偶极子模型

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摘要

Rendering translucent materials using Monte Carlo ray tracing is computationally expensive due to a large number of subsurface scattering events. Faster approaches are based on analytical models derived from diffusion theory. While such analytical models are efficient, they miss out on some translucency effects in the rendered result. We present an improved analytical model for subsurface scattering that captures translucency effects present in the reference solutions but remaining absent with existing models. The key difference is that our model is based on ray source diffusion, rather than point source diffusion. A ray source corresponds better to the light that refracts through the surface of a translucent material. Using this ray source, we are able to take the direction of the incident light ray and the direction toward the point of emergence into account. We use a dipole construction similar to that of the standard dipole model, but we now have positive and negative ray sources with a mirrored pair of directions. Our model is as computationally efficient as existing models while it includes single scattering without relying on a separate Monte Carlo simulation, and the rendered images are significantly closer to the references. Unlike some previous work, our model is fully analytic and requires no precomputation.
机译:由于大量的次表面散射事件,因此使用蒙特卡洛射线追踪渲染半透明材料的计算量很大。更快的方法是基于扩散理论得出的分析模型。尽管此类分析模型很有效,但它们在渲染结果中错过了一些半透明效果。我们为地下散射提供了一种改进的分析模型,该模型可以捕获参考溶液中存在的半透明效应,但现有模型仍然不存在。关键区别在于我们的模型基于射线源扩散,而不是点源扩散。射线源与折射穿过半透明材料表面的光更好地对应。使用该射线源,我们能够考虑入射光线的方向和朝向出射点的方向。我们使用类似于标准偶极子模型的偶极子构造,但是现在有了具有一对镜像方向的正射线源和负射线源。我们的模型具有与现有模型一样的计算效率,同时它包括单个散射而不依赖于单独的蒙特卡洛模拟,并且渲染的图像与参考之间的距离非常接近。与以前的工作不同,我们的模型是完全分析的,不需要预先计算。

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