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Discrete Modal Decomposition: a new approach for the reflectance modeling and rendering of real surfaces

机译:离散模态分解:一种用于真实表面的反射建模和渲染的新方法

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摘要

Reflectance Transformation Imaging is a recent technique allowing for the measurement and the modeling of one of the most influential parameters on the appearance of a surface, namely the angular reflectance, thanks to the change in the direction of the lighting during acquisition. From these photometric stereo images (discrete data), the angular reflectance is modeled to allow both interactive and continuous relighting of the inspected surface. Two families of functions, based on polynomials and on hemispherical harmonics, are cited and used in the literature at this aim, respectively, associated to the PTM and HSH techniques. In this paper, we propose a novel method called Discrete Modal Decomposition (DMD) based on a particular and appropriate Eigen basis derived from a structural dynamic problem. The performance of the proposed method is compared with the PTM and HSH results on three real surfaces showing different reflection behaviors. Comparisons are made in terms of both visual rendering and of statistical error (local and global). The obtained results show that the DMD is more efficient in that it allows for a more accurate modeling of the angular reflectance when light-matter interaction is complex such as the presence of shadows, specularities and inter-reflections.
机译:反射率转换成像是一项最新技术,由于在采集过程中照明方向的变化,因此可以对表面外观上最有影响力的参数之一即角反射率进行测量和建模。根据这些光度立体图像(离散数据),对角反射率进行建模,以允许对被检表面进行交互和连续重新照明。为此,在文献中分别引用了基于多项式和半球谐波的两个函数系列,并将其与PTM和HSH技术相关联。在本文中,我们基于结构动力学问题中的特殊且适当的本征基础,提出了一种称为离散模态分解(DMD)的新方法。将所提方法的性能与在三个显示不同反射行为的真实表面上的PTM和HSH结果进行比较。在视觉渲染和统计误差(局部和全局)方面进行比较。所获得的结果表明,DMD更有效,因为当光与物质的相互作用复杂时,例如阴影,镜面反射和相互反射的存在,它可以对角反射率进行更精确的建模。

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