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Reconstructing Shape from Dictionaries of Shading Primitives

机译:从遮阳基元字典重建形状

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Although a lot of research has been performed in the field of reconstructing 3D shape from the shading in an image, only a small portion of this work has examined the association of local shading patterns over image patches with the underlying 3D geometry. Such approaches are a promising way to tackle the ambiguities inherent in the shape-from-shading (SfS) problem, but issues such as their sensitivity to non-lambertian reflectance or photometric calibration have reduced their real-world applicability. In this paper we show how the information in local shading patterns can be utilized in a practical approach applicable to real-world images, obtaining results that improve the state of the art in the SfS problem. Our approach is based on learning a set of geometric primitives, and the distribution of local shading patterns that each such primitive may produce under different reflectance parameters. The resulting dictionary of primitives is used to produce a set of hypotheses about 3D shape; these hypotheses are combined in a Markov Random Field (MRF) model to determine the final 3D shape.
机译:虽然在从图像中的阴影中重建3D形状的领域已经进行了大量研究,但是该工作的一小部分已经检查了局部阴影图案与底层的3D几何形状的图像贴片的关联。这些方法是解决形状从阴影(SFS)问题中固有的含糊不位的有希望的方法,但它们对非兰伯语反射率或光度校准的敏感性等问题降低了其现实世界的适用性。在本文中,我们示出了如何利用适用于实际图像的实用方法中的局部阴影模式中的信息,从而获得改善SFS问题中最新的结果。我们的方法是基于学习一组几何基元,以及每个这样的原始的局部阴影图案的分布可以在不同的反射参数下产生。由此产生的基元词典用于产生关于3D形状的一组假设;这些假设在Markov随机场(MRF)模型中组合以确定最终的3D形状。

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