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Simultaneous Cast Shadows, Illumination and Geometry Inference Using Hypergraphs

机译:使用超图同时投射阴影,照明和几何推理

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The cast shadows in an image provide important information about illumination and geometry. In this paper, we utilize this information in a novel framework in order to jointly recover the illumination environment, a set of geometry parameters, and an estimate of the cast shadows in the scene given a single image and coarse initial 3D geometry. We model the interaction of illumination and geometry in the scene and associate it with image evidence for cast shadows using a higher order Markov Random Field (MRF) illumination model, while we also introduce a method to obtain approximate image evidence for cast shadows. Capturing the interaction between light sources and geometry in the proposed graphical model necessitates higher order cliques and continuous-valued variables, which make inference challenging. Taking advantage of domain knowledge, we provide a two-stage minimization technique for the MRF energy of our model. We evaluate our method in different datasets, both synthetic and real. Our model is robust to rough knowledge of geometry and inaccurate initial shadow estimates, allowing a generic coarse 3D model to represent a whole class of objects for the task of illumination estimation, or the estimation of geometry parameters to refine our initial knowledge of scene geometry, simultaneously with illumination estimation.
机译:图像中的投射阴影提供有关照明和几何形状的重要信息。在本文中,我们在新颖的框架中利用此信息,以便在给定单个图像和粗略初始3D几何的情况下,共同恢复照明环境,一组几何参数以及对场景中投射阴影的估计。我们使用高阶马尔可夫随机场(MRF)照明模型对场景中照明和几何图形之间的交互进行建模,并将其与投射阴影的图像证据相关联,同时还介绍了一种获取投射阴影的近似图像证据的方法。要在所提出的图形模型中捕获光源和几何之间的相互作用,就需要更高阶的团和连续值变量,这使推理具有挑战性。利用领域知识,我们为模型的MRF能量提供了两阶段最小化技术。我们在合成和真实的不同数据集中评估我们的方法。我们的模型对粗略的几何知识和不准确的初始阴影估计具有鲁棒性,从而允许通用的粗略3D模型代表整个类的对象来进行照明估计,或者对几何参数进行估计以完善我们对场景几何的初始知识,与照明估计同时进行。

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