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Robust Albedo Estimation From a Facial Image With Cast Shadow Under General Unknown Lighting

机译:在一般未知光照下从带有阴影的面部图像进行鲁棒的反照率估计

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摘要

Albedo estimation from a facial image is crucial for various computer vision tasks, such as 3-D morphable-model fitting, shape recovery, and illumination-invariant face recognition, but the currently available methods do not give good estimation results. Most methods ignore the influence of cast shadows and require a statistical model to obtain facial albedo. This paper describes a method for albedo estimation that makes combined use of image intensity and facial depth information for an image with cast shadows and general unknown light. In order to estimate the albedo map of a face, we formulate the albedo estimation problem as a linear programming problem that minimizes intensity error under the assumption that the surface of the face has constant albedo. Since the solution thus obtained has significant errors in certain parts of the facial image, the albedo estimate needs to be compensated. We minimize the mean square error of albedo under the assumption that the surface normals, which are calculated from the facial depth information, are corrupted with noise. The proposed method is simple and the experimental results show that this method gives better estimates than other methods.
机译:从面部图像进行反照率估计对于各种计算机视觉任务(例如3-D变形模型拟合,形状恢复和光照不变的面部识别)至关重要,但是当前可用的方法无法提供良好的估计结果。大多数方法忽略了投射阴影的影响,并需要一个统计模型来获得面部反照率。本文描述了一种反照率估计的方法,该方法结合了图像强度和面部深度信息,用于具有阴影和一般未知光的图像。为了估计人脸的反照率图,我们将反照率估计问题公式化为线性编程问题,该问题在假设人脸表面具有恒定反照率的情况下将强度误差最小化。由于如此获得的解在面部图像的某些部分中具有明显的误差,因此需要对反照率估计进行补偿。我们假设根据面部深度信息计算出的表面法线已被噪声破坏,从而使反照率的均方误差最小。该方法简单易行,实验结果表明该方法比其他方法具有更好的估计效果。

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