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首页> 外文期刊>IEEE transactions on visualization and computer graphics >Fast Computation of Single Scattering in Participating Media with Refractive Boundaries Using Frequency Analysis
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Fast Computation of Single Scattering in Participating Media with Refractive Boundaries Using Frequency Analysis

机译:利用频率分析快速计算参与媒体的单次散射

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摘要

Many materials combine a refractive boundary and a participating media on the interior. If the material has a low opacity, single scattering effects dominate in its appearance. Refraction at the boundary concentrates the incoming light, resulting in an important phenomenon called volume caustics. This phenomenon is hard to simulate. Previous methods used point-based light transport, but attributed point samples inefficiently, resulting in long computation time. In this paper, we use frequency analysis of light transport to allocate point samples efficiently. Our method works in two steps: in the first step, we compute volume samples along with their covariance matrices, encoding the illumination frequency content in a compact way. In the rendering step, we use the covariance matrices to compute the kernel size for each volume sample: small kernel for high-frequency single scattering, large kernel for lower frequencies. Our algorithm computes volume caustics with fewer volume samples, with no loss of quality. Our method is both faster and uses less memory than the original method. It is roughly twice as fast and uses one fifth of the memory. The extra cost of computing covariance matrices for frequency information is negligible.
机译:许多材料将折射边界和参与介质组合在内部。如果材料具有低不透明度,则单次散射效果在其外观中占主导地位。边界处的折射集中入射光,导致称为体积焦化的重要现象。这种现象很难模拟。以前的方法使用基于点的光传输,但是归属点样本效率低下,导致计算时间长。在本文中,我们使用光传输的频率分析有效地分配点样品。我们的方法分为两个步骤:在第一步中,我们计算卷样本以及它们的协方差矩阵,以紧凑的方式编码照明频率内容。在渲染步骤中,我们使用协方差矩阵来计算每个卷样本的内核大小:用于高频单次散射的小内核,较低频率的大核。我们的算法使用较少的体积样品计算体积焦散,没有质量损失。我们的方法既快速度又比原始方法更快。它大致两倍快,并使用一个内存的五分之一。计算频率信息的协方差矩阵的额外成本可忽略不计。

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