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Depth Estimation and Specular Removal for Glossy Surfaces Using Point and Line Consistency with Light-Field Cameras

机译:使用光场相机的点和线一致性对光滑表面进行深度估计和镜面去除

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Light-field cameras have now become available in both consumer and industrial applications, and recent papers have demonstrated practical algorithms for depth recovery from a passive single-shot capture. However, current light-field depth estimation methods are designed for Lambertian objects and fail or degrade for glossy or specular surfaces. The standard Lambertian photoconsistency measure considers the variance of different views, effectively enforcing , i.e., that all views map to the same point in RGB space. This variance or point-consistency condition is a poor metric for glossy surfaces. In this paper, we present a novel theory of the relationship between light-field data and reflectance from the dichromatic model. We present a physically-based and practical method to estimate the light source color and separate specularity. We present a new photo consistency metric, , which represents how viewpoint changes affect specular points. We then show how the new metric can be used in combination with the standard Lambertian variance or point-consistency measure to give us results that are robust against scenes with glossy surfaces. With our analysis, we can also robustly estimate multiple light source colors and remove the specular component from glossy objects. We show that our method outperforms current state-of-the-art specular removal and depth estimation algorithms in multiple real world scenarios using the consumer Lytro and Lytro Illum light field cameras.
机译:现在,光场相机已经可以在消费类和工业应用中使用,并且最近的论文展示了用于从被动单次拍摄进行深度恢复的实用算法。但是,当前的光场深度估计方法是为朗伯对象设计的,对于光滑或镜面表面会失败或退化。标准的Lambertian光一致性测量方法考虑了不同视图的方差,从而有效地强制所有视图映射到RGB空间中的同一点。对于光滑表面,此差异或点一致性条件是不好的指标。在本文中,我们提出了一种关于双色模型中光场数据与反射率之间关系的新颖理论。我们提出了一种基于物理的实用方法来估计光源颜色和单独的镜面反射度。我们提出了一种新的照片一致性指标,该指标表示视点变化如何影响镜面反射点。然后,我们说明如何将新指标与标准的Lambertian方差或点一致性度量结合使用,以提供针对具有光滑表面的场景具有鲁棒性的结果。通过我们的分析,我们还可以可靠地估计多种光源颜色,并从光泽对象中除去镜面反射分量。我们证明,在使用消费者Lytro和Lytro Illum光场相机的多个真实世界场景中,我们的方法优于当前最新的镜面反射去除和深度估计算法。

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