Experimental analysis of BRDF models

A. Ngan, F. Durand, W. Matusik
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引用次数: 509

Abstract

The Bidirectional Reflectance Distribution Function (BRDF) describes the appearance of a material by its interaction with light at a surface point. A variety of analytical models have been proposed to represent BRDFs. However, analysis of these models has been scarce due to the lack of high-resolution measured data. In this work we evaluate several well-known analytical models in terms of their ability to fit measured BRDFs. We use an existing high-resolution data set of a hundred isotropic materials and compute the best approximation for each analytical model. Furthermore, we have built a new setup for efficient acquisition of anisotropic BRDFs, which allows us to acquire anisotropic materials at high resolution. We have measured four samples of anisotropic materials (brushed aluminum, velvet, and two satins). Based on the numerical errors, function plots, and rendered images we provide insights into the performance of the various models. We conclude that for most isotropic materials physically-based analytic reflectance models can represent their appearance quite well. We illustrate the important difference between the two common ways of defining the specular lobe: around the mirror direction and with respect to the half-vector. Our evaluation shows that the latter gives a more accurate shape for the reflection lobe. Our analysis of anisotropic materials indicates current parametric reflectance models cannot represent their appearances faithfully in many cases. We show that using a sampled microfacet distribution computed from measurements improves the fit and qualitatively reproduces the measurements.
BRDF模型的实验分析
双向反射分布函数(BRDF)描述了材料在表面点与光的相互作用的外观。人们提出了多种分析模型来表示brdf。然而,由于缺乏高分辨率的测量数据,对这些模型的分析很少。在这项工作中,我们根据其拟合测量brdf的能力评估了几个知名的分析模型。我们使用现有的100种各向同性材料的高分辨率数据集,并计算每个分析模型的最佳近似值。此外,我们建立了一个新的装置,用于有效地获取各向异性brdf,使我们能够以高分辨率获取各向异性材料。我们测量了四种各向异性材料的样品(拉丝铝、天鹅绒和两种缎子)。基于数值误差、函数图和渲染图像,我们提供了对各种模型性能的见解。我们得出结论,对于大多数各向同性材料,基于物理的解析反射率模型可以很好地代表它们的外观。我们说明了定义镜面瓣的两种常见方法之间的重要区别:围绕镜面方向和相对于半矢量。我们的评估表明,后者给出了更准确的反射瓣形状。我们对各向异性材料的分析表明,在许多情况下,当前的参数反射模型不能忠实地反映它们的外观。我们表明,使用从测量中计算的采样微面分布可以改善拟合并定性地再现测量结果。
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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